US3004192A - Gas discharge devices - Google Patents
Gas discharge devices Download PDFInfo
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- US3004192A US3004192A US101279A US10127949A US3004192A US 3004192 A US3004192 A US 3004192A US 101279 A US101279 A US 101279A US 10127949 A US10127949 A US 10127949A US 3004192 A US3004192 A US 3004192A
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01J—ELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
- H01J17/00—Gas-filled discharge tubes with solid cathode
- H01J17/38—Cold-cathode tubes
- H01J17/40—Cold-cathode tubes with one cathode and one anode, e.g. glow tubes, tuning-indicator glow tubes, voltage-stabiliser tubes, voltage-indicator tubes
- H01J17/44—Cold-cathode tubes with one cathode and one anode, e.g. glow tubes, tuning-indicator glow tubes, voltage-stabiliser tubes, voltage-indicator tubes having one or more control electrodes
Definitions
- the grid is fed from a positive voltage through a relatively highresistance, and as a result current variations between the cathode and grid result in voltage variations between the cathode and grid,
- the electron-supply *to the anode is momentarily decreased.
- the decrease in electrons results in a decrease in tube current, which in turn results in an anode voltage rise.
- This anode voltage rise accelerates any free electrons in the gas, causing a small surplus of electrons to be formed by collision.
- the free supply of electrons thus formed, plus the higher anode voltage, permits an increase in tube current.
- the increase in tube current causes a drop in anode voltage, which reduces the number of electronion-molecule collisions, which in turn decreases the elec- 'tron supply to the anode.
- a cyclic variation in "tube current and voltage occurs and the tube oscillates.
- the term minimum breakdown distance is defined as being the distance between two electrodes ina gaseous medium whereat the smallest voltage between said elec trodes is required to create a discharge between said electrodes. It may be noted that this distance will vary with the pressure and type of gas surrounding the electrodes and electrode configuration.
- the grid When the grid is positioned at the minimum breakdown distance from the cathode, the: oscillations produced in the tube prior to breakdown ofthe tube will be less than those produced with other spacings of the electrodes, since the oscillations 'ge'ner-ated between the grid'and cathode in general vary directly as a: function of the voltage applied between said grid and cathode.
- the grid at the minimum breakdown distance from the cathode, the maximum stability of the device is achieved.
- FIG. 1 illustrates a longitudinal cross-sectional view of a gas discharge device utilizing this invention, taken along line '1-1 of FIG. 2;
- FIG. 2 illustrates a transverse cross-sectional view of the device shown in FIG. 1 taken along line 2--2 of FIG. 1;'
- FIG. 3 illustrates a circuit utilizing the gas discharge device and having one form of damping network there-
- FIG. 4 illustrates another circuit utilizing the gas discharge device .and showing one method for varying the damping circuit;
- FIG. 5 illustrates an operating characteristic of a gas discharge device of the type illustrated in FIGS. 1 and 2.
- a gas discharge device comprising an envelope 10, which may be made of any desired insulating material such as glass, said envelope shown here by way of example as being tubular and having at one end a glass seal 11 through which extend a plurality of leads 12 for connecting the elements of the device to' any desired circuit.
- envelope 10 which may be made of any desired insulating material such as glass
- said envelope shown here by way of example as being tubular and having at one end a glass seal 11 through which extend a plurality of leads 12 for connecting the elements of the device to' any desired circuit.
- a cathode 13 which may be of any desired type and as illustrated herein is a hollow cylindrical member positioned coaxial with envelope 10, the inner surface of said cathode cylinder being coated with electron emissive material. As shown here, the lower end of the cylindrical cathode 13 is covered by a wire mesh 14 which becomes activatedby being coated by electron emissive material during the processing of the tube. Mesh 14 thus acts as an auxiliary cathode from which keep-alive current is drawn in the standby condition of the tube. r n
- Cathode 13 is supported on two rods 15 which extend from the upper end of the cylinder 13 along opposite sides of its inner surface parallel to the-axis thereof and down the length of the envelope 10 to the lower end thereof where they are connected to two ofthe leadin members ll which extend through the glass press 11.
- the rods 15 are rigidly attached to the cathode cylinder 13 as, for example, by being welded thereto and are surrounded, from a point immediately below the bottom of the cathode cylinder 13, by glass tubes 16 which extend downward to the glass press ⁇ 11 and are fused thereto.
- a third glass tube 17 which contains therein an anode rod 18, attached to a lead 1 2 extending through the press'l l.
- the anoderod' 18 extends a small distance, for example, a distance equal to the diameter of said rod beyond the end of the glass tube 17 which terminates some distance below the bottom of the cathode cylinder 13.
- the anode rod 18 is shielded from the cathode 13 by a cup-shaped grid 19 which is inverted and placed over anode rod 18 and glass tube 17 not touching anode rod 18.
- Grid 19 is rigidly positioned with respect to the other elements of the tube by being attached as by welding to a strap 20 extending around glass tubes 16 and 17 strap 20 being in turn attached as by welding to 'a lead 12 extending through glass press 11 whereby potentials may be applied to grid 19.
- a loop 21 is positioiied such that one portion thereof comes in close proximit-y i vi'th the screen 14 of the cathode 13, one end of said loop being connected to the uppermost point of grid 19 and the other end thereof being connected as by welding to strap 20.
- the distance between the nearest portion of loop 21 and screen 14 is substantially equal to the minimum breakdown distance for the particular gas and gas pressure used in the device.
- the distance between grid 19 and anode 18 is greater than the minimum breakdown distance, it is to be clearly understood that the same result may be accomplished by making said distance less than the minimum breakdown distance, since the breakdown voltage between two electrodes in a gaseous medium increases for both an increase or a decrease of their spacing from the minimum breakdown distance.
- FIG. .3 there is shown a circuit utilizing the discharge device illustrated in FIGS. 1 and 2 wherein the cathode 13 is connected to ground.
- the anode 18 is connected to a source of 13- ⁇ - through a load 22 which may be, for example, a relay or a fuse.
- the grid structure 19 and 21 is connected together and connected .to said B+ through a resistor 23 which may be, for example, on 'theorder of 10,000 megohms and through a condenser 24 which may be, for example, 20 micromicrofarads, to a damping circuit comprising a condenser 25 which :may be, for example, 100 microfarads and a resistor 26 in .parallel with said condenser, which maybe, 'for example, 100 megohms, said damping circuit in turn being connected through an input signal source to ground.
- FIG. 5 there is shown a graph illustrating the operation of this device. Along the abscissa of the graph is plotted the voltage between the grid 21 and the cathode 13 in volts and along the ordinate is plotted the current drawn from cathode 13 to grid 21 in amperes.
- the wrrent of the discharge is amperes or less, as shown by the area labeled Townsend discharge, the voltage across the discharge varies directly as a function of the current, such that when the voltage increases, the current increases.
- the current will then increase with a decrease in voltage thereby entering the :region labeled normal glow.
- Some electrons from the glow discharge will move through the grid section 19 and be accelerated to the anode 18 and will ionize the space therebetween, to therebyb establish cathode to anode conduction and fire the tu e.
- the vgrid 21 is supplied with a positive voltage through a resistor 23.
- the value of this resistor is such that in the absence of an input signal, the current drawn by grid 21 will produce a voltage drop across resistor 23 sufiicient to drop the voltage supplied to grid 21 from 13+ to the required operating voltage of grid 21.
- the voltage that must be dropped across resistor 23 must be slightly greater than 200 volts minus the potential of point 28 taken here by way of example as 180 volts or a drop of somewhat more than 20 volts. This then requires that current slightly greater than two times 10- be drawn by grid 21 or the tube would be biased to operate at a point slightly above point 29 on the curve 27.
- resistor 23 By varying the value of resistor 23 this point may be shifted along curve 27 to any desired bias potential. This biasing method is self-regulatory since if the current increases, the drop across resistor 23 increases, thus lowering the potential of the grid 21 which in turn reduces the current. Also, if the B+ voltage is varied, due, for example, to fluctuations in the power supply, the resistor 23 may be varied to produce the correct operating conditions and furthermore will automatically maintain the desired operating potential for substantial variations of the power supply.
- FIG. 4 there is shown a circuit utilizing these oscillations to produce a voltage for triggering the tube whereby no external electrical signal is required.
- a tube similar to that illustrated in FIGS. 1, 2 and 3, like parts being referred to by like reference numerals.
- This comprises an envelope 10, an anode 18, cathode 13, grid section 21, adjacent to cathode '13 and grid section 19 shielding the anode 18 from the cathode 13, grid sections 19 and 21 being connected together.
- the anode 18 is connected through a load 22 to B+, said load being any desired currentoperated device such as a relay. It is to be clearly understood that in both FIGS. 3 and 4 this load could be placed in the cathode circuit rather than the anode circuit.
- the grid structure 19 and 21 is connected to B+ through a grid bias resistor 23 and to a filter circuit through a coupling condenser 25.
- the filter circuit comprises a resistor 26 and a variable capacitor 30 whose values are such that they are low impedance at the frequency of the oscillations generated in the tube. Resistor 26 is connected to ground, and condenser 30 is connected to B+.
- the filter circuit 30 and 26 is adjusted such that it does not damp the oscillations completely but merely loads them to a point where they are steady and uniform.
- the impedance of the filter circuit to the oscillations is increased, thereby reducing a loading on said oscillations whereupon the oscillations will increase in amplitude.
- a suitable bias applied through resistor 23 such that the oscillations donot fire the tube, it may be seen that by decreasing the value of the capacitor 30, the oscillations may be caused to build up to a point where the tube will fire.
- the filter circuits shown here are merely by way of example, and any known filter circuits which would accomplish the desired filtering might be used.
- the resistor 26 could be decreased to accomplish the desired result.
- the value of resistor 26 has been found to be somewhat critical for best results in oscillation damping. The resistor acts as an absorber of the oscillations, and if it is either increased or decreased, the amplitude of the oscillations will in general be increased.
- the condenser 30 Since the condenser 30 is connected to B
- An electron discharge system comprising a gas-filled envelope containing an anode, a cold cathode, and a grid structure, means for biasing said grid structure positive with respect to said cathode, a circuit connecting a source of potential and an output load impedance in series with said anode potential and oscillation damping means connected to said grid structure.
- An electron discharge system comprising a gas-filled envelope containing an anode, a cathode, and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, and a signal source, a biasing potential connected to said grid structure for biasing said grid structure positive with respect to said grid cathode, and oscillation damping means connected to said grid structure.
- An electron discharge system comprising a gas-filled envelope containing an anode, a cathode, and a grid structure, means for biasing said grid structure positive with respect to said cathode, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, and oscillation damping means connected'to said grid structure comprising a filter network connecting said grid structure to said anodecathode circuit.
- An electron discharge system comprising a' gas-filled envelope containing an anode, a cathode, and av grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, and a signal source, a biasing potential connected to said grid structure for biasing said grid structure positive with respect to said cathode, and oscillation damping means connected to said grid structure, said damping means comprising a filter network connecting said grid structure to said anode-cathode circuit, said filter being a low impedance at the frequency of the oscillations to be damped.
- An electron discharge system comprising a gas-filled envelope containing an anode, a cathode, and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, means for applying a positive biasing potential to said grid structure with respect to said cathode, oscillation damping means connected to said grid structure, and means connected to the circuit of said grid for producing a discharge between said anode and said cathode.
- An electron discharge system comprising a gas-filled envelope containing an anode, a cold cathode, and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, means for applying a biasing potential to said grid structure, oscillation damping means connected to said grid structure, and means for producing a discharge between said anode and said cathode comprising means for varying said oscillation damping means.
- An electron discharge system comprising a gas-filled envelope containing an anode, a cathode and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, oscillation damping means connected to said grid structure comprising a filter network having a capacitor therein, and means for producing a discharge between said anode and said cathode, comprising means for varying said capacitor.
- An electron discharge system comprising a gas-filled envelope containing an anode, a cathode and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, means for applying a biasing potential to said grid structure, oscillation damping means connected to said grid structure comprising a filter network connecting said grid structure to said anode-cathode circuit, said filter being a low impedance at the frequency of the oscillations to be damped, and means for varying said impedance to discharge said anode-cathode circuit.
- An electron discharge system comprising a gas-filled envelope containing an anode, a cathode and a grid structure, said grid structure having an element thereof positioned at substantially the minimum breakdown distance from said cathode, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, and a signal source, a biasing potential connected to said grid structure for biasing said grid structure positive with respect to said cathode, and oscillation damping means connected to said grid structure.
- An electron discharge system comprising a gasfilled envelope containing an anode, a cathode and a grid structure, said grid structure having a first element thereof positioned at substantially the minimum breakdown distance from said cathode, and a second element thereof shielding said cathode from said anode, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, oscillation damping means connected to said grid structure 7 comprising av filternetwork connecting said grida structure to. said anode-cathode circuit, said filter network being a low impedance at the frequency of the oscil la tions to be damped, and means for varyingsaid impeda-nce to discharge said system;
- An electron discharge system comprising a gasfilled envelope containing an anode, a cathode and a. grid stmnctu re, said grid structure having a first element there: of positioned at: substantially the minimumbreakdown distance from; said cathode anda second element thereof shielding-said, cathode from said anode, said second element being: positioned a greater distance from said cathode than first element, a circuit connecting a source of potential and an out-put load impedance. in series with said: anode and said cathode, a filter network having a 15 2,533,567
- capacitor thereina connecting said grid structure tov said anode-cathode circuit, and means. for producing a. dis: charge between said anode and said cathode comprising means; for varying, said; capacitor.
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Description
Oct. 10, 1961 P. w. STUTSMAN GAS DISCHARGE DEVICES 2 Sheets-Sheet 1 Filed June 25, 1949 R m N a m PHI/L m 570751 14 W 21% A MS Y 3,004,192 GAS DISCHARGE DEVICES Paul W. Stutsman, Needham, Mass, assignor to Raytheon Company, a corporation of Delaware Filed June 25, 1945', Ser. No. 101,279 11 Claims. (61. 315-238) This application relates to electron discharge devices and more particularly to means whereby oscillations inherent in a cold cathode gas discharge tube may be con trolled and utilized in the operation of the tube.
In gaseous discharge devices, particularly of the cold cathode type, when a voltage is applied between a grid adjacent the cathode, and the cathode, oscillations are generated in the gas space between the cathode and the electrode. One explanation of the cause of said oscillations is as follows. 7 V
In order to effectively control the biasing potential between the grid and cathode, the grid is fed from a positive voltage through a relatively highresistance, and as a result current variations between the cathode and grid result in voltage variations between the cathode and grid, Let us assume that, because of random electron and ion production in the gas, the electron-supply *to the anode is momentarily decreased. The decrease in electrons results in a decrease in tube current, which in turn results in an anode voltage rise. This anode voltage rise accelerates any free electrons in the gas, causing a small surplus of electrons to be formed by collision. The free supply of electrons thus formed, plus the higher anode voltage, permits an increase in tube current. The increase in tube current causes a drop in anode voltage, which reduces the number of electronion-molecule collisions, which in turn decreases the elec- 'tron supply to the anode. Thus a cyclic variation in "tube current and voltage occurs and the tube oscillates.
It has been discovered that, by the use of a filter network connecting the grid structure through a low impedance path to ground, these oscillations may be reduced to a point Where they will not fire the tube at an undesired time. ered that these oscillations are lowest when the distance between the'grid structure and the cathode is at minimum breakdown distance.
As used throughout the specification and claims, the term minimum breakdown distance is defined as being the distance between two electrodes ina gaseous medium whereat the smallest voltage between said elec trodes is required to create a discharge between said electrodes. It may be noted that this distance will vary with the pressure and type of gas surrounding the electrodes and electrode configuration. When the grid is positioned at the minimum breakdown distance from the cathode, the: oscillations produced in the tube prior to breakdown ofthe tube will be less than those produced with other spacings of the electrodes, since the oscillations 'ge'ner-ated between the grid'and cathode in general vary directly as a: function of the voltage applied between said grid and cathode. Thus by positioning the grid at the minimum breakdown distance from the cathode, the maximum stability of the device is achieved.
ted States Patent G Furthermore, it has been discov- Furthermore, it has been discovered that by the use of an external damping circuit with a suitable biasing po- --tential' applied between the grid and the cathode of the gas "discharge device whereby the oscillations between the grid andthe cathode are reduced to a point where the'tube is not fired, the tube may be fired by varying vthe components of the damping network such that the "ice 2 I of a charged condenser in the grid circuit whereby the current fiow in said condenser, due to the variations thereof, is arranged to produce a voltage pulse across a resistor in the grid circuit of the tube.
The particular details of specific embodiments of this invention are more particularly pointed out hereinafter, reference being had to the accompanying drawings where- FIG. 1 illustrates a longitudinal cross-sectional view of a gas discharge device utilizing this invention, taken along line '1-1 of FIG. 2;
FIG. 2 illustrates a transverse cross-sectional view of the device shown in FIG. 1 taken along line 2--2 of FIG. 1;'
FIG. 3 illustrates a circuit utilizing the gas discharge device and having one form of damping network there- FIG. 4 illustrates another circuit utilizing the gas discharge device .and showing one method for varying the damping circuit; and
FIG. 5 illustrates an operating characteristic of a gas discharge device of the type illustrated in FIGS. 1 and 2. I
Referring now to FIGS. 1 and 2, there is shown a gas discharge device comprising an envelope 10, which may be made of any desired insulating material such as glass, said envelope shown here by way of example as being tubular and having at one end a glass seal 11 through which extend a plurality of leads 12 for connecting the elements of the device to' any desired circuit.
Inside envelope 10 thereis. positioned a cathode 13 which may be of any desired type and as illustrated herein is a hollow cylindrical member positioned coaxial with envelope 10, the inner surface of said cathode cylinder being coated with electron emissive material. As shown here, the lower end of the cylindrical cathode 13 is covered by a wire mesh 14 which becomes activatedby being coated by electron emissive material during the processing of the tube. Mesh 14 thus acts as an auxiliary cathode from which keep-alive current is drawn in the standby condition of the tube. r n
Cathode 13 is supported on two rods 15 which extend from the upper end of the cylinder 13 along opposite sides of its inner surface parallel to the-axis thereof and down the length of the envelope 10 to the lower end thereof where they are connected to two ofthe leadin members ll which extend through the glass press 11. The rods 15 are rigidly attached to the cathode cylinder 13 as, for example, by being welded thereto and are surrounded, from a point immediately below the bottom of the cathode cylinder 13, by glass tubes 16 which extend downward to the glass press \11 and are fused thereto. 7 Extending upward from the press 11 coaxial with envelope 10 and cylinder 13 is a third glass tube 17 which contains therein an anode rod 18, attached to a lead 1 2 extending through the press'l l. The anoderod' 18 extends a small distance, for example, a distance equal to the diameter of said rod beyond the end of the glass tube 17 which terminates some distance below the bottom of the cathode cylinder 13. u The anode rod 18 is shielded from the cathode 13 by a cup-shaped grid 19 which is inverted and placed over anode rod 18 and glass tube 17 not touching anode rod 18. Grid 19 is rigidly positioned with respect to the other elements of the tube by being attached as by welding to a strap 20 extending around glass tubes 16 and 17 strap 20 being in turn attached as by welding to 'a lead 12 extending through glass press 11 whereby potentials may be applied to grid 19. A loop 21 is positioiied such that one portion thereof comes in close proximit-y i vi'th the screen 14 of the cathode 13, one end of said loop being connected to the uppermost point of grid 19 and the other end thereof being connected as by welding to strap 20.
The distance between the nearest portion of loop 21 and screen 14 is substantially equal to the minimum breakdown distance for the particular gas and gas pressure used in the device. By so positioning loop 21 with respect to auxiliary cathode 14, the minimum voltage is required between said loop and said cathode to produce .a discharge therebetween and, therefore, at the voltages just below those required to produce the discharge, oscil- -lations generated in the gas between loop 21 and screen -14 :are at .a minimum as previously described.
It may be seen that due to the shield 19 surrounding the anode 1 8, a .high potential may be applied between rod 18 and cathode 13 without discharging the tube. This is due to the fact that the grid 19 ha a high work function and, therefore, few electrons are available therefrom for ionizing the space between grid 19 and anode 18, and also due to the fact that the distance between grid 19 and anode .18 is made :diflerent from the minimum breakdown-distance for those two electrodes. While, as shown here, the distance between grid 19 and anode 18 is greater than the minimum breakdown distance, it is to be clearly understood that the same result may be accomplished by making said distance less than the minimum breakdown distance, since the breakdown voltage between two electrodes in a gaseous medium increases for both an increase or a decrease of their spacing from the minimum breakdown distance.
Referring now to FIG. .3, there is shown a circuit utilizing the discharge device illustrated in FIGS. 1 and 2 wherein the cathode 13 is connected to ground. The anode 18 is connected to a source of 13-}- through a load 22 which may be, for example, a relay or a fuse. The grid structure 19 and 21 is connected together and connected .to said B+ through a resistor 23 which may be, for example, on 'theorder of 10,000 megohms and through a condenser 24 which may be, for example, 20 micromicrofarads, to a damping circuit comprising a condenser 25 which :may be, for example, 100 microfarads and a resistor 26 in .parallel with said condenser, which maybe, 'for example, 100 megohms, said damping circuit in turn being connected through an input signal source to ground.
Referring now to FIG. 5, there is shown a graph illustrating the operation of this device. Along the abscissa of the graph is plotted the voltage between the grid 21 and the cathode 13 in volts and along the ordinate is plotted the current drawn from cathode 13 to grid 21 in amperes. When the wrrent of the discharge is amperes or less, as shown by the area labeled Townsend discharge, the voltage across the discharge varies directly as a function of the current, such that when the voltage increases, the current increases. When the voltage is increased to a point beyond that required to produce 10" amperes as shown by point 28, the current will then increase with a decrease in voltage thereby entering the :region labeled normal glow. Since the grid is fed through :a relatively large resistor, the grid current upon firing of the tube will not pass beyond the normal glow region because the voltage drop across the resistor would then lower the grid voltage below that required for maintaining the discharge between the grid and cathode. Thus it may be seen that once a sufficient voltage is applied to increase the current along curve 27 to point 28, the current will then rapidly increase to form a glow discharge between the grid and cathode.
Some electrons from the glow discharge will move through the grid section 19 and be accelerated to the anode 18 and will ionize the space therebetween, to therebyb establish cathode to anode conduction and fire the tu e.
However, if the voltage between the electrodes is maintained below that required to produce the current at point 28, this voltage being in this case by way of example approximately volts, the current will not increase to form an arc. Thus, for example, if the grid voltage were to be maintained at 178 volts above cathode, the current would be on the order of lO amperes as shown by point 29 on the curve. A positive signal voltage of two volts applied to the grid will be sufficient to fire the tube thereby producing a :circuit having extremely great sensitivity. While these particular points have been taken by way of example, it is in practice possible to operate nearer to point 28 than two volts and indeed it is possible to produce stable tubes wherein a grid signal of less than one volt will fire the tube.
In order to maintain the voltage between the grid 21 and the cathode 13, as shown in FIG. 3, the vgrid 21 is supplied with a positive voltage through a resistor 23. The value of this resistor is such that in the absence of an input signal, the current drawn by grid 21 will produce a voltage drop across resistor 23 sufiicient to drop the voltage supplied to grid 21 from 13+ to the required operating voltage of grid 21. For example, if the B+ voltage is 200 volts and the value of resistor 23 is 10,000 megohms, the voltage that must be dropped across resistor 23 must be slightly greater than 200 volts minus the potential of point 28 taken here by way of example as 180 volts or a drop of somewhat more than 20 volts. This then requires that current slightly greater than two times 10- be drawn by grid 21 or the tube would be biased to operate at a point slightly above point 29 on the curve 27.
By varying the value of resistor 23 this point may be shifted along curve 27 to any desired bias potential. This biasing method is self-regulatory since if the current increases, the drop across resistor 23 increases, thus lowering the potential of the grid 21 which in turn reduces the current. Also, if the B+ voltage is varied, due, for example, to fluctuations in the power supply, the resistor 23 may be varied to produce the correct operating conditions and furthermore will automatically maintain the desired operating potential for substantial variations of the power supply.
It the grid is being operated at a steady bias of, for example, the voltage of point 29, and oscillations between the cathode and grid are generated at the gaseous media, the positive peaks of these oscillations will add to the steady bias of point 29, thus raising its potential instantaneously to a point where it may and in most cases does, fire the tube. However, if these oscillations are damped by means of the circuit shown in FIG. 3 comprising a condenser 25 and resistor 26, the oscillations will be limited in their amplitude to a point where they will not fire the tube and at the same time be of a substantially uniform amplitude whereby their effect may be compensated for by decreasing the bias potential by an amount substantially equal to their amplitude. Indeed, if the filter system loaded the grid sufficiently heavily, these oscillations might be damped out altogether.
Referring now to FIG. 4, there is shown a circuit utilizing these oscillations to produce a voltage for triggering the tube whereby no external electrical signal is required. There is shown a tube similar to that illustrated in FIGS. 1, 2 and 3, like parts being referred to by like reference numerals. This comprises an envelope 10, an anode 18, cathode 13, grid section 21, adjacent to cathode '13 and grid section 19 shielding the anode 18 from the cathode 13, grid sections 19 and 21 being connected together. The anode 18 is connected through a load 22 to B+, said load being any desired currentoperated device such as a relay. It is to be clearly understood that in both FIGS. 3 and 4 this load could be placed in the cathode circuit rather than the anode circuit. The grid structure 19 and 21 is connected to B+ through a grid bias resistor 23 and to a filter circuit through a coupling condenser 25. The filter circuit comprises a resistor 26 and a variable capacitor 30 whose values are such that they are low impedance at the frequency of the oscillations generated in the tube. Resistor 26 is connected to ground, and condenser 30 is connected to B+.
The filter circuit 30 and 26 is adjusted such that it does not damp the oscillations completely but merely loads them to a point where they are steady and uniform. By decreasing the value of the capacitor 30, the impedance of the filter circuit to the oscillations is increased, thereby reducing a loading on said oscillations whereupon the oscillations will increase in amplitude. With a suitable bias applied through resistor 23 such that the oscillations donot fire the tube, it may be seen that by decreasing the value of the capacitor 30, the oscillations may be caused to build up to a point where the tube will fire. I
It is to be clearly understood that the filter circuits shown here are merely by way of example, and any known filter circuits which would accomplish the desired filtering might be used. Furthermore, to vary the impedance of the filter circuit other elements thereof besides a capacitor may be varied, for example, the resistor 26 could be decreased to accomplish the desired result. The value of resistor 26 has been found to be somewhat critical for best results in oscillation damping. The resistor acts as an absorber of the oscillations, and if it is either increased or decreased, the amplitude of the oscillations will in general be increased.
Since the condenser 30 is connected to B|, the plates thereof will be charged. If the capacitance of this condenser is varied, current will flow in the condenser 30 to produce a charge proportionate to the new value of capacitance. For example, if the capacitance is increased, electrons vvill flow from ground through resistor 26 to condenser 30. This will produce a positive voltage across resistor 26 for the duration of the charging period. This positive voltage may be used to fire the tube by being applied to the grid 21 through condenser 25.
This completes the description of the embodiments of the invention illustrated herein. However, many variations thereof will be apparent to persons skilled in the art without departing from the spirit and scope of this invention. For example, any number of grid sections could be used in the current structure of the tube. Other forms of bias might be used than the simple grid biasing resistor. The oscillation damping network could be returned to B+ rather than ground and various voltages could be used for the anode and grid voltages other than those specifically recited herein. Therefore, applicant does not wish to be limited to the specific embodiments of the invention as described herein except as defined by the appended claims.
What is claimed is:
1. An electron discharge system comprising a gas-filled envelope containing an anode, a cold cathode, and a grid structure, means for biasing said grid structure positive with respect to said cathode, a circuit connecting a source of potential and an output load impedance in series with said anode potential and oscillation damping means connected to said grid structure.
2. An electron discharge system comprising a gas-filled envelope containing an anode, a cathode, and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, and a signal source, a biasing potential connected to said grid structure for biasing said grid structure positive with respect to said grid cathode, and oscillation damping means connected to said grid structure.
3. An electron discharge system comprising a gas-filled envelope containing an anode, a cathode, and a grid structure, means for biasing said grid structure positive with respect to said cathode, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, and oscillation damping means connected'to said grid structure comprising a filter network connecting said grid structure to said anodecathode circuit.
4. An electron discharge system comprising a' gas-filled envelope containing an anode, a cathode, and av grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, and a signal source, a biasing potential connected to said grid structure for biasing said grid structure positive with respect to said cathode, and oscillation damping means connected to said grid structure, said damping means comprising a filter network connecting said grid structure to said anode-cathode circuit, said filter being a low impedance at the frequency of the oscillations to be damped.
5. An electron discharge system comprising a gas-filled envelope containing an anode, a cathode, and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, means for applying a positive biasing potential to said grid structure with respect to said cathode, oscillation damping means connected to said grid structure, and means connected to the circuit of said grid for producing a discharge between said anode and said cathode.
6. An electron discharge system comprising a gas-filled envelope containing an anode, a cold cathode, and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, means for applying a biasing potential to said grid structure, oscillation damping means connected to said grid structure, and means for producing a discharge between said anode and said cathode comprising means for varying said oscillation damping means.
7. An electron discharge system comprising a gas-filled envelope containing an anode, a cathode and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, oscillation damping means connected to said grid structure comprising a filter network having a capacitor therein, and means for producing a discharge between said anode and said cathode, comprising means for varying said capacitor.
8. An electron discharge system comprising a gas-filled envelope containing an anode, a cathode and a grid structure, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, means for applying a biasing potential to said grid structure, oscillation damping means connected to said grid structure comprising a filter network connecting said grid structure to said anode-cathode circuit, said filter being a low impedance at the frequency of the oscillations to be damped, and means for varying said impedance to discharge said anode-cathode circuit.
9. An electron discharge system comprising a gas-filled envelope containing an anode, a cathode and a grid structure, said grid structure having an element thereof positioned at substantially the minimum breakdown distance from said cathode, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, and a signal source, a biasing potential connected to said grid structure for biasing said grid structure positive with respect to said cathode, and oscillation damping means connected to said grid structure.
10. An electron discharge system comprising a gasfilled envelope containing an anode, a cathode and a grid structure, said grid structure having a first element thereof positioned at substantially the minimum breakdown distance from said cathode, and a second element thereof shielding said cathode from said anode, a circuit connecting a source of potential and an output load impedance in series with said anode and said cathode, oscillation damping means connected to said grid structure 7 comprising av filternetwork connecting said grida structure to. said anode-cathode circuit, said filter network being a low impedance at the frequency of the oscil la tions to be damped, and means for varyingsaid impeda-nce to discharge said system;
11. An electron discharge system comprising a gasfilled envelope containing an anode, a cathode and a. grid stmnctu re, said grid structure having a first element there: of positioned at: substantially the minimumbreakdown distance from; said cathode anda second element thereof shielding-said, cathode from said anode, said second element being: positioned a greater distance from said cathode than first element, a circuit connecting a source of potential and an out-put load impedance. in series with said: anode and said cathode, a filter network having a 15 2,533,567
capacitor thereina connecting said grid structure tov said anode-cathode circuit, and means. for producing a. dis: charge between said anode and said cathode comprising means; for varying, said; capacitor.
e erences C t d in he fi e Qt thi pa en UNITED STATES, PATENTS.
Re, 2 2,1;2 ;-3; Edgerton r ..l June. 23, 1-942 10 2,1=-.23,3-,8.6v St nsbur-y -w luly 12', 1 38 2,296,324 B hlst --V-.----V--- p 2,. 1 9. 2 ZJQLZZ Q Lowei N V, 10,. 19,42 Z',.4.7;3,8.3% SmI m -n --.----.s----s---- 1 7 21,. 9 49 2,434,703; Gehrke Oct. 11, 1949.
Erickson Dec. 12, 1950
Priority Applications (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US101279A US3004192A (en) | 1949-06-25 | 1949-06-25 | Gas discharge devices |
US227693A US3409793A (en) | 1949-06-25 | 1951-05-22 | Gas-filled discharge device having a grid with an element particularly spaced from the cathode |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US101279A US3004192A (en) | 1949-06-25 | 1949-06-25 | Gas discharge devices |
Publications (1)
Publication Number | Publication Date |
---|---|
US3004192A true US3004192A (en) | 1961-10-10 |
Family
ID=22283818
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US101279A Expired - Lifetime US3004192A (en) | 1949-06-25 | 1949-06-25 | Gas discharge devices |
Country Status (1)
Country | Link |
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US (1) | US3004192A (en) |
Citations (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US2123386A (en) * | 1931-03-20 | 1938-07-12 | Cutler Hammer Inc | Cathode construction |
USRE22113E (en) * | 1942-06-16 | Drain cleaner | ||
US2296324A (en) * | 1941-07-29 | 1942-09-22 | Rca Corp | Gaseous discharge device |
US2301220A (en) * | 1941-08-30 | 1942-11-10 | Remington Arms Co Inc | Electronic tube circuit |
US2473832A (en) * | 1944-04-14 | 1949-06-21 | Raytheon Mfg Co | Electrical system |
US2484703A (en) * | 1948-07-01 | 1949-10-11 | Sylvania Electric Prod | Thermionic discharge device |
US2533567A (en) * | 1947-11-15 | 1950-12-12 | Marcellus S Merrill | Electronic control circuits |
-
1949
- 1949-06-25 US US101279A patent/US3004192A/en not_active Expired - Lifetime
Patent Citations (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
USRE22113E (en) * | 1942-06-16 | Drain cleaner | ||
US2123386A (en) * | 1931-03-20 | 1938-07-12 | Cutler Hammer Inc | Cathode construction |
US2296324A (en) * | 1941-07-29 | 1942-09-22 | Rca Corp | Gaseous discharge device |
US2301220A (en) * | 1941-08-30 | 1942-11-10 | Remington Arms Co Inc | Electronic tube circuit |
US2473832A (en) * | 1944-04-14 | 1949-06-21 | Raytheon Mfg Co | Electrical system |
US2533567A (en) * | 1947-11-15 | 1950-12-12 | Marcellus S Merrill | Electronic control circuits |
US2484703A (en) * | 1948-07-01 | 1949-10-11 | Sylvania Electric Prod | Thermionic discharge device |
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