CA1213042A - Portable dictating machine - Google Patents
Portable dictating machineInfo
- Publication number
- CA1213042A CA1213042A CA000451529A CA451529A CA1213042A CA 1213042 A CA1213042 A CA 1213042A CA 000451529 A CA000451529 A CA 000451529A CA 451529 A CA451529 A CA 451529A CA 1213042 A CA1213042 A CA 1213042A
- Authority
- CA
- Canada
- Prior art keywords
- drive
- tape
- pulley
- capstan
- pulleys
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Expired
Links
Classifications
-
- G—PHYSICS
- G11—INFORMATION STORAGE
- G11B—INFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
- G11B15/00—Driving, starting or stopping record carriers of filamentary or web form; Driving both such record carriers and heads; Guiding such record carriers or containers therefor; Control thereof; Control of operating function
- G11B15/18—Driving; Starting; Stopping; Arrangements for control or regulation thereof
- G11B15/26—Driving record carriers by members acting directly or indirectly thereon
-
- G—PHYSICS
- G11—INFORMATION STORAGE
- G11B—INFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
- G11B15/00—Driving, starting or stopping record carriers of filamentary or web form; Driving both such record carriers and heads; Guiding such record carriers or containers therefor; Control thereof; Control of operating function
- G11B15/18—Driving; Starting; Stopping; Arrangements for control or regulation thereof
- G11B15/26—Driving record carriers by members acting directly or indirectly thereon
- G11B15/32—Driving record carriers by members acting directly or indirectly thereon through the reels or cores on to which the record carrier is wound
-
- G—PHYSICS
- G11—INFORMATION STORAGE
- G11B—INFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
- G11B25/00—Apparatus characterised by the shape of record carrier employed but not specific to the method of recording or reproducing, e.g. dictating apparatus; Combinations of such apparatus
- G11B25/06—Apparatus characterised by the shape of record carrier employed but not specific to the method of recording or reproducing, e.g. dictating apparatus; Combinations of such apparatus using web-form record carriers, e.g. tape
- G11B25/063—Apparatus characterised by the shape of record carrier employed but not specific to the method of recording or reproducing, e.g. dictating apparatus; Combinations of such apparatus using web-form record carriers, e.g. tape using tape inside container
Landscapes
- Impression-Transfer Materials And Handling Thereof (AREA)
- Recording Or Reproducing By Magnetic Means (AREA)
- Supply And Installment Of Electrical Components (AREA)
Abstract
PORTABLE DICTATING MACHINE
Abstract of the Disclosure A tape drive system for a dictating machine, partic-ularly a portable dictating machine of a size suitable to be held in one hand. The dictating machine has a compartment which receives a tape cassette having a pair of reels, and a pair driving spindles engage with the tape reels for driving the latter. A tape drive capstan and back-up roller are located adjacent the tape cassette compartment. A motor is located at the opposite end of the dictating machine from the tape cassette compartment, and a multi-stage speed reduction belt and pulley drive system is located between the motor and the drive capstan for simultaneously driving the drive capstan and the tape reel driving spindles at a uniform rate of speed.
Abstract of the Disclosure A tape drive system for a dictating machine, partic-ularly a portable dictating machine of a size suitable to be held in one hand. The dictating machine has a compartment which receives a tape cassette having a pair of reels, and a pair driving spindles engage with the tape reels for driving the latter. A tape drive capstan and back-up roller are located adjacent the tape cassette compartment. A motor is located at the opposite end of the dictating machine from the tape cassette compartment, and a multi-stage speed reduction belt and pulley drive system is located between the motor and the drive capstan for simultaneously driving the drive capstan and the tape reel driving spindles at a uniform rate of speed.
Description
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PORTAsLE DICTATINC MACtllNE
Background of the Invention Field of_the Invention The present invention relates generally to the field of office dictation equipment, and more particularly to a drive mechanism for a miniaturized, portable, hand held dictating machine.
Office dictation equipment has been in widespread use for well over half a century, and various types of office dictation equipment are found in most offices where any substantial volume of various forms of information is dictated and must be transcribed and typed. Although dictation equipment has under gone many changes over the years, one aspect of such equipment which has remained fairly constant is the size and arrangement of the equipment and the manner in which it is normally maintained in the office for use. Typically, a dictating machine is a unit in the order of ~ to 10 inches square and 3 to 4 inches high and rests upon the desk or credenza of the user in a position convenient to where the user sits so that he can hold a suitable microphone adjacent to his mouth, the microphone being connected to the dictating machine by a wire. Various media have been employed for recording the user's voice, among those being cylinders and disks on which a groove is cut much like that on a conventional phonograph record, or a wide plastic belt on which a groove is cut, a wide magnetic ~:`'`
31~2 belt on which the user's voice is recorded by means of a magnetic track, and more recently magnetic tape which is fed from a supply reel to a take up reel, as is well known in the tape recording art, or which is stored in cassettes which have become well known in connection with portable cassette recorders and play back devices.
During the past several years, a rather remarkable change as occurred in the development of dictation equipment which has resulted from miniaturization of both the electronic components which are conventionally part of modern dictation equipment as well as tape cassettes used therewith. It became apparent to both technical and business people in the dictation equipment field that it would be highly desirable if an entire dictating machine could be reduced to the size of what has long been the size of just the microphone unit of a typical desk top dictating machine. It was also recognized that the advantages of such a dictating machine would be quite substantial in that the user of the dictating machine would no longer be confined to the area of his desk or other place where the dictating machine is normally maintained, nor would he be put to the inconvenience of moving a relatively heavy and bqlky piece of equipment if he wished to use the dictating machine in a loeation different from that in which it was normally maintained. Accordingly, a large variety of miniaturized, hand held dictating machines soon appeared on the market which, while having individual differences witn respect to appearance, eontrols a~nd funetions, all had one thing in common, which was that they were small ~3~
enough to be conveniently held in one hand during operation.
These dictating machines adveraged in size about 6 inches long by 3 inches wide by an inch thick, were battery powered and would record the user's voice on magnetic tape stored in a cassette and included sufficient self contained components to provide for instant rewind and play back of the recording on the tape. As is well known to anyone who has investigated this type of product, the market for portable hand held dictating machines has seen enormous growth and success, and many major domestic and foreign electronic and office machine companies are competing with each other in the production and marketing of this product.
As has been the case in many other fields of elec-tronic products, modern technological developments in miniature electronic components has facilitated the design and development of consistently smaller dictating machines.
The development of miniature microphones, miniature trans-ducers for recording on and playing back from the magnetic tape, various electronic components utilized in any form of sound recording or reproducing apparatus and miniature speakers have all contributed significantly to the technology of miniaturizing dictating machines. ~ne major problem which has been encountered and which has proven to be very difficult to solve in connection with the design of small dictating machines is the miniaturization of the mechanical components which are necessary in order to move the recording member past the transducer~ or the record/play back head, as it is sometimes referred to. It was not until the development .. _ _ , . .. _, , . . .. . . ...... _ _ . _ , _ _ _ _ _ _, . .... _ .. .. .
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of the magnetic tape cassette that miniaturization of dictating machines was even contemplated in view of the fact that the earlier forms of recording media, that is disks or wide belts, did not lend themselves to miniaturization However, magnetic tape in cassette form has been developed in which the tape is extremely thin, in the order of 9 microns and relatively narrow in the order of 2 mm, and this has made possible the development of dictatiny machines in which a cassette can be used which is not much larger than a commemorative-type postage stamp and on which as much as 30 minutes of recording time is possible. However, the mechanical components necessary to drive the tape from the cassette to a recording or play-back position and back into the cassette are extremely difficult to miniaturize for a number of reasons. ~ne of these reasons is that as mechanical parts are made smaller, they become wea~er and cannot take the strain that would normally be imposed upon them in the course of operation to perform their intended functions. A
second reason is the difficulty encountered in designing small parts which hane limited strength capability so that they will inter-fit and function properly when a substantial amount of movement of these parts is required as is the case in the dictating machines. Still another reason is the problem of utilizing the limited amount of power which is available from a battery source to drive small capacity motors to accomplish the same overall mechanical operation as is accomplished in desk top dictating machines with substa~tially greater sources of power and larger capacity motors. These problems have resulted in a large amount of design and development in the miniaturized dictating machine field directed toward finding solutions to these problems, of which the foregoing are not all inclusive. While many of these problems have been solved to a su~stantial extent by developments in the prior art, some problems have not been adequately solved and some additional problems have been created by the solutions already proposed which thsmselves create the need for further development. Thus, there still remains considerable need for further technological develop-ments in miniaturized dictating machines, particularly in connection with a desire to further reduce the overall size of these machines to enhance the portability and the convenience of use thereof.
In most forms of audio recording and play-back equipment which use magnetic tape, there are two forms of drive for moving the tape from one reel to another past the recording and play-back transducer. The mechanically simpler of the two is the so-called tape reel drive, in which one of the tape storage reels in the cassette is driven so as to wind tape on the driven reel while simultaneously unwinding it from the other reel which would normally be in an idling condition. Under normal circumstances, all of the tape in a cassette would be stored on a supply reel except for a leader portion which would be connected to a take-up reel in order to permit the tape to be wound thereon when the cassette is inserted into the recording machine. In order to avoid unnecessary complication .
and expense, the take-up reel i5 driven of a constant angular velocity. A major disadvantage of this type of system is that the tape can never be moved past the recording transducer at a constant linear velocity, and this introduces a number of problems. One of these is that the tape cannot be efficiently utilized in terms Oe recording time since the linear velocity of the tape commences from a predetermined minimum and increases from that point. The reason for this is that the linear velocity of the tape gradually increases as the diameter of the tape stored on the take up reel increases since the take up reel is being driven at a constant angular velocity. In order to maintain flutter at a minimum acceptable level, it is necessary to fsed the tape past the recording transducer at a certain minimum linear velocity, which depends largely on certain characteristics of the tape. Clearly, satisfactory audio r~production would be accomplished if this minimum velocity could be maintained over the entire length of the tape. However, since the linear velocity of the tape is gradually increasing over its entire length, the entirs tape is being fed at a velocity that is more than necessary to maintain the desired minimum level of flutter of the recording. Thus, the length of tape in the cassette is being moved past the transducer in a considerably shorter period of time than what would otherwise be necessary if the tape were being moved at a constant linear velocity, and this of course reduces the amount of recording~time on the given length of tape. Another dis-advantage of the reel drive arrangement is that the uniformity _ _ _ .. . . . ..
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with which the tape is ~ed past tbe ~ransducer is dependent upon variations in the quality of the tape since the tape is literally being pulled from the supply reel by the take up reel and is thereby subjected to physical stresses which can result in slight variations in movement past the transducer.
Since these variations may not be reproduced in the trans-cribing equipment, the result will be a pronounced difference in the frequency of the reproduced signal and this will cause undesirable variations in the quality of the auuio reproduction.
The foregoing disadvantages are overcome by use of the so-called capstan drive. In thjs arrangement, a capstan is mounted in the recording machine immediately adjacent to the transducer, and a back up or p~essure roller assembly is provided so as to press the tape into feeding relationship with the drive capstan. The pressure roller is moveably mounted so that it can be disengaged from the drive capstan when it is desired to stop the feeding of the tape. In order to prevent slack tape from building up between the drive capstan and the tape up reel in the cassette, another drive is provided for the cassette take up reel which rotates the reel at an angular velocity fast enough to wind the tape upon the reel when the reel is empty at the same linear velocity at which the tape is being fed by the drive capstan. Typically, a slip clutch is provided so that as the tape builds up on the take up reel, the reel can rotate at a gradually slower angular velocity even though the drive to the.take up reel is maintained at a constant velocity. A
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principal advantage of the drive capstan feeding arrangement is that the recording time for a given length of tape is maximized because the tape i5 fed past the transducer at a constant linear velocity. Another advantage of the drive capstan arrangement is that it affords excellent control over the feeding of the tape past the transducer, particularly in that it permits the tape to be fed past the transducer at an extremely uniform linear velocity, thereby greatly reducing any tendency toward audio distortion resulting from variations in the movement of the tape past the transducer.
Also, since the drive capstan is typically mounted as close as possible to the transducer, there is very little likeli-hood that the physical characteristics of the tape will in any way effect the uniformity of linear velocity of the tape past the transducer.
There are however certain problems which arise in connection with capstan drive tape feeding assemblies. One of these is that the capstan must be driven with an extremely uniform rate of angular velocity in order to achieve a uniform linear velocity of the tape. Since the drive capstan is typically a very small diameter element having very little mass and therefore highly subject to minute inertial changes, the drive input to the capstan must be very accurate. A second problem is that not only must the drive capstan be driven but also the tape reel must be driven, as well as the mechanism for moving the pressure roller into contact with the capstan to drive the tape, all of which means that a greater number of parts must be 3~Z
g driven in this type of system than in the tape reel drive system described above. Hence, a larger power input is needed, typically in the form of a larger drive motor.
These problems in miniaturized capstan drive feediny systems have been relatively easily solved in prior art audio recording and play back equipment where size limi-tations have not been a major problem in connection with the design of drive components. However, these problems are greatly magnified, and their solutions made much more difficult, in the environment of miniaturized hand held dictating machines. As will be seen in more detail hereinafter, it has proven much more difficult to provide highly stable, uniform velocity capstan drive mechanisms in the miniaturized form which these mechanisms must take in order to be physically compatable with the limited dimensions of a miniaturized hand held dictating machine.
Description of the Prior Art ~ ne type of miniaturized capstan drive tape feeding system is illustrated in U.S. Patent No. 4,305,103, in which, as best seen in FIG. 4, a motor 24 drives a motor pulley 90 which in turn drives a flywheel 96 having a rubber tire 98 thereon, a drive capstan 36 being coaxial with the fly wheel 96 and being driven thereby. A pinch roller 38 is brought into contact with the capstan 36 by a suitable mechanism when it is desired to feed tape. A drive gear 92 is also mounted coaxially with the capstan 36 and drives an intermediate ~ear 94 which in turn ~rives the reel gears 74 ~.
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and 174 which are mounted on the reel shafts 62 and 162.
The reel shafts 62 and 162 drive the cassette reels through suitable one way and slip clutches in order to facilitate winding and rewinding oE the tape between the tape reels.
One of the major disadvantages of this type of drive is the large amount of space that is required for the flywheel 96 90 that it will provide the necessary inertia to maintin a uniform angular velocity of the capstan 36. It can be seen in FIG. 1 that the flywheel occupies substantially the entire width of the dictating machine and, if it were desired to make the dictating machine narrower than that shown in ~IG. 1, the flywheel would obviously have to be of a smaller diameter, and this would result in inertia being sacrificed. Another disadvantage is that a rela~ively slow speed motor must be utilized because there is only a one speed reduction stage between the motor and the drive capstan, that being the reduction between the diameter of the pulley 30 and the diameter of the flywheel 96. Since it i9 more difficult to maintain slow speed motors at a constant rate of speed than high speed motors, a certain degree of inaccuracy of the drive system ls introduced right at the motor.
Another form of capstan drive tape feed arrangement is that snown in U.S. Patent No. 4,134,145 in which it is seen that a motor has a drive pulley which drives a belt connectad to a second driven pulley which is mounted coaxially with the drive capstan. ~nothar pulley mounted coaxially with the drive capstan drives another belt which in turn _ . _ _ _ ., _ . . . _ _ _ . . _ .. . . _ .. ., . . _ . _ ~ _ _ ~ . . .. .. . _ .. _ . _ ~ .
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drives a pair of pulleys mounted coaxially with the drive shafts for the tape reels of the cassette. Although this type of drive arrangement eliminates the necessity for the extremely large flywheel shown in the '1~3 patent, it has the disadvantages of not having a sufficient amount of mass in the system to provide sufficient inertial force to stabilize the drive chain and to maintain a constant linear velocity of the tape, and it also necessitates the use of a relatively slow speed motor because of the fact that there is only one stage of speed reduction between the pulley on the motor and the pulley on the drive capstan. Thus, it is seen, that a truly satisfactory capstan drive tape feeding arrangement has not been provided prior to the present invention for use in a miniaturi2ed hand held dictating machine.
Summary of the Invention The foregoing problems and disadvantages of the prior art capstan drive tape feeding assemblies are substantially obviated if not entirely eliminated by the capstan drive system of the present invention. As will be seen in more detail hereinafter, the present invention, in its broader aspects, comprises a tape drive system for a miniature portable dictating machine in which there is a generally rectangular frame which is substantially greater in length than it is in width, and a cassette receiving and storing means is provided adjacent one end of the frame for receiving and storing a tape cassette in position to cause tape, which .. ~
is stored in the cassette on storage reels, to have a portion thereof between the reels operatively exposed from the cassette towards the opposite end of the Erame. A tape reel drive means is mounted on the Erame in the cassette receiving and storing area for selectively driving one or the other of the tape storage reels when the cassette is positioned in the frame. A tape drive capstan is mounted for rotation on the frame at an intermediats position so as to contact the inner face of the exposed portion of the tape when the cassette is positioned in the frame. A record/play back transducer and a resilient back up or pressure roller are both mounted on a support means which in turn is mounted on the frame for limited reciprocable movement longitudinally of the frame, so that the transducer and back up roller are moved between a forward position in which the transducer and back up roller are in contact with the outer face of the exposed portion of the tape, and a rearward position in which both the transducer and the back up roller are both out of contact with the tape. A multi-stage speed reduction main drive system is also mounted on the frame and extends between the aforementioned intermediate position and the end of the frame opposite the end in which the cassette is mounted, and which simultaneously drives both the drive capstan and the tape reel drive means at a constant rate of speed so that when the aforementioned support is in the forward position the exposed portion of the tape is moved past tne tran9ducer and wounù upon the tape reel at a consta~t linear velocity.
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In some of its more limited aspects, the present invention includes a high velocity, reversable motor mounted on the frame adjacent the end thereof opposite to that at which the cassette is received. The motor has a flywheel mounted on the drive shaft in order to add inertia to the drive system, and a relatively small diameter pulley is mounted on the motor drive shaft adjacent to the flywheel and forms the input of a first pair of feed reduction pulleys mounted between the motor and another intermediate position between the motor and the intermediate position at which the drive capstan is located. The other pulley of the first pair of speed reduction pulleys is a relatively large diameter pulley, and a second relatively small diameter pulley is mounted coaxially with the large diameter pulley, and it forms the input of a second pair of speed reduction pulleys which is mounted between the latter mentioned intermediate position and the intermediate position at which the drive capstan is located. The first and second sets of speed reduction pulleys are connected by suitable belts in order to complete the drive. A feature of the invention is that the intermediate position where the larger diameter pulley of the first pair and the smaller diameter pulley of the second pair are coaxially mounted is located closer to one or the othar of the drive motor and the intermediate position where the drive capstan is located so that the length of the belts that connect the first pair of speed reduction pulleys and the second pair of speed reduction pulleys are not the same. This tends to reduce peaks of , . _ _ _ _ _ _ ~ , . .................. ~ . .. .. _ . . ..
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flutter which would result if the two belts were of the same length and therefore had the same natural resonance, as will become more clear in the detailed description oE the invention hereinbelow.
Having briefly described the general nature of the present invention, it is a principal object thereof to provide an improved tape drive system for a miniature hand held dictating machine.
It is another object of the present invention to provide a tape drive system for a miniature hand held dictating machine in which a drive capstan is driven at a relatively low speed from a very high speed drive motor utili~ing a multi-stage speed reduction assembly between the drive capstan and the motor.
It is still another object of the present invention to provide a tape drive system for a miniature hand held dictating machine in which a pair of tape storage reels mounted in a cassette are selectively driven from the same source of power as that which drives the drive capstan and with the same constant angular velocity as that which is applied to the drive capstan.
It is yet another object of the present invention to provide a tape drive system for a miniature hand held dictating machine in which the drive system includes a plurality of flywheels in order to provide a sufficient amount of inertial force to maintain the angular velocity of the drive capstan constant in spite of variations which may be caused by irregularities in the operation of the motor or 3~
frequency variations caused by the belt drives.
These and other objects and advantages of the present invention will become more apparent from an understanding from the following detailed description of a presently preferred embodiment of the present invention when considered in con~unction with the accompanying drawings in which:
FIG. 1 is a perspective view of a miniature hand held dictating machine which embodies the present invention;
FIG. 2 is an exploced perspective view of the dictating machine shown in FIG. 1 when viewed from the opposite side as that shown in FIG. 1;
FIG. 3 is a plan view of the dictating machine shown in FIG. 1 when viewed from the back side of the dictating machine and drawn to an enlarged scale;
FIG. 4 is a plan view of the dictating machine shown in FIG. 1 when viewed from the front side and drawn to the same scale as that in FIG. 3;
FIG. 5 is a plan view of approximately the forward half of the dictating machine shown in FIG. 1 illustrati~g the relative position of a cassette in the dicatating machine and the operative components for feeding the tape and recording thereon and playing back therefrom, and drawn to a still further enlarged scale as that in FIGS. 3 and 4;
FIG. 6 is a perspective view of the details shown in FIG. 5;
FIG. 7 is a perspective view of just the tape drive system extending from the drive motor a~ one end of the dictat,ing machine to the tape reel drive assemblies ad~acent -the other end of the dicatating machine;
FIG. 8 is a sectional view of the tape reel drive assemblies shown in FIG.7 and illus~rating the details of the one way clutches and slip clutches in each assembly;
FlG. g is a perspective, partly exp-loded view of the one way clutch assemblies which form part of the tape reel drive assemblies shown in FIG. 8;
FIG. 10 is a plan view of the tape reel drive assemblies showing the parts of the one way clutches in the position they occupy when the drive belt is rotating in a counter clock wise position;
FIG. 11 is a view similar to FIG. 10 showing the position of the parts of the one way clutches with the drive belt moving in a clockwise direction; and FIG. 12 is a perspective view of one of the slip clutches shown in ~IG. 8 and which forms part of each of the tape reel drive assemblies.
Detailed Description of the Preferred Embodiment Referring to FIGS. 1 and 2, the dictating machine in which the present invention resides is generally designated by the reference numeral 10, and is seen to comprise a body or frame member generally designated by the reference numeral 12 in FIG. 2 and on which all of the components of the dictating machine are mounted, a back cover 14 which encloses ~he rear portion of the frame t2 and a front cover 16 which encloses the front portion of the frame 12. A
small cassette cover 18 is connected to an end edge of the _ _ . ~, __ ~ _ _ _ . . _ _ _ _ _ . , _ _ _ _ ~ . , _ .. . . . , . . . . . ., _ _ 31P~Z
cover 16 by a suitable hinge means 20 and encloses a cassette chamber 22 formed in one end of the frame 12, the chamber 22 being adapted to receive a cassette generally designated by the reference numeral 24 and which is mounted in the cassette chamber 22 in a manner to be described in more detail hereinbelow.
As best seen in FIG. 1, a plurality of control buttons are suitably retained on the frame 12 by the cover 16 and project through openings in the cover 16 so as to be accessible to a user of the dictating machine for thumb operation thereof. The controls comprise a record button 26; a combined record lock and conference button 2~ which both locks in the record control so that it is unnecessary to maintain the record button 26 depressed while dictating and appropriately sets the dictating machine to pick up voices from a distance; a combined rewind and play button 30 which, when depressed and held, causes the tape in the cassette 24 to be rewound toward an initial starting position, and when released, automatically puts the dictating machine into a play mode; a stop button 32 by which the dictating machine can be stopped regardless of which mode it is in when the stop button is depressed; a cue button 34 which places an audible signal on the tape to indicate to a transcribing operator that a particular point on the tape ~such as the end of a letter) has been reached; a display reset button 36 resets the liquid crystal display tLCD) 41 tdescribed below); and a fast forward control 3B by which the tape can be moved in a forward direction at a fast
PORTAsLE DICTATINC MACtllNE
Background of the Invention Field of_the Invention The present invention relates generally to the field of office dictation equipment, and more particularly to a drive mechanism for a miniaturized, portable, hand held dictating machine.
Office dictation equipment has been in widespread use for well over half a century, and various types of office dictation equipment are found in most offices where any substantial volume of various forms of information is dictated and must be transcribed and typed. Although dictation equipment has under gone many changes over the years, one aspect of such equipment which has remained fairly constant is the size and arrangement of the equipment and the manner in which it is normally maintained in the office for use. Typically, a dictating machine is a unit in the order of ~ to 10 inches square and 3 to 4 inches high and rests upon the desk or credenza of the user in a position convenient to where the user sits so that he can hold a suitable microphone adjacent to his mouth, the microphone being connected to the dictating machine by a wire. Various media have been employed for recording the user's voice, among those being cylinders and disks on which a groove is cut much like that on a conventional phonograph record, or a wide plastic belt on which a groove is cut, a wide magnetic ~:`'`
31~2 belt on which the user's voice is recorded by means of a magnetic track, and more recently magnetic tape which is fed from a supply reel to a take up reel, as is well known in the tape recording art, or which is stored in cassettes which have become well known in connection with portable cassette recorders and play back devices.
During the past several years, a rather remarkable change as occurred in the development of dictation equipment which has resulted from miniaturization of both the electronic components which are conventionally part of modern dictation equipment as well as tape cassettes used therewith. It became apparent to both technical and business people in the dictation equipment field that it would be highly desirable if an entire dictating machine could be reduced to the size of what has long been the size of just the microphone unit of a typical desk top dictating machine. It was also recognized that the advantages of such a dictating machine would be quite substantial in that the user of the dictating machine would no longer be confined to the area of his desk or other place where the dictating machine is normally maintained, nor would he be put to the inconvenience of moving a relatively heavy and bqlky piece of equipment if he wished to use the dictating machine in a loeation different from that in which it was normally maintained. Accordingly, a large variety of miniaturized, hand held dictating machines soon appeared on the market which, while having individual differences witn respect to appearance, eontrols a~nd funetions, all had one thing in common, which was that they were small ~3~
enough to be conveniently held in one hand during operation.
These dictating machines adveraged in size about 6 inches long by 3 inches wide by an inch thick, were battery powered and would record the user's voice on magnetic tape stored in a cassette and included sufficient self contained components to provide for instant rewind and play back of the recording on the tape. As is well known to anyone who has investigated this type of product, the market for portable hand held dictating machines has seen enormous growth and success, and many major domestic and foreign electronic and office machine companies are competing with each other in the production and marketing of this product.
As has been the case in many other fields of elec-tronic products, modern technological developments in miniature electronic components has facilitated the design and development of consistently smaller dictating machines.
The development of miniature microphones, miniature trans-ducers for recording on and playing back from the magnetic tape, various electronic components utilized in any form of sound recording or reproducing apparatus and miniature speakers have all contributed significantly to the technology of miniaturizing dictating machines. ~ne major problem which has been encountered and which has proven to be very difficult to solve in connection with the design of small dictating machines is the miniaturization of the mechanical components which are necessary in order to move the recording member past the transducer~ or the record/play back head, as it is sometimes referred to. It was not until the development .. _ _ , . .. _, , . . .. . . ...... _ _ . _ , _ _ _ _ _ _, . .... _ .. .. .
.~ .
..~
of the magnetic tape cassette that miniaturization of dictating machines was even contemplated in view of the fact that the earlier forms of recording media, that is disks or wide belts, did not lend themselves to miniaturization However, magnetic tape in cassette form has been developed in which the tape is extremely thin, in the order of 9 microns and relatively narrow in the order of 2 mm, and this has made possible the development of dictatiny machines in which a cassette can be used which is not much larger than a commemorative-type postage stamp and on which as much as 30 minutes of recording time is possible. However, the mechanical components necessary to drive the tape from the cassette to a recording or play-back position and back into the cassette are extremely difficult to miniaturize for a number of reasons. ~ne of these reasons is that as mechanical parts are made smaller, they become wea~er and cannot take the strain that would normally be imposed upon them in the course of operation to perform their intended functions. A
second reason is the difficulty encountered in designing small parts which hane limited strength capability so that they will inter-fit and function properly when a substantial amount of movement of these parts is required as is the case in the dictating machines. Still another reason is the problem of utilizing the limited amount of power which is available from a battery source to drive small capacity motors to accomplish the same overall mechanical operation as is accomplished in desk top dictating machines with substa~tially greater sources of power and larger capacity motors. These problems have resulted in a large amount of design and development in the miniaturized dictating machine field directed toward finding solutions to these problems, of which the foregoing are not all inclusive. While many of these problems have been solved to a su~stantial extent by developments in the prior art, some problems have not been adequately solved and some additional problems have been created by the solutions already proposed which thsmselves create the need for further development. Thus, there still remains considerable need for further technological develop-ments in miniaturized dictating machines, particularly in connection with a desire to further reduce the overall size of these machines to enhance the portability and the convenience of use thereof.
In most forms of audio recording and play-back equipment which use magnetic tape, there are two forms of drive for moving the tape from one reel to another past the recording and play-back transducer. The mechanically simpler of the two is the so-called tape reel drive, in which one of the tape storage reels in the cassette is driven so as to wind tape on the driven reel while simultaneously unwinding it from the other reel which would normally be in an idling condition. Under normal circumstances, all of the tape in a cassette would be stored on a supply reel except for a leader portion which would be connected to a take-up reel in order to permit the tape to be wound thereon when the cassette is inserted into the recording machine. In order to avoid unnecessary complication .
and expense, the take-up reel i5 driven of a constant angular velocity. A major disadvantage of this type of system is that the tape can never be moved past the recording transducer at a constant linear velocity, and this introduces a number of problems. One of these is that the tape cannot be efficiently utilized in terms Oe recording time since the linear velocity of the tape commences from a predetermined minimum and increases from that point. The reason for this is that the linear velocity of the tape gradually increases as the diameter of the tape stored on the take up reel increases since the take up reel is being driven at a constant angular velocity. In order to maintain flutter at a minimum acceptable level, it is necessary to fsed the tape past the recording transducer at a certain minimum linear velocity, which depends largely on certain characteristics of the tape. Clearly, satisfactory audio r~production would be accomplished if this minimum velocity could be maintained over the entire length of the tape. However, since the linear velocity of the tape is gradually increasing over its entire length, the entirs tape is being fed at a velocity that is more than necessary to maintain the desired minimum level of flutter of the recording. Thus, the length of tape in the cassette is being moved past the transducer in a considerably shorter period of time than what would otherwise be necessary if the tape were being moved at a constant linear velocity, and this of course reduces the amount of recording~time on the given length of tape. Another dis-advantage of the reel drive arrangement is that the uniformity _ _ _ .. . . . ..
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with which the tape is ~ed past tbe ~ransducer is dependent upon variations in the quality of the tape since the tape is literally being pulled from the supply reel by the take up reel and is thereby subjected to physical stresses which can result in slight variations in movement past the transducer.
Since these variations may not be reproduced in the trans-cribing equipment, the result will be a pronounced difference in the frequency of the reproduced signal and this will cause undesirable variations in the quality of the auuio reproduction.
The foregoing disadvantages are overcome by use of the so-called capstan drive. In thjs arrangement, a capstan is mounted in the recording machine immediately adjacent to the transducer, and a back up or p~essure roller assembly is provided so as to press the tape into feeding relationship with the drive capstan. The pressure roller is moveably mounted so that it can be disengaged from the drive capstan when it is desired to stop the feeding of the tape. In order to prevent slack tape from building up between the drive capstan and the tape up reel in the cassette, another drive is provided for the cassette take up reel which rotates the reel at an angular velocity fast enough to wind the tape upon the reel when the reel is empty at the same linear velocity at which the tape is being fed by the drive capstan. Typically, a slip clutch is provided so that as the tape builds up on the take up reel, the reel can rotate at a gradually slower angular velocity even though the drive to the.take up reel is maintained at a constant velocity. A
.. . _ _ . . . _ _ _ _ . . ....... . . . . . .
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principal advantage of the drive capstan feeding arrangement is that the recording time for a given length of tape is maximized because the tape i5 fed past the transducer at a constant linear velocity. Another advantage of the drive capstan arrangement is that it affords excellent control over the feeding of the tape past the transducer, particularly in that it permits the tape to be fed past the transducer at an extremely uniform linear velocity, thereby greatly reducing any tendency toward audio distortion resulting from variations in the movement of the tape past the transducer.
Also, since the drive capstan is typically mounted as close as possible to the transducer, there is very little likeli-hood that the physical characteristics of the tape will in any way effect the uniformity of linear velocity of the tape past the transducer.
There are however certain problems which arise in connection with capstan drive tape feeding assemblies. One of these is that the capstan must be driven with an extremely uniform rate of angular velocity in order to achieve a uniform linear velocity of the tape. Since the drive capstan is typically a very small diameter element having very little mass and therefore highly subject to minute inertial changes, the drive input to the capstan must be very accurate. A second problem is that not only must the drive capstan be driven but also the tape reel must be driven, as well as the mechanism for moving the pressure roller into contact with the capstan to drive the tape, all of which means that a greater number of parts must be 3~Z
g driven in this type of system than in the tape reel drive system described above. Hence, a larger power input is needed, typically in the form of a larger drive motor.
These problems in miniaturized capstan drive feediny systems have been relatively easily solved in prior art audio recording and play back equipment where size limi-tations have not been a major problem in connection with the design of drive components. However, these problems are greatly magnified, and their solutions made much more difficult, in the environment of miniaturized hand held dictating machines. As will be seen in more detail hereinafter, it has proven much more difficult to provide highly stable, uniform velocity capstan drive mechanisms in the miniaturized form which these mechanisms must take in order to be physically compatable with the limited dimensions of a miniaturized hand held dictating machine.
Description of the Prior Art ~ ne type of miniaturized capstan drive tape feeding system is illustrated in U.S. Patent No. 4,305,103, in which, as best seen in FIG. 4, a motor 24 drives a motor pulley 90 which in turn drives a flywheel 96 having a rubber tire 98 thereon, a drive capstan 36 being coaxial with the fly wheel 96 and being driven thereby. A pinch roller 38 is brought into contact with the capstan 36 by a suitable mechanism when it is desired to feed tape. A drive gear 92 is also mounted coaxially with the capstan 36 and drives an intermediate ~ear 94 which in turn ~rives the reel gears 74 ~.
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and 174 which are mounted on the reel shafts 62 and 162.
The reel shafts 62 and 162 drive the cassette reels through suitable one way and slip clutches in order to facilitate winding and rewinding oE the tape between the tape reels.
One of the major disadvantages of this type of drive is the large amount of space that is required for the flywheel 96 90 that it will provide the necessary inertia to maintin a uniform angular velocity of the capstan 36. It can be seen in FIG. 1 that the flywheel occupies substantially the entire width of the dictating machine and, if it were desired to make the dictating machine narrower than that shown in ~IG. 1, the flywheel would obviously have to be of a smaller diameter, and this would result in inertia being sacrificed. Another disadvantage is that a rela~ively slow speed motor must be utilized because there is only a one speed reduction stage between the motor and the drive capstan, that being the reduction between the diameter of the pulley 30 and the diameter of the flywheel 96. Since it i9 more difficult to maintain slow speed motors at a constant rate of speed than high speed motors, a certain degree of inaccuracy of the drive system ls introduced right at the motor.
Another form of capstan drive tape feed arrangement is that snown in U.S. Patent No. 4,134,145 in which it is seen that a motor has a drive pulley which drives a belt connectad to a second driven pulley which is mounted coaxially with the drive capstan. ~nothar pulley mounted coaxially with the drive capstan drives another belt which in turn _ . _ _ _ ., _ . . . _ _ _ . . _ .. . . _ .. ., . . _ . _ ~ _ _ ~ . . .. .. . _ .. _ . _ ~ .
... . ,~
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drives a pair of pulleys mounted coaxially with the drive shafts for the tape reels of the cassette. Although this type of drive arrangement eliminates the necessity for the extremely large flywheel shown in the '1~3 patent, it has the disadvantages of not having a sufficient amount of mass in the system to provide sufficient inertial force to stabilize the drive chain and to maintain a constant linear velocity of the tape, and it also necessitates the use of a relatively slow speed motor because of the fact that there is only one stage of speed reduction between the pulley on the motor and the pulley on the drive capstan. Thus, it is seen, that a truly satisfactory capstan drive tape feeding arrangement has not been provided prior to the present invention for use in a miniaturi2ed hand held dictating machine.
Summary of the Invention The foregoing problems and disadvantages of the prior art capstan drive tape feeding assemblies are substantially obviated if not entirely eliminated by the capstan drive system of the present invention. As will be seen in more detail hereinafter, the present invention, in its broader aspects, comprises a tape drive system for a miniature portable dictating machine in which there is a generally rectangular frame which is substantially greater in length than it is in width, and a cassette receiving and storing means is provided adjacent one end of the frame for receiving and storing a tape cassette in position to cause tape, which .. ~
is stored in the cassette on storage reels, to have a portion thereof between the reels operatively exposed from the cassette towards the opposite end of the Erame. A tape reel drive means is mounted on the Erame in the cassette receiving and storing area for selectively driving one or the other of the tape storage reels when the cassette is positioned in the frame. A tape drive capstan is mounted for rotation on the frame at an intermediats position so as to contact the inner face of the exposed portion of the tape when the cassette is positioned in the frame. A record/play back transducer and a resilient back up or pressure roller are both mounted on a support means which in turn is mounted on the frame for limited reciprocable movement longitudinally of the frame, so that the transducer and back up roller are moved between a forward position in which the transducer and back up roller are in contact with the outer face of the exposed portion of the tape, and a rearward position in which both the transducer and the back up roller are both out of contact with the tape. A multi-stage speed reduction main drive system is also mounted on the frame and extends between the aforementioned intermediate position and the end of the frame opposite the end in which the cassette is mounted, and which simultaneously drives both the drive capstan and the tape reel drive means at a constant rate of speed so that when the aforementioned support is in the forward position the exposed portion of the tape is moved past tne tran9ducer and wounù upon the tape reel at a consta~t linear velocity.
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In some of its more limited aspects, the present invention includes a high velocity, reversable motor mounted on the frame adjacent the end thereof opposite to that at which the cassette is received. The motor has a flywheel mounted on the drive shaft in order to add inertia to the drive system, and a relatively small diameter pulley is mounted on the motor drive shaft adjacent to the flywheel and forms the input of a first pair of feed reduction pulleys mounted between the motor and another intermediate position between the motor and the intermediate position at which the drive capstan is located. The other pulley of the first pair of speed reduction pulleys is a relatively large diameter pulley, and a second relatively small diameter pulley is mounted coaxially with the large diameter pulley, and it forms the input of a second pair of speed reduction pulleys which is mounted between the latter mentioned intermediate position and the intermediate position at which the drive capstan is located. The first and second sets of speed reduction pulleys are connected by suitable belts in order to complete the drive. A feature of the invention is that the intermediate position where the larger diameter pulley of the first pair and the smaller diameter pulley of the second pair are coaxially mounted is located closer to one or the othar of the drive motor and the intermediate position where the drive capstan is located so that the length of the belts that connect the first pair of speed reduction pulleys and the second pair of speed reduction pulleys are not the same. This tends to reduce peaks of , . _ _ _ _ _ _ ~ , . .................. ~ . .. .. _ . . ..
.
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flutter which would result if the two belts were of the same length and therefore had the same natural resonance, as will become more clear in the detailed description oE the invention hereinbelow.
Having briefly described the general nature of the present invention, it is a principal object thereof to provide an improved tape drive system for a miniature hand held dictating machine.
It is another object of the present invention to provide a tape drive system for a miniature hand held dictating machine in which a drive capstan is driven at a relatively low speed from a very high speed drive motor utili~ing a multi-stage speed reduction assembly between the drive capstan and the motor.
It is still another object of the present invention to provide a tape drive system for a miniature hand held dictating machine in which a pair of tape storage reels mounted in a cassette are selectively driven from the same source of power as that which drives the drive capstan and with the same constant angular velocity as that which is applied to the drive capstan.
It is yet another object of the present invention to provide a tape drive system for a miniature hand held dictating machine in which the drive system includes a plurality of flywheels in order to provide a sufficient amount of inertial force to maintain the angular velocity of the drive capstan constant in spite of variations which may be caused by irregularities in the operation of the motor or 3~
frequency variations caused by the belt drives.
These and other objects and advantages of the present invention will become more apparent from an understanding from the following detailed description of a presently preferred embodiment of the present invention when considered in con~unction with the accompanying drawings in which:
FIG. 1 is a perspective view of a miniature hand held dictating machine which embodies the present invention;
FIG. 2 is an exploced perspective view of the dictating machine shown in FIG. 1 when viewed from the opposite side as that shown in FIG. 1;
FIG. 3 is a plan view of the dictating machine shown in FIG. 1 when viewed from the back side of the dictating machine and drawn to an enlarged scale;
FIG. 4 is a plan view of the dictating machine shown in FIG. 1 when viewed from the front side and drawn to the same scale as that in FIG. 3;
FIG. 5 is a plan view of approximately the forward half of the dictating machine shown in FIG. 1 illustrati~g the relative position of a cassette in the dicatating machine and the operative components for feeding the tape and recording thereon and playing back therefrom, and drawn to a still further enlarged scale as that in FIGS. 3 and 4;
FIG. 6 is a perspective view of the details shown in FIG. 5;
FIG. 7 is a perspective view of just the tape drive system extending from the drive motor a~ one end of the dictat,ing machine to the tape reel drive assemblies ad~acent -the other end of the dicatating machine;
FIG. 8 is a sectional view of the tape reel drive assemblies shown in FIG.7 and illus~rating the details of the one way clutches and slip clutches in each assembly;
FlG. g is a perspective, partly exp-loded view of the one way clutch assemblies which form part of the tape reel drive assemblies shown in FIG. 8;
FIG. 10 is a plan view of the tape reel drive assemblies showing the parts of the one way clutches in the position they occupy when the drive belt is rotating in a counter clock wise position;
FIG. 11 is a view similar to FIG. 10 showing the position of the parts of the one way clutches with the drive belt moving in a clockwise direction; and FIG. 12 is a perspective view of one of the slip clutches shown in ~IG. 8 and which forms part of each of the tape reel drive assemblies.
Detailed Description of the Preferred Embodiment Referring to FIGS. 1 and 2, the dictating machine in which the present invention resides is generally designated by the reference numeral 10, and is seen to comprise a body or frame member generally designated by the reference numeral 12 in FIG. 2 and on which all of the components of the dictating machine are mounted, a back cover 14 which encloses ~he rear portion of the frame t2 and a front cover 16 which encloses the front portion of the frame 12. A
small cassette cover 18 is connected to an end edge of the _ _ . ~, __ ~ _ _ _ . . _ _ _ _ _ . , _ _ _ _ ~ . , _ .. . . . , . . . . . ., _ _ 31P~Z
cover 16 by a suitable hinge means 20 and encloses a cassette chamber 22 formed in one end of the frame 12, the chamber 22 being adapted to receive a cassette generally designated by the reference numeral 24 and which is mounted in the cassette chamber 22 in a manner to be described in more detail hereinbelow.
As best seen in FIG. 1, a plurality of control buttons are suitably retained on the frame 12 by the cover 16 and project through openings in the cover 16 so as to be accessible to a user of the dictating machine for thumb operation thereof. The controls comprise a record button 26; a combined record lock and conference button 2~ which both locks in the record control so that it is unnecessary to maintain the record button 26 depressed while dictating and appropriately sets the dictating machine to pick up voices from a distance; a combined rewind and play button 30 which, when depressed and held, causes the tape in the cassette 24 to be rewound toward an initial starting position, and when released, automatically puts the dictating machine into a play mode; a stop button 32 by which the dictating machine can be stopped regardless of which mode it is in when the stop button is depressed; a cue button 34 which places an audible signal on the tape to indicate to a transcribing operator that a particular point on the tape ~such as the end of a letter) has been reached; a display reset button 36 resets the liquid crystal display tLCD) 41 tdescribed below); and a fast forward control 3B by which the tape can be moved in a forward direction at a fast
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speed, this function being the opposite of the rewind. The front cover 16 also has a window 40 which exposes the LCD
display 41 which, under the control of a microprocessor, provides the operator with certain information regarding the mode of operation of the dictating machine and also the position of the tape at any given time.
As best seen in FIG. 2, the dictating machine 10 is powered by a suitable battery 42 which is received through an opening 44 in an end wall 46 of the cover 16 and held in place by a curved guide member 48 which is preferably formed integrally with the frame 12. A spring 50 is pressed against the rear face of the battery 42 by a cap 52 which is threadedly engaged with the opening 44 in order to securely hold the battery in place and also provide necessary electrical contact between the battery and the operating components of the dictating machina. Referring now to FIG.
2, it will be seen that the overall arrangement of the parts of the dictating machine 10 is broken down irto three sections, a main drive assembly generally designated by the reference numeral 54, a record/play controls assembly generally indicated by the reference numeral 56, and a cassette mounting and drive assembly generally designated by the reference numeral 58. For the sake of clarity in understanding the operation of the dictating machine 10, the record/play controls assembly 56 will be described first with reference to FIGS. 2 through 6.
As best seen in FIGS. 2, 3 and 6 a small DC motor 60 is suitably mounted in a central location of the frame a ~z~
12, and a drive gear 62 is mounted on the motor drive shaft.
The gear 62 meshes with an intermediate gear 64 which is mounted co-axially with another intermediate gear 66, which in turn meshes with a further intermediats gear 68 mounted on a shaft 70. The shaft 70 carries a worm gear 72 which meshes with a pinion 74 carried on a shaft 75 which extends perpendicularly to the shaft 70 and carries a cam 76 on the opposite end thereof. The relationship of the parts thus far described are best seen in FIG. 6, with the particular shape of the cam 76 being best seen in FIGS. 4, 5 and 6.
The cam 76 has a radially extending rise or finger 77 which engages with a cam follower 78, the cam follower 78 being the terminal portion of a rearwardly extending arm 80 which is best seen in FIGS. 4 and S. The rearwardly extending arm 80 is part of a lateral support member 82 which supports a number of components to be hereinafter described. The lateral support member 82 extends from one side of the dictating machine to the other and is supported for limited reciprocable movement longitudinally of the frame 12 by a plurality of pin and slot connections between the support member 82 and the frame 12. Specificaily, these are best seen in FIGS. 3 and 5 as pins 84, 86 and 88, which are mounted in the frame 12 and which engage in slots 90, 92 and 94 respectively formed in the support member 82. The lot 90 is actually formed in a portion of the rearwardly extend-ing arm 80 of the support member 82. By comparing the relative position of the pins and slots just described betwee~ FIGS. 3 and FIG. 5, as well as the angular position . _ . . _ . ... _ ... . _ . .. , . , . _ , . _
speed, this function being the opposite of the rewind. The front cover 16 also has a window 40 which exposes the LCD
display 41 which, under the control of a microprocessor, provides the operator with certain information regarding the mode of operation of the dictating machine and also the position of the tape at any given time.
As best seen in FIG. 2, the dictating machine 10 is powered by a suitable battery 42 which is received through an opening 44 in an end wall 46 of the cover 16 and held in place by a curved guide member 48 which is preferably formed integrally with the frame 12. A spring 50 is pressed against the rear face of the battery 42 by a cap 52 which is threadedly engaged with the opening 44 in order to securely hold the battery in place and also provide necessary electrical contact between the battery and the operating components of the dictating machina. Referring now to FIG.
2, it will be seen that the overall arrangement of the parts of the dictating machine 10 is broken down irto three sections, a main drive assembly generally designated by the reference numeral 54, a record/play controls assembly generally indicated by the reference numeral 56, and a cassette mounting and drive assembly generally designated by the reference numeral 58. For the sake of clarity in understanding the operation of the dictating machine 10, the record/play controls assembly 56 will be described first with reference to FIGS. 2 through 6.
As best seen in FIGS. 2, 3 and 6 a small DC motor 60 is suitably mounted in a central location of the frame a ~z~
12, and a drive gear 62 is mounted on the motor drive shaft.
The gear 62 meshes with an intermediate gear 64 which is mounted co-axially with another intermediate gear 66, which in turn meshes with a further intermediats gear 68 mounted on a shaft 70. The shaft 70 carries a worm gear 72 which meshes with a pinion 74 carried on a shaft 75 which extends perpendicularly to the shaft 70 and carries a cam 76 on the opposite end thereof. The relationship of the parts thus far described are best seen in FIG. 6, with the particular shape of the cam 76 being best seen in FIGS. 4, 5 and 6.
The cam 76 has a radially extending rise or finger 77 which engages with a cam follower 78, the cam follower 78 being the terminal portion of a rearwardly extending arm 80 which is best seen in FIGS. 4 and S. The rearwardly extending arm 80 is part of a lateral support member 82 which supports a number of components to be hereinafter described. The lateral support member 82 extends from one side of the dictating machine to the other and is supported for limited reciprocable movement longitudinally of the frame 12 by a plurality of pin and slot connections between the support member 82 and the frame 12. Specificaily, these are best seen in FIGS. 3 and 5 as pins 84, 86 and 88, which are mounted in the frame 12 and which engage in slots 90, 92 and 94 respectively formed in the support member 82. The lot 90 is actually formed in a portion of the rearwardly extend-ing arm 80 of the support member 82. By comparing the relative position of the pins and slots just described betwee~ FIGS. 3 and FIG. 5, as well as the angular position . _ . . _ . ... _ ... . _ . .. , . , . _ , . _
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of the cam 76 with respect to the cam follower 78, it will be seen that rotation of the cam 76, commencing from the position shown in FIG. 5, in a counter-cloc.~wise direction will gradually move the cam follower 78 toward the lower end of the figure, that is, rearwardly with-respect to the dlctating machine 10. As the cam follower 78 moves rearwardly, the laterally extending support 82 also moves rearwardly in order to move the components mounted thereon away from the cassette chamber 22. As best seen in FIGS. 4 and 6, a pair of springs 96 are intérconnected between suitable apertures 98 formed on the suppor~ member 82 and suitable abutments 100 formed on the frame 12. The purpose of the springs 96 is to pull the support member 82 back to the position shown in FIG. 5 after the cam member 76 has rotated sufficiently far to bring the finger 77 past the cam follower 78, or substantially to the position of these parts shown in FIG. 5. Thus, it will be understood at this point that, from the parts thus far described, operation of the motor 60 through the gear train 62, 64, 66, 68, the worm gear 72 and pinion 74 and the cam 76 and cam follower 78, the lateral support member 82 is reciprocated forwardly and rearwardly so as to bring the parts mounted thereon toward and away from the cassette chamber 22 respectively. Reference is hereby made to applicant~s copending Canadian patent application Serial No. 436,033 filed September 2, 1983 entitled "Head Support and Positioning Assembly for ; ..:!, ~3~3~2 Record/Play Back Device" for a more detailed description of the operation of the record/play control assembly 56 which is the subject of an invention disclosed and claimed ~n said copending patent application.
That application also discloses the electrical and electronic controls involved in the record/play control and assembly 56 of this application for the pur?oses of monitoring the position of the su?port me~ber 82 by the aforementioned microprocessor and controlling the operation of the motor 60 in order to vary the position of the support member 82 in connection with the operation of the dictating machine.
As previously mentioned, the lateral support member 82 has mounted thereon components relating to the record and play bac~ features of the dictating machine and also relating to the drive mechanism for the tape carried within the cassette, the latter being described in more detail herein-below. The record and play bac.~ component, generally referred to as a transducer 102~ is mounted on the support member 82 by means of a retaining bracket 104 secured to the 20 - support member 82 by screws 106, as best seen in FIG. 6.
The function of the transducer 102, as is well known in the art, is to record sound on the magnetic tape as the tape is moved past the transducer 102 in one mode of operation and to play bac.~ the previously recorded sound as the tape is again moved past the transducer 102 when the dictating machine is in another mode of operation. The electronic controls by which this is accomplished are well known in the art ana form no part of the present invention.
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As best seen in FIG. 6, the lateral support member 82 also carries a tape drive back-up assembly which comprises a resilient pressure roller 108 which is carried by a shaft 110 and mounted for rotation in a bracket 112 which is pivotably connected at one end by means of a pin 114 to the lateral support 82. A torsion spriny 116 wrapped around the pin 114 and engaging an abutment 117 ~best seen in FIG. 5) normally urges the free end of the bracket 112 against a stop 118 formed as part of the support member 82. Thus, the bracket is normally urged in a clockwise direction about the mounting pin 114. As best seen in FIG. 6, a drive capstan 120 is mounted in the frame 12 adjacent the pressure roller 108, the drive capstan 120 being simply the terminal end of a shaft 122 mounted in a bearing 124, the shaft 122 forming part of the cassette mounting and drive assembly 58 the details of which will be described hereinafter. It will be apparent by looking at FIG. 5 that when the support member 82 is in its forward position, the pressure roller 108 is moved into engagement with the drive capstan 120 so that the tape 124 (see FIG. 5) mounted within the cassette 24 is captured between the pressure roller 108 and the drive capstan 120 so as to be driven thereby. The spring 116 urging the bracket 112 in a clockwise direction around the pin 114 maintains a uniform pressure between the pressure roller 108 and the capstan 120 in order to insure a constant drive of the tape and to permit the amount of pressure between the roller 108 and capstan 120 to be controlled by appropriate selection of the spring 116. ..
_ _ . . ... _ _ _ _ , .. _ , _ ........ . _ . . ., . _ ,, . , . _ ....
:
It will also be noted with reference to FIG.
5 that the ~ransducer 102 is brought into contact with the tape 124 when the support member 82 is in the forward position shown in FIG. 5. As best seen in FIG. 2, the cassetke 2~
has a pair of elongate openings 126 through which the tape 124 is pressed by a pair of pressure pads 128, the pressure pads 12~ being mounted on leaf springs 130 suitably mounted in the cassette 24. The cassette 24 is provided with two openings 126 so that the cassette can be inserted into the dictating machine from either side, thereby permitting the tape 124 to be utilized in both directions of movement with respect to the cassette since the tape can accommodate who sound tracks across its width.
It should be noted that the cassette 24 is the subject of applicant's Canadian Patents Nos. 1,194,994 and 1,194,995 issued October 8, 1985. Although the inventions claimed in those patents form no part of the invention of this application, nevertheless the details of the casse~te 24 are fully disclosed in each of the patents. As disclosed in those patents cass~tte 24, as a numerical example, may - be about 1.4 inches wide, less than one inch deep and about 0.16 inches high. As seen in FIG. 2, the miniaturized, portable, hand-held dictating machine of the present invention is not significantly wider than the width of cassette 24 and not significantly longer than a few orders of magnitude of the depth of cassette 24. Thus, reference to said patents provides an understanding as to the relatively miniature size of the portable hand-held dictating machine of the present invention. As best seen ln FIGS. 2 and 5, the cassètte 24 ., .
comprises a pair of opposed parallel side walls 130 (of which only one wall 130 is seen in the figures), and end walls 132 (of which only one such wall is seen) for enclosing the cassette on three sides thereof. The openings 126 constitute the major portion o~ the fourth side of the cassette. The cassette 24 is provided with an opening 134 through which the drive cap~stan 120 extends when the cassette 24 is inserted into the cassette chamber 22. Since the tape 124 is maintained adjacent the outer edge Oe the opening 134 by a tape guide element l36 mounted inside the cassette, the drive capstan 120 will be on the opposite side of the tape 124 from the pressure roller 108 when the cassette is inserted into the cassette chamber, so that the tape 124 can be pinched between the capstan 120 and the pressure roller 108 for feeding the tape when the parts are in the position illustrated in FIG. 5.
In order to insure that the cassette 24 is properly positioned within the cassette chamber 22, the cassette 24 is provided with a pair of abutments 133, as best seen in FIG.5, which are adapted to engage with a corresponding pair of abutments 140 formed on the frame 12 when the cassette is inserted into the cassette chamber 22. Also a slot 142 is formed in the side wall 13~ opposite the edge of the cassette where the opening 134 is located, the slot 142 being adapted to receive a boss 144 formed in the frame 12 when the cassette 24 is inserted into the cassette receiving chamber 22. The abutments 138 and 140 and the slot 142 and boss 144 serve ~o properly position and align the cassette 24 while ___ _ _ . _ _ _ _ . . _ .. _ .. _ ~ . ... _ . _. ._ _ .. , _ .
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it is being inserted into the chamber 22 so that the drive components of the dictating machine, to be described hereinafter, will properly mesh with the hubs of the tape reels in the cassette 24.
Still referring to FIG. 5, it will be seen that the cassette 24 has a pair of tape reels 146 suitably rotatably mounted within the cassette 24, one reel beihg a supply reel and the other being a take up reel depending entirely upon the direction in which the tape 124 is being fed. Each o~
the reels 146 has a specially shaped socket 148 which is adapted to mesh with a correspondingly shaped hub 150, each of the hubs 150 being the output drive member of a pair of cassetts drive assemblies generally designated by the reference numeral 152 and more fully described hereinbelow.
With reference to FIGS. 2, 8, 4 and 7, the main drive assembly 54 will now be described. As best seen in FIG. 2, a DC, reversible, high velocity, drive motor 154, which normally operates at about 2000 rpm during dictate and play-back operation and at about 4000 rpm during fast forward and rewind operation, is mounted in the rear end of the frame 12 by means of mounting tabs 156 which are secured to the frame 12 by screws 158. A flywheel 160 is mounted on the drive shaft 162 of the motor 154, and a small diameter pulley 164 is mounted on the end of the drive shaft 162 adjacent the flywheel 160. A belt 166 extends forwardly with respect to the dictating macnine and passes around a large diameter pulley 168 mounted for rotation on a shaft 170 which is sultably secured to the frame 12 at a locatlon ~ ~2~3~
which is spaced a predetermined distance from the motor shaft 162 as explained in more detail below. Another small diameter pulley 172 is rotatably mounted on the shaft 170, and another belt 174 passes around the pulley 172 and also around another large diameter pulley 176 which is rotatably mounted on the aforementioned shaft 122 of which the drive capstan 120 is an extension. The drive shaft 122, as previously mentioned, is mounted on the frame 12 in a location so as to be in alignment with the opening 134 of the cassette 24 when the latter is inserted into the cassette chamber 22. Referring back to FIG. 7, another small diameter pulley 180 is rotatably mounted on the shaft 122, and another belt 182 passes around the pulley 180 and also around pulleys 184 which are connected to the frame 12 in a manner to be described hereinafter in connection wlth the description of the cassette drive assemblies 1$2 of which the pulleys 184 constitute the main input drive member therefor. Various portions of the drive train described above commencing with the motor 154 and terminating with the pulleys 184 can be seen in FIGS. 2, 3, 4 and 6.
Cassette Drive and Assemblies With reference now to FIGS. 8, 9, 10 and 11, and particularly FIGS. 8 and 9, the details of the cassette drive assemblies 152 will now be described. Each of the cassette drive assemblies 152 includes both a one way clutch and a slip clutch interposed between the pulleys 184 and the cassette hubs or drivers 150. Considering first the one _ .... . ., . __ _ _ . _ .. __ . _.. ~_ _ _ . _ . . ~ _ .. _ . .. . .. _ . ..... ... . ..
i,~
~Z~3~
way clutch, it will be seen in FIGS. 8 and 9 that, and referring specifically to only one of the cassette drive assemblies 152, the pulley 184 is rotatably mounted on a bearing member 186 which is mounted in the fIame 12 by a press fit. The bearing is covered by a suitable bezel 188 which provides a finished surface appearance. A drive spindle or shaft 190 is rotatably received within a central bore of tbe bearing member 186 for rotation therein, the upper end of the drive spindle or shaft 190 being provided with a plastic over molding 192, the purpose of which will be described hereinbelow. The one way clutch is interposed between the pulley 184 and the lower end of the drive spindle or shaft 190.
A circular cam plate 194 is rotatably mounted on a retainer 195 which in turn is mounted in the lower protruding end of the bearing 186 by a press fit, the retainer being flanged so as to maintain the cam plate 194 in the position shown in FIG. B. As best seen in FIG. 9, the cam plate 194 is provided with an arcuate recess 196 through which the mounting stud 198 of a pawl 200 projects so that a screw 202 can be inserted through a bore formed in the mounting stud 198 and threaded into a bore 204 formed in the underside of the pulley 184 so that the pawl 200 is thereby connected to the pulley 184 and is rotated thereby~ The other end of the pawl 200 is provided with a pin 206 whlch extends into a cam recess 208 formed in ~he cam plate 194 and which causes the pawl 200 to~be moved radially inwardly or outwardly with respect tc the cam plate, depending upon the direction of . .
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,. ~ .
rotation of the pulley 184. A ratchet plate 210 is provided with ratchet teeth 212, and also has a boss 21~ by which the ratchet plate 210 is fixedly mounted on the lower end o~ the spindle 190 so as to rotate therewith. The arrangement is such that the pawl 200 is nonnally disposed beyond the periphery of the ratchet plate 210 and the end of the pawl engages and disengages with the ratchet teeth 212 in a manner now to be described with reference to FIGS. 10 and 11. It should first be noted that a wave washer spring 216 is interposed between the retainer 195 and the cam plate 194 on one side and a shoulder of the bearing 186 on the other side so as to exert a frictional force on one face of the cam plate 192 in order to apply a small amount of resistance to movement of the cam plate 194 for a purpose to be made clear in connection with the description of operation of the one way clutch in connection with FIGS. 10 and 11.
It will be seen, from FIG. 10, that as the pulley 1B~
rotates in a counter-clockwise direction as is shown by the arrows in FIG. 10, the pulley moves the pawl 200 in the same direction and thereby moves the pin 206 toward the outer surface of the cam recess 208. The outer surface of the cam recess is angled inwardly toward the center of the cam plate 194 with the result that, as long as the cam plate remains stationary, the pin 206 will be moved inwardly toward the center of the cam plate carrying the pawl with it so that the end of the pawl will engage with one of the ratchet teeth 212 formed on the ratchet plate 210. During this movement, the cam plate 194 remains stationary by virtue 3~
of the resistance to movement of the cam plate 194 imposed by the wave washer spring ~16, this resistance being suffi-cient to overcome any tendency of the cam plate 194 to rotate in either direction without the application of an external force. As soon as the pawl 200 has been engaged with one of the ratchet teeth 212, the ratchet plate 210 commences to rotate with the pulley 184 which in turn rotates the spindle 190 since the ratchet plate 210 has been fixedly mounted on the spindle 190 by virtue of the afore-mentioned press fit. At about the same time, the pin 206 of the pawl 200 reaches the end of the cam recess 208 on the cam plate 194 and this in turn causes the cam plate 194 to commence rotation against the resistance of the wave washer 216. ~t this time, and as shown in FIG. 10, the one way clutch shown on the right side of the figure is fully engaged while the one way clutch shown in the left side of the figure is fully disengaged.
When the direction of movement of the pulley 184 is reversed, as shown in FIG. 11, and referring now to the one way clutch shown in the right hand side of FIG. 11, it will be seen that in response to clockwise rotation of the pulley 184, the pawl 200 is similarly rotated in a clockwise direction and this causes the pin 206 to ride on the innner surface of the cam recess 208 which surface is also angled relative to a radius of the cam plate so as to urge the pin 206 and thereby the pawl 200 radially outwardly with respect to the cam plate 1g4 in order to disengage the pawl from the ratchet teeth 212. The relative movement between ,, .
~l ~d ?~ 3~ 9~ 2 ,, _~
the mounting stud 198 of the pawl 200 and the cam plate is permitted by ths arcuate slot 196 which allows the pulley 184 and the pawl 200 to move arcuately through a limited distance while the cam plate is being held stationary by the wave washer. This permits the inner and outer surfaces of the cam recess 208 to act upon the pin 206 in order to move the free end of the pawl 200 inwardly and outwardly so as to cause engagement and disengagement respectively of that end of the pawl with the ratchet teeth 212.
As mentioned above, both of the cassette drive assemblies 152 are identical in structure and both are shown in FIGS. 10 and 11 in order to illustrate that they operate simultaneously but oppositely with respect to engagement and disengagement. Thus, as seen in FIGS. 10 and 11, when the right hand clutch is engaged the left hand clutch is dis-engaged and, similarly, when the left hand clutch is engaged the right hand clutch is disengaged. When either of the clutches are disengaged, it will be apparent that the cassette drive assembly is in a free wheeling mode and tape can be withdrawn from the cassette reel associated with the disengaged clutch at any desired speed.
As briefly mentioned above, the cassette drive assembly includes a slip clutch for the purpose of allowing the hub 150 to drive the cassette reel 1q6 ~previously mentioned in connection with FIG. 5) at a variable rate of speed notwithstanding that the pulley 184 provides a drive input to the cassette drive assembly at a constant rate of speed. The reason for this is that, as best seen in FIG. 5, as the tape 124 accumulates on either of the reels 146, depending upon the direc~ion of tape drive, the diameter of that reel increases as tape accumulates thereon. Since the tape is being driven at a constant rate of speed by the drive capstan 120 in cooperation with the pressure roller 108, the tape reel 146 on which the tape is accumulating (the take-up reel) must be driven at a variable rate of speed in order to avoid any slack in the tape between the reel 146 and the drive capstan 120. Thus, when the take-up reel 146 is empty, it must be driven sufficient angular velocity so as to have a hub peripheral speed at least equal to the linear speed of the tape. 8ut as tape begins to accumulate on the reel 146, the reel will be permitted to rotate by the incoming tape at a gradually decreasing angular velocity, which is accommodated by the slip clutch now to be described. It should be apparent, of course, that the operation of the slip clutch is unnecessary for the tape reel 146 from which the tape is unwinding tths supply reel) since the drive for this reel is in the free wheeling mode as explained above due to the fact that the one way clutch associated therewith is diRengaged. Therefore, the the entire cassette drive assembly associated with the supply reel can rotate at whatever angular velocity is necessary to facilitate the unwinding of the tape.
The details of the slip clutch are best seen in FIG.
12, in which it is seen that the hub or driver 150 is provided with a slot 218 which extends the full height of . ~
the driver 150. With reference to FIGS. 8 and 12, it is seen that the driver 150 is mounted on the plastic over molding 192 which has an elongate cylindrical portion 220 and an outwardly extending flange 222 which defines a downwardly facing shoulder 224 and an upwardly facing cam surface 226. The hub 150 i5 yenerally annular in shape, as best seen in FIG. 12, and is adapted to fit around the cylindrical portion 220 oE the plastic over molding 190, the hub 150 also having a slanted cam surface 228 which aligns with the cam surface 226 so as to provide a continuous slanted camming surface 226 and 228, the purpose oE which is to provide smooth alignment for the cassette 24 as it is inserted into the cassette chamber 22. The hub 150 is molded from a suitable rigid, shape retaining yet slightly resilient plastic so that the interior diameter of the hub 150 is slightly smaller than the external diameter of the cylin-drical portion of the plastic over molding 192. Thus, when the hub 150 is assembled onto the plastic over molding 192, the slot 218 is caused to open slightly so that the internal diameter of the hub 150 now corresponds to the external diameter of the cylindrical portion 220 of the plastic over molding 192. Because of the resilience of the plastic, the inner surface of the hub 150 presses against the outer surface of the cylindrical portion 220 of the plastic over molding 192 with sufficient force to normally cause the plastic over mold-ing to rotate the hub 150 therewith but allowing for slipage between the surfaces in the event that the hub 150 is not . _ , ... .. _ _ .. _ _ _ . _ _ ... . _ .. _ ..... . . . _ . ...... _ ..
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permitted by the tape to rotate as fast as the plastic over molding is being rotated. The parts thus slip with respect to each other and the hub 150 can rotate at a variable rate of speed depending upon the amount of build up of the tape 124 on the take-up tape reel 146 while the plastic over molding 192 can rotate at a constant rate of speed as driven by the spindle 190.
~ _ _ _ . . . _ _ . ,, _ _ . . _ . . _ _ _, . ., . ~ . . _ ''` ,
of the cam 76 with respect to the cam follower 78, it will be seen that rotation of the cam 76, commencing from the position shown in FIG. 5, in a counter-cloc.~wise direction will gradually move the cam follower 78 toward the lower end of the figure, that is, rearwardly with-respect to the dlctating machine 10. As the cam follower 78 moves rearwardly, the laterally extending support 82 also moves rearwardly in order to move the components mounted thereon away from the cassette chamber 22. As best seen in FIGS. 4 and 6, a pair of springs 96 are intérconnected between suitable apertures 98 formed on the suppor~ member 82 and suitable abutments 100 formed on the frame 12. The purpose of the springs 96 is to pull the support member 82 back to the position shown in FIG. 5 after the cam member 76 has rotated sufficiently far to bring the finger 77 past the cam follower 78, or substantially to the position of these parts shown in FIG. 5. Thus, it will be understood at this point that, from the parts thus far described, operation of the motor 60 through the gear train 62, 64, 66, 68, the worm gear 72 and pinion 74 and the cam 76 and cam follower 78, the lateral support member 82 is reciprocated forwardly and rearwardly so as to bring the parts mounted thereon toward and away from the cassette chamber 22 respectively. Reference is hereby made to applicant~s copending Canadian patent application Serial No. 436,033 filed September 2, 1983 entitled "Head Support and Positioning Assembly for ; ..:!, ~3~3~2 Record/Play Back Device" for a more detailed description of the operation of the record/play control assembly 56 which is the subject of an invention disclosed and claimed ~n said copending patent application.
That application also discloses the electrical and electronic controls involved in the record/play control and assembly 56 of this application for the pur?oses of monitoring the position of the su?port me~ber 82 by the aforementioned microprocessor and controlling the operation of the motor 60 in order to vary the position of the support member 82 in connection with the operation of the dictating machine.
As previously mentioned, the lateral support member 82 has mounted thereon components relating to the record and play bac~ features of the dictating machine and also relating to the drive mechanism for the tape carried within the cassette, the latter being described in more detail herein-below. The record and play bac.~ component, generally referred to as a transducer 102~ is mounted on the support member 82 by means of a retaining bracket 104 secured to the 20 - support member 82 by screws 106, as best seen in FIG. 6.
The function of the transducer 102, as is well known in the art, is to record sound on the magnetic tape as the tape is moved past the transducer 102 in one mode of operation and to play bac.~ the previously recorded sound as the tape is again moved past the transducer 102 when the dictating machine is in another mode of operation. The electronic controls by which this is accomplished are well known in the art ana form no part of the present invention.
~3~
.
As best seen in FIG. 6, the lateral support member 82 also carries a tape drive back-up assembly which comprises a resilient pressure roller 108 which is carried by a shaft 110 and mounted for rotation in a bracket 112 which is pivotably connected at one end by means of a pin 114 to the lateral support 82. A torsion spriny 116 wrapped around the pin 114 and engaging an abutment 117 ~best seen in FIG. 5) normally urges the free end of the bracket 112 against a stop 118 formed as part of the support member 82. Thus, the bracket is normally urged in a clockwise direction about the mounting pin 114. As best seen in FIG. 6, a drive capstan 120 is mounted in the frame 12 adjacent the pressure roller 108, the drive capstan 120 being simply the terminal end of a shaft 122 mounted in a bearing 124, the shaft 122 forming part of the cassette mounting and drive assembly 58 the details of which will be described hereinafter. It will be apparent by looking at FIG. 5 that when the support member 82 is in its forward position, the pressure roller 108 is moved into engagement with the drive capstan 120 so that the tape 124 (see FIG. 5) mounted within the cassette 24 is captured between the pressure roller 108 and the drive capstan 120 so as to be driven thereby. The spring 116 urging the bracket 112 in a clockwise direction around the pin 114 maintains a uniform pressure between the pressure roller 108 and the capstan 120 in order to insure a constant drive of the tape and to permit the amount of pressure between the roller 108 and capstan 120 to be controlled by appropriate selection of the spring 116. ..
_ _ . . ... _ _ _ _ , .. _ , _ ........ . _ . . ., . _ ,, . , . _ ....
:
It will also be noted with reference to FIG.
5 that the ~ransducer 102 is brought into contact with the tape 124 when the support member 82 is in the forward position shown in FIG. 5. As best seen in FIG. 2, the cassetke 2~
has a pair of elongate openings 126 through which the tape 124 is pressed by a pair of pressure pads 128, the pressure pads 12~ being mounted on leaf springs 130 suitably mounted in the cassette 24. The cassette 24 is provided with two openings 126 so that the cassette can be inserted into the dictating machine from either side, thereby permitting the tape 124 to be utilized in both directions of movement with respect to the cassette since the tape can accommodate who sound tracks across its width.
It should be noted that the cassette 24 is the subject of applicant's Canadian Patents Nos. 1,194,994 and 1,194,995 issued October 8, 1985. Although the inventions claimed in those patents form no part of the invention of this application, nevertheless the details of the casse~te 24 are fully disclosed in each of the patents. As disclosed in those patents cass~tte 24, as a numerical example, may - be about 1.4 inches wide, less than one inch deep and about 0.16 inches high. As seen in FIG. 2, the miniaturized, portable, hand-held dictating machine of the present invention is not significantly wider than the width of cassette 24 and not significantly longer than a few orders of magnitude of the depth of cassette 24. Thus, reference to said patents provides an understanding as to the relatively miniature size of the portable hand-held dictating machine of the present invention. As best seen ln FIGS. 2 and 5, the cassètte 24 ., .
comprises a pair of opposed parallel side walls 130 (of which only one wall 130 is seen in the figures), and end walls 132 (of which only one such wall is seen) for enclosing the cassette on three sides thereof. The openings 126 constitute the major portion o~ the fourth side of the cassette. The cassette 24 is provided with an opening 134 through which the drive cap~stan 120 extends when the cassette 24 is inserted into the cassette chamber 22. Since the tape 124 is maintained adjacent the outer edge Oe the opening 134 by a tape guide element l36 mounted inside the cassette, the drive capstan 120 will be on the opposite side of the tape 124 from the pressure roller 108 when the cassette is inserted into the cassette chamber, so that the tape 124 can be pinched between the capstan 120 and the pressure roller 108 for feeding the tape when the parts are in the position illustrated in FIG. 5.
In order to insure that the cassette 24 is properly positioned within the cassette chamber 22, the cassette 24 is provided with a pair of abutments 133, as best seen in FIG.5, which are adapted to engage with a corresponding pair of abutments 140 formed on the frame 12 when the cassette is inserted into the cassette chamber 22. Also a slot 142 is formed in the side wall 13~ opposite the edge of the cassette where the opening 134 is located, the slot 142 being adapted to receive a boss 144 formed in the frame 12 when the cassette 24 is inserted into the cassette receiving chamber 22. The abutments 138 and 140 and the slot 142 and boss 144 serve ~o properly position and align the cassette 24 while ___ _ _ . _ _ _ _ . . _ .. _ .. _ ~ . ... _ . _. ._ _ .. , _ .
~u 3~2 .
it is being inserted into the chamber 22 so that the drive components of the dictating machine, to be described hereinafter, will properly mesh with the hubs of the tape reels in the cassette 24.
Still referring to FIG. 5, it will be seen that the cassette 24 has a pair of tape reels 146 suitably rotatably mounted within the cassette 24, one reel beihg a supply reel and the other being a take up reel depending entirely upon the direction in which the tape 124 is being fed. Each o~
the reels 146 has a specially shaped socket 148 which is adapted to mesh with a correspondingly shaped hub 150, each of the hubs 150 being the output drive member of a pair of cassetts drive assemblies generally designated by the reference numeral 152 and more fully described hereinbelow.
With reference to FIGS. 2, 8, 4 and 7, the main drive assembly 54 will now be described. As best seen in FIG. 2, a DC, reversible, high velocity, drive motor 154, which normally operates at about 2000 rpm during dictate and play-back operation and at about 4000 rpm during fast forward and rewind operation, is mounted in the rear end of the frame 12 by means of mounting tabs 156 which are secured to the frame 12 by screws 158. A flywheel 160 is mounted on the drive shaft 162 of the motor 154, and a small diameter pulley 164 is mounted on the end of the drive shaft 162 adjacent the flywheel 160. A belt 166 extends forwardly with respect to the dictating macnine and passes around a large diameter pulley 168 mounted for rotation on a shaft 170 which is sultably secured to the frame 12 at a locatlon ~ ~2~3~
which is spaced a predetermined distance from the motor shaft 162 as explained in more detail below. Another small diameter pulley 172 is rotatably mounted on the shaft 170, and another belt 174 passes around the pulley 172 and also around another large diameter pulley 176 which is rotatably mounted on the aforementioned shaft 122 of which the drive capstan 120 is an extension. The drive shaft 122, as previously mentioned, is mounted on the frame 12 in a location so as to be in alignment with the opening 134 of the cassette 24 when the latter is inserted into the cassette chamber 22. Referring back to FIG. 7, another small diameter pulley 180 is rotatably mounted on the shaft 122, and another belt 182 passes around the pulley 180 and also around pulleys 184 which are connected to the frame 12 in a manner to be described hereinafter in connection wlth the description of the cassette drive assemblies 1$2 of which the pulleys 184 constitute the main input drive member therefor. Various portions of the drive train described above commencing with the motor 154 and terminating with the pulleys 184 can be seen in FIGS. 2, 3, 4 and 6.
Cassette Drive and Assemblies With reference now to FIGS. 8, 9, 10 and 11, and particularly FIGS. 8 and 9, the details of the cassette drive assemblies 152 will now be described. Each of the cassette drive assemblies 152 includes both a one way clutch and a slip clutch interposed between the pulleys 184 and the cassette hubs or drivers 150. Considering first the one _ .... . ., . __ _ _ . _ .. __ . _.. ~_ _ _ . _ . . ~ _ .. _ . .. . .. _ . ..... ... . ..
i,~
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way clutch, it will be seen in FIGS. 8 and 9 that, and referring specifically to only one of the cassette drive assemblies 152, the pulley 184 is rotatably mounted on a bearing member 186 which is mounted in the fIame 12 by a press fit. The bearing is covered by a suitable bezel 188 which provides a finished surface appearance. A drive spindle or shaft 190 is rotatably received within a central bore of tbe bearing member 186 for rotation therein, the upper end of the drive spindle or shaft 190 being provided with a plastic over molding 192, the purpose of which will be described hereinbelow. The one way clutch is interposed between the pulley 184 and the lower end of the drive spindle or shaft 190.
A circular cam plate 194 is rotatably mounted on a retainer 195 which in turn is mounted in the lower protruding end of the bearing 186 by a press fit, the retainer being flanged so as to maintain the cam plate 194 in the position shown in FIG. B. As best seen in FIG. 9, the cam plate 194 is provided with an arcuate recess 196 through which the mounting stud 198 of a pawl 200 projects so that a screw 202 can be inserted through a bore formed in the mounting stud 198 and threaded into a bore 204 formed in the underside of the pulley 184 so that the pawl 200 is thereby connected to the pulley 184 and is rotated thereby~ The other end of the pawl 200 is provided with a pin 206 whlch extends into a cam recess 208 formed in ~he cam plate 194 and which causes the pawl 200 to~be moved radially inwardly or outwardly with respect tc the cam plate, depending upon the direction of . .
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,. ~ .
rotation of the pulley 184. A ratchet plate 210 is provided with ratchet teeth 212, and also has a boss 21~ by which the ratchet plate 210 is fixedly mounted on the lower end o~ the spindle 190 so as to rotate therewith. The arrangement is such that the pawl 200 is nonnally disposed beyond the periphery of the ratchet plate 210 and the end of the pawl engages and disengages with the ratchet teeth 212 in a manner now to be described with reference to FIGS. 10 and 11. It should first be noted that a wave washer spring 216 is interposed between the retainer 195 and the cam plate 194 on one side and a shoulder of the bearing 186 on the other side so as to exert a frictional force on one face of the cam plate 192 in order to apply a small amount of resistance to movement of the cam plate 194 for a purpose to be made clear in connection with the description of operation of the one way clutch in connection with FIGS. 10 and 11.
It will be seen, from FIG. 10, that as the pulley 1B~
rotates in a counter-clockwise direction as is shown by the arrows in FIG. 10, the pulley moves the pawl 200 in the same direction and thereby moves the pin 206 toward the outer surface of the cam recess 208. The outer surface of the cam recess is angled inwardly toward the center of the cam plate 194 with the result that, as long as the cam plate remains stationary, the pin 206 will be moved inwardly toward the center of the cam plate carrying the pawl with it so that the end of the pawl will engage with one of the ratchet teeth 212 formed on the ratchet plate 210. During this movement, the cam plate 194 remains stationary by virtue 3~
of the resistance to movement of the cam plate 194 imposed by the wave washer spring ~16, this resistance being suffi-cient to overcome any tendency of the cam plate 194 to rotate in either direction without the application of an external force. As soon as the pawl 200 has been engaged with one of the ratchet teeth 212, the ratchet plate 210 commences to rotate with the pulley 184 which in turn rotates the spindle 190 since the ratchet plate 210 has been fixedly mounted on the spindle 190 by virtue of the afore-mentioned press fit. At about the same time, the pin 206 of the pawl 200 reaches the end of the cam recess 208 on the cam plate 194 and this in turn causes the cam plate 194 to commence rotation against the resistance of the wave washer 216. ~t this time, and as shown in FIG. 10, the one way clutch shown on the right side of the figure is fully engaged while the one way clutch shown in the left side of the figure is fully disengaged.
When the direction of movement of the pulley 184 is reversed, as shown in FIG. 11, and referring now to the one way clutch shown in the right hand side of FIG. 11, it will be seen that in response to clockwise rotation of the pulley 184, the pawl 200 is similarly rotated in a clockwise direction and this causes the pin 206 to ride on the innner surface of the cam recess 208 which surface is also angled relative to a radius of the cam plate so as to urge the pin 206 and thereby the pawl 200 radially outwardly with respect to the cam plate 1g4 in order to disengage the pawl from the ratchet teeth 212. The relative movement between ,, .
~l ~d ?~ 3~ 9~ 2 ,, _~
the mounting stud 198 of the pawl 200 and the cam plate is permitted by ths arcuate slot 196 which allows the pulley 184 and the pawl 200 to move arcuately through a limited distance while the cam plate is being held stationary by the wave washer. This permits the inner and outer surfaces of the cam recess 208 to act upon the pin 206 in order to move the free end of the pawl 200 inwardly and outwardly so as to cause engagement and disengagement respectively of that end of the pawl with the ratchet teeth 212.
As mentioned above, both of the cassette drive assemblies 152 are identical in structure and both are shown in FIGS. 10 and 11 in order to illustrate that they operate simultaneously but oppositely with respect to engagement and disengagement. Thus, as seen in FIGS. 10 and 11, when the right hand clutch is engaged the left hand clutch is dis-engaged and, similarly, when the left hand clutch is engaged the right hand clutch is disengaged. When either of the clutches are disengaged, it will be apparent that the cassette drive assembly is in a free wheeling mode and tape can be withdrawn from the cassette reel associated with the disengaged clutch at any desired speed.
As briefly mentioned above, the cassette drive assembly includes a slip clutch for the purpose of allowing the hub 150 to drive the cassette reel 1q6 ~previously mentioned in connection with FIG. 5) at a variable rate of speed notwithstanding that the pulley 184 provides a drive input to the cassette drive assembly at a constant rate of speed. The reason for this is that, as best seen in FIG. 5, as the tape 124 accumulates on either of the reels 146, depending upon the direc~ion of tape drive, the diameter of that reel increases as tape accumulates thereon. Since the tape is being driven at a constant rate of speed by the drive capstan 120 in cooperation with the pressure roller 108, the tape reel 146 on which the tape is accumulating (the take-up reel) must be driven at a variable rate of speed in order to avoid any slack in the tape between the reel 146 and the drive capstan 120. Thus, when the take-up reel 146 is empty, it must be driven sufficient angular velocity so as to have a hub peripheral speed at least equal to the linear speed of the tape. 8ut as tape begins to accumulate on the reel 146, the reel will be permitted to rotate by the incoming tape at a gradually decreasing angular velocity, which is accommodated by the slip clutch now to be described. It should be apparent, of course, that the operation of the slip clutch is unnecessary for the tape reel 146 from which the tape is unwinding tths supply reel) since the drive for this reel is in the free wheeling mode as explained above due to the fact that the one way clutch associated therewith is diRengaged. Therefore, the the entire cassette drive assembly associated with the supply reel can rotate at whatever angular velocity is necessary to facilitate the unwinding of the tape.
The details of the slip clutch are best seen in FIG.
12, in which it is seen that the hub or driver 150 is provided with a slot 218 which extends the full height of . ~
the driver 150. With reference to FIGS. 8 and 12, it is seen that the driver 150 is mounted on the plastic over molding 192 which has an elongate cylindrical portion 220 and an outwardly extending flange 222 which defines a downwardly facing shoulder 224 and an upwardly facing cam surface 226. The hub 150 i5 yenerally annular in shape, as best seen in FIG. 12, and is adapted to fit around the cylindrical portion 220 oE the plastic over molding 190, the hub 150 also having a slanted cam surface 228 which aligns with the cam surface 226 so as to provide a continuous slanted camming surface 226 and 228, the purpose oE which is to provide smooth alignment for the cassette 24 as it is inserted into the cassette chamber 22. The hub 150 is molded from a suitable rigid, shape retaining yet slightly resilient plastic so that the interior diameter of the hub 150 is slightly smaller than the external diameter of the cylin-drical portion of the plastic over molding 192. Thus, when the hub 150 is assembled onto the plastic over molding 192, the slot 218 is caused to open slightly so that the internal diameter of the hub 150 now corresponds to the external diameter of the cylindrical portion 220 of the plastic over molding 192. Because of the resilience of the plastic, the inner surface of the hub 150 presses against the outer surface of the cylindrical portion 220 of the plastic over molding 192 with sufficient force to normally cause the plastic over mold-ing to rotate the hub 150 therewith but allowing for slipage between the surfaces in the event that the hub 150 is not . _ , ... .. _ _ .. _ _ _ . _ _ ... . _ .. _ ..... . . . _ . ...... _ ..
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permitted by the tape to rotate as fast as the plastic over molding is being rotated. The parts thus slip with respect to each other and the hub 150 can rotate at a variable rate of speed depending upon the amount of build up of the tape 124 on the take-up tape reel 146 while the plastic over molding 192 can rotate at a constant rate of speed as driven by the spindle 190.
~ _ _ _ . . . _ _ . ,, _ _ . . _ . . _ _ _, . ., . ~ . . _ ''` ,
Claims (15)
PROPERTY OR PRIVILEGE I S CLAIMED ARE DEFINED AS FOLLOWS:
1. A tape drive system for a capstan-drive tape recorder operable for bi-directionally driving tape between first and second reels, comprising:
a drive motor;
a capstan cooperable with a pressure roller for driving a tape;
a pair of drive hubs for selectively driving tape reels onto which driven tape is wound;
a first pair of speed reducing pulleys extending between said drive motor and an intermediate position and interconnected by a first belt;
a second pair of speed reducing pulleys extending between said intermediate position and said capstan and interconnected by a second belt such that said capstan is driven at a reduced speed by said drive motor; and means coupled to one of said first and second pairs of speed reducing pulleys for selectively driving said drive hubs.
a drive motor;
a capstan cooperable with a pressure roller for driving a tape;
a pair of drive hubs for selectively driving tape reels onto which driven tape is wound;
a first pair of speed reducing pulleys extending between said drive motor and an intermediate position and interconnected by a first belt;
a second pair of speed reducing pulleys extending between said intermediate position and said capstan and interconnected by a second belt such that said capstan is driven at a reduced speed by said drive motor; and means coupled to one of said first and second pairs of speed reducing pulleys for selectively driving said drive hubs.
2. A tape drive system as set forth in Claim 1 wherein said drive motor is a high velocity motor having an output of at least 2000 rpm.
3. A tape drive system as set forth in Claim 2 wherein said drive motor includes a drive shaft to which one of the pulleys of said first pair of speed reducing pulleys is coupled, and further including a fly wheel mounted on said drive shaft.
4. A tape drive system as set forth in Claim 3 wherein a rotatable shaft is provided at said intermediate position and wherein the other pulley of said first pair of speed reducing pulleys is mounted on said rotatable shaft, the diameter of said one pulley being less than the diameter of said other pulley and wherein one of the pulleys of said second pair of speed reducing pulleys is mounted on said shaft at said intermediate position and the other pulley of said second pair of speed reducing pulleys is coupled to said capstan.
5. A tape drive system as set forth in Claim 4 wherein said capstan is an extension of a rotatable shaft on which said other pulley of said second pair of speed reducing pulleys is mounted, the diameter of said one pulley of said second pair of speed reducing pulleys being less than the diameter of said other pulley of said second pair of speed reducing pulleys; and wherein said means for selectively driving said drive hubs comprises a further pulley mounted on said last-mentioned rotatable shaft, an additional pulley coupled to each said drive hub, and a third belt interconnecting said further and additional pulleys.
6. A tape drive system as set forth in Claim 5 wherein said additional pulley is mounted coaxially with each said drive hub.
7. A tape drive system as set forth in Claim 6 for bi-directionally driving tape between first and second reels including a second drive hub for driving said second reel; a second additional pulley mounted coaxially with said second drive hub; and said last-mentioned belt interconnects said further and said first and second-mentioned additional pulleys; and wherein said drive motor comprises a reversible motor.
8. A tape drive system as set forth in Claim 1 wherein:
said first pair of speed reduction pulleys comprises a relatively small diameter pulley mounted on the drive shaft of said motor and a relatively large diameter pulley mounted on a first shaft which is disposed at said inter-mediate position, and said second pair of speed reduction pulleys comprises a relatively small diameter pulley mounted on said first shaft at said intermediate position and a relatively large diameter pulley mounted on a second shaft which is rotatably mounted with said capstan.
said first pair of speed reduction pulleys comprises a relatively small diameter pulley mounted on the drive shaft of said motor and a relatively large diameter pulley mounted on a first shaft which is disposed at said inter-mediate position, and said second pair of speed reduction pulleys comprises a relatively small diameter pulley mounted on said first shaft at said intermediate position and a relatively large diameter pulley mounted on a second shaft which is rotatably mounted with said capstan.
9. A tape drive system as set forth in Claim 8 wherein the first belt connecting the first pair of speed reduction pulleys is longer than the second belt connecting the second pair of speed reduction pulleys.
10. A tape drive system as set forth in Claim 1 including:
first and second drive hubs for driving first and second tape reels, respectively;
a drive pulley mounted for rotation with said capstan;
a driven pulley mounted coaxially with each of a respective drive hub; and a belt connecting said last-mentioned drive and drive pulleys.
first and second drive hubs for driving first and second tape reels, respectively;
a drive pulley mounted for rotation with said capstan;
a driven pulley mounted coaxially with each of a respective drive hub; and a belt connecting said last-mentioned drive and drive pulleys.
11. A tape drive system as set forth in Claim 1 including:
a drive pulley mounted for rotation with said capstan, a driven pulley mounted coaxially with each of said drive hubs, and a third belt connecting said hub drive pulleys and said capstan drive pulleys.
a drive pulley mounted for rotation with said capstan, a driven pulley mounted coaxially with each of said drive hubs, and a third belt connecting said hub drive pulleys and said capstan drive pulleys.
12. A tape drive system for a capstan-drive miniature tape recorder of a size to play miniature cassettes and operable for bi-directionally driving tape between first and second reels comprising:
a bi-directional drive motor, a capstan cooperable with a pressure roller for driving a tape;
a pair of drive hubs for selectively driving tape reels onto which driven tape is wound;
said drive motor including a drive shaft having a pulley and a flywheel mounted thereon, a first intermediate pulley interconnected with said drive shaft pulley by a first belt so as to be driven by said drive shaft pulley, a second intermediate pulley directly driven by said first intermediate pulley, a capstan drive pulley operably fixed to said capstan, a second belt interconnecting said second inter-mediate pulley and said capstan drive pulley, a third pulley coaxially disposed with said capstan drive pulley so as to be driven by said capstan drive pulley, and a third belt interconnecting said third pulley and driven pulleys mounted coaxially with each of said drive hubs whereby said capstan and drive hubs are all positively driven by said belts.
a bi-directional drive motor, a capstan cooperable with a pressure roller for driving a tape;
a pair of drive hubs for selectively driving tape reels onto which driven tape is wound;
said drive motor including a drive shaft having a pulley and a flywheel mounted thereon, a first intermediate pulley interconnected with said drive shaft pulley by a first belt so as to be driven by said drive shaft pulley, a second intermediate pulley directly driven by said first intermediate pulley, a capstan drive pulley operably fixed to said capstan, a second belt interconnecting said second inter-mediate pulley and said capstan drive pulley, a third pulley coaxially disposed with said capstan drive pulley so as to be driven by said capstan drive pulley, and a third belt interconnecting said third pulley and driven pulleys mounted coaxially with each of said drive hubs whereby said capstan and drive hubs are all positively driven by said belts.
13. A tape drive system as set forth in Claim 12 wherein:
said drive shaft pulley and first intermediate pulley act as a first pair of speed reduction pulleys comprising a relatively small diameter pulley mounted on the drive shaft of said motor and a relatively large diameter pulley mounted on a first shaft which is disposed at said intermediate position, and said second intermediate pulley and said capstan drive pulley act as a second pair of speed reduction pulleys comprising a relatively small diameter pulley mounted on said first shaft at said intermediate position and a relatively large diameter pulley mounted on a second shaft which is rotatably mounted with said capstan.
said drive shaft pulley and first intermediate pulley act as a first pair of speed reduction pulleys comprising a relatively small diameter pulley mounted on the drive shaft of said motor and a relatively large diameter pulley mounted on a first shaft which is disposed at said intermediate position, and said second intermediate pulley and said capstan drive pulley act as a second pair of speed reduction pulleys comprising a relatively small diameter pulley mounted on said first shaft at said intermediate position and a relatively large diameter pulley mounted on a second shaft which is rotatably mounted with said capstan.
14. A tape drive system as set forth in Claim 13 wherein the first belt connecting the first pair of speed reduction pulleys is longer than the second belt connecting the second pair of speed reduction pulleys.
15. A tape drive system as set forth in Claim 12 where said drive motor is a high velocity motor.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US49636883A | 1983-05-20 | 1983-05-20 | |
US496,368 | 1990-03-20 |
Publications (1)
Publication Number | Publication Date |
---|---|
CA1213042A true CA1213042A (en) | 1986-10-21 |
Family
ID=23972323
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
CA000451529A Expired CA1213042A (en) | 1983-05-20 | 1984-04-09 | Portable dictating machine |
Country Status (6)
Country | Link |
---|---|
JP (1) | JPS59221852A (en) |
AU (1) | AU578605B2 (en) |
CA (1) | CA1213042A (en) |
CH (1) | CH665499A5 (en) |
DE (1) | DE3418184A1 (en) |
GB (1) | GB2140192A (en) |
Families Citing this family (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4692825A (en) * | 1983-02-11 | 1987-09-08 | Dictaphone Corporation | One-way clutch assembly with pawl and ratchet |
Family Cites Families (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS4414780Y1 (en) * | 1966-12-26 | 1969-06-24 | ||
US3913869A (en) * | 1973-09-10 | 1975-10-21 | American Optical Corp | Slow-speed tape recorder drive mechanism |
GB1524398A (en) * | 1974-12-25 | 1978-09-13 | Olympus Optical Coltd | Cassette tape recorders |
GB1534307A (en) * | 1975-02-12 | 1978-11-29 | Ban I | Drive mechanism for magnetic recording/reproducing apparatus |
GB1547380A (en) * | 1975-04-14 | 1979-06-13 | Mochizuki K | Mode changeover apparatus for magnetic recorder/player |
JPS5649A (en) * | 1979-06-13 | 1981-01-06 | Olympus Optical Co Ltd | Tape recorder |
JPS5746347A (en) * | 1980-09-01 | 1982-03-16 | Berutetsuku Kk | Tape driving device of cassette tape recorder |
-
1984
- 1984-04-09 CA CA000451529A patent/CA1213042A/en not_active Expired
- 1984-04-13 AU AU26820/84A patent/AU578605B2/en not_active Ceased
- 1984-05-14 GB GB08412268A patent/GB2140192A/en not_active Withdrawn
- 1984-05-16 CH CH244084A patent/CH665499A5/en not_active IP Right Cessation
- 1984-05-16 DE DE19843418184 patent/DE3418184A1/en not_active Withdrawn
- 1984-05-21 JP JP59102467A patent/JPS59221852A/en active Pending
Also Published As
Publication number | Publication date |
---|---|
AU2682084A (en) | 1984-11-22 |
CH665499A5 (en) | 1988-05-13 |
GB2140192A (en) | 1984-11-21 |
AU578605B2 (en) | 1988-11-03 |
JPS59221852A (en) | 1984-12-13 |
GB8412268D0 (en) | 1984-06-20 |
DE3418184A1 (en) | 1984-11-22 |
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Legal Events
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MKEX | Expiry |