US20080035297A1 - Seal of a metal molding system - Google Patents
Seal of a metal molding system Download PDFInfo
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- US20080035297A1 US20080035297A1 US11/502,942 US50294206A US2008035297A1 US 20080035297 A1 US20080035297 A1 US 20080035297A1 US 50294206 A US50294206 A US 50294206A US 2008035297 A1 US2008035297 A1 US 2008035297A1
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- Prior art keywords
- interface
- seal member
- seal
- molding material
- barrel
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B22—CASTING; POWDER METALLURGY
- B22D—CASTING OF METALS; CASTING OF OTHER SUBSTANCES BY THE SAME PROCESSES OR DEVICES
- B22D17/00—Pressure die casting or injection die casting, i.e. casting in which the metal is forced into a mould under high pressure
- B22D17/20—Accessories: Details
- B22D17/2015—Means for forcing the molten metal into the die
- B22D17/2023—Nozzles or shot sleeves
Definitions
- the present invention generally relates to, but is not limited to, metal molding systems, and more specifically the present invention relates to, but is not limited to, (i) a seal of the metal molding system, (ii) a runner system of a metal molding system including a seal, (iii) a barrel assembly of a metal molding system including a seal, (iv) a metal molding system including a seal, and (v) a method of configuring a seal in a metal molding system, amongst other things.
- the molding system 10 includes an injection unit 14 and a clamp unit 12 .
- the injection unit 14 processes a metal molding material (not shown) into a melt that is in at least a partially molten state.
- the injection unit 14 subsequently injects the melt into a closed and clamped injection mold, arranged in the clamp unit 12 , in fluid communication therewith.
- the injection mold is shown in an open configuration in FIG. 1 and comprises complementary mold hot and cold halves 23 and 25 .
- the injection unit 14 further includes an injection unit base 28 which slidably supports an injection assembly 29 mounted thereon.
- the injection assembly 29 comprises a barrel assembly 38 arranged within a carriage assembly 34 , and a drive assembly 36 mounted to the carriage assembly 34 .
- the drive assembly 36 is mounted directly behind the barrel assembly 38 , for the operation (i.e., rotation and reciprocation) of a screw (not shown) arranged within the barrel assembly 38 .
- the injection assembly 29 is shown to be connected to a stationary platen 16 of the clamp unit 12 , through the use of carriage cylinders 30 .
- the clamp unit 12 includes a clamp base 18 with a stationary platen 16 securely retained to an end thereof, a clamp block 22 slidably connected at an opposite end of the clamp base 18 , and a moving platen 20 arranged to translate therebetween on a set of tie bars 32 that otherwise interconnect the stationary platen 16 and the clamp block 22 .
- the clamp unit 12 further includes a structure (not shown) for actuating the moving platen 20 and for clamping of the mold halves 23 , 25 together during the injection of the melt of molding material.
- the injection mold includes a molding cavity (not shown) formed between complementary molding inserts shared between the mold halves 23 , 25 .
- the mold half 25 includes a runner system 26 that connects a melt passageway (not shown) of the barrel assembly 38 with the molding cavity for the filling thereof.
- a seal in the metal molding system 10 has been effected by various means.
- the foregoing patent publication, US No. 2005/0255189 teaches a cooled interface for providing a seal of at least partially solidified molding material between the components of the runner system 26 .
- a problem with the cooled interface may occur when the amount of heat required to be removed to effect the seal of at least partially solidified molding material is also sufficient to over-cool an adjacent portion of a melt passageway and cause a plug of at least partially solidified molding material to form therein which may affect the proper flow of the molding material therethrough.
- U.S. Pat. No. 6,942,006 (Inventor: KONO; Published: 13 Sep. 2005) describes a metal injection molding apparatus with features which reduce the amount of metal which enters a drive mechanism of the apparatus.
- the apparatus contains an injection chamber having an accumulation portion and a shaft housing portion.
- the shaft housing may extend all the way to the position of an injection member in a fully retracted position.
- the accumulation portion and the shaft housing may comprise different vessels attached to each other with an insulating gasket provided therebetween.
- the insulator material of the gasket is preferably made of asbestos, a heat insulating ceramic or any other suitable heat resistant material.
- the material to be injected such as a liquid or thixotropic metal, enters the injection chamber through an entry opening configured in the accumulation portion, and exits the accumulation portion, when injected, through a nozzle aperture configured at an end of the accumulation portion and into the mold.
- the shaft housing portion may include openings in the sidewalls through which any melt leakage past from the injection member that has not been caught by a series of piston rings may egress. Accordingly, the shaft housing, and gasket, is not configured to experience pressurized melt of molding material.
- WO 9500312 discloses a hot runner distributor for supplying molten thermoplastic materials to hot nozzles at molding tools that has pipe plug-type connections that allow thermal expansion.
- Each pipe plug-type connection has two mutually aligned pipe ends which surround the runner of molten material and are mutually separated by an expandable joint. Both pipe ends are enclosed in the area of the expandable joint by a common cooling ring.
- the molten plastic material which solidifies under the action of the cooling ring seals the pipe plug-type connection in the area of the expandable joint.
- a seal of a metal molding system includes a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, and the seal member in conforming co-operation with an interface controls leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- a runner system of a metal molding system including a seal.
- the seal includes a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, and the seal member in conforming co-operation with an interface controls leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- a barrel assembly of a metal molding system including a seal.
- the seal including a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, and the seal member in conforming co-operation with an interface controls leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- a metal molding system including a seal.
- the seal includes a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, and the seal member in conforming co-operation with an interface controls leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- a method of configuring a seal in a metal molding system including arranging a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system in conforming co-operation with an interface to control leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- a technical effect, amongst others, of the aspects of the present invention is the provision of a seal of a metal molding system that controls leaking of the molding material at an interface subject to the molding material approaching an injection pressure.
- FIG. 1 is a side view of a metal molding system
- FIG. 2A is a side view of a pair of melt conduits including a seal in accordance with an exemplary first, presently preferred, embodiment of the present invention
- FIG. 2B is a section view through the melt conduits and seal of FIG. 2A , as taken along section line B-B;
- FIG. 3A is a side view of a pair of melt conduits including a seal in accordance with an exemplary second embodiment of the present invention
- FIG. 3B is a section view through the melt conduits and seal of FIG. 3A , as taken along section line B-B;
- FIG. 4A is a side view of a pair of melt conduits including a seal in accordance with an exemplary third embodiment of the present invention
- FIG. 4B is a section view through the melt conduits and seal of FIG. 4A , as taken along section line B-B;
- FIG. 5A is a side view of a pair of melt conduits including a seal in accordance with an exemplary fourth embodiment of the present invention
- FIG. 5B is a section view through the melt conduits and seal of FIG. 5A , as taken along section line B-B;
- FIG. 6A is a side view of a pair of melt conduits including a seal in accordance with an exemplary fifth embodiment of the present invention.
- FIG. 6B is a section view through the melt conduits and seal of FIG. 6A , as taken along section line B-B;
- FIG. 7 is an exploded perspective view of a runner system of the metal molding system including a seal in accordance an exemplary sixth embodiment of the present invention.
- FIG. 8A is a section view of a barrel assembly of the metal molding system including a seal in accordance an exemplary seventh embodiment of the present invention
- FIG. 8B is a detailed view of the seal of FIG. 8A ;
- FIG. 9A is a section view of a barrel assembly of the metal molding system including a seal in accordance an exemplary eighth embodiment of the present invention.
- FIG. 9B is a detailed view of the seal of FIG. 9A ;
- FIG. 10A is a section view of a barrel assembly of the metal molding system including a seal in accordance an exemplary ninth embodiment of the present invention.
- FIG. 10B is a detailed view of the seal of FIG. 10A ;
- FIG. 11A is a side view of a sprue bushing and machine nozzle including a seal in accordance with an exemplary tenth embodiment of the present invention
- FIG. 11B is a section view through the sprue bushing, machine nozzle, and seal of FIG. 11A , as taken along section line B-B.
- FIGS. 2A & 2B depict a seal 60 in accordance with a first, presently preferred, embodiment of the invention that is configured between a pair of melt conduits 70 , 70 ′.
- the exemplary melt conduits 70 , 70 ′ are tubular members with a melt passageway 48 extending therethrough.
- a heating structure 50 such as resistance and/or inductance heaters, is disposed on the outside the melt conduits 70 , 70 ′ to controllably maintain the melt of molding material in the melt passageway 48 at a processing temperature.
- the melt conduits 70 , 70 ′ form a spigot connection along interposed spigot portions 71 , 71 ′ that are arranged at the ends of the melt conduits 70 , 70 ′.
- An interface 64 is defined between annular mating faces 73 , 73 ′ of the spigot portions 71 , 71 ′.
- a seal member 62 configured as an annular body, is arranged at the interface 64 between the mating faces 73 , 73 ′.
- the seal member 62 in conforming co-operation with the interface 64 controls leaking of the molding material at the interface 64 subject to the molding material approaching an injection pressure.
- the seal member 62 is configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, typically an alloy of Magnesium such as AZ91D.
- the seal member 62 is made from low-carbon steel such as AISI 1010.
- the melt conduits 70 , 70 ′ are preferably made from hot work tool steel, such as DIN 1.2888.
- the relatively soft seal member 62 is deformed to conform with the mating faces 73 , 73 ′ in response to a sealing force applied across the interface 64 .
- the seal member 62 may be deformed plastically or elastically.
- the foregoing material combination may be reversed wherein the seal member 62 is made from the harder material and the mating faces 73 , 73 ′ of the melt conduits 70 , 70 ′ conform instead to the seal member 62 .
- the seal member 62 may also be made from stainless steel, and cobalt alloys.
- FIGS. 3A & 3B depict a seal 160 in accordance with a second embodiment of the invention that is configured between a pair of melt conduits 170 , 170 ′.
- the exemplary melt conduits 170 , 170 ′ are tubular members with a melt passageway 148 extending therethrough.
- An interface 164 is defined between annular mating faces 173 , 173 ′ at the ends of the melt conduits 170 , 170 ′.
- a seal member 162 configured as an annular body, is arranged at the interface 164 between the mating faces 173 , 173 ′.
- the seal member 162 in conforming co-operation with an interface 64 controls leaking of the molding material at the interface 164 subject to the molding material approaching an injection pressure.
- the seal 160 further includes a cooling structure 180 for a controllable cooling of the interface 164 that has the technical effect of controlling the viscosity of the molding material in the vicinity of the interface 164 and thereby controlling the leakage through the interface 164 .
- the cooling ring includes a spigot portion 181 that forms a further interface 183 in cooperation with spigot portions 171 , 171 ′ configured along a step in an outer circumferential surface at the ends the melt conduits 170 , 170 ′ in an overlapping, closely-spaced, and mutually parallel relation.
- the cooling structure 180 may controllably cool the interfaces 164 , 183 sufficiently to solidify, at least partially, molding material in the vicinity of one or both of the interfaces 164 , 183 to form a supplemental seal.
- the cooling structure 180 is configured in accordance with the teachings of the United States patent publication, US No. 2005/0255189.
- the cooling structure 180 is preferably an annular body with a coolant channel 182 defined therein.
- the cooling structure 180 also preferably includes a temperature monitoring structure 186 , 188 , such as a thermocouple, to provide temperature feedback to a controller (not shown) in order that a flow and temperature of the coolant to the channel 182 may be controlled to effect a temperature control of the interfaces 164 , 183 .
- Fittings 184 are shown for connecting the cooling ring 180 to a coolant source.
- the cooling structure 180 may operate more simply as a heat radiator, for example to pass heat to a cooled plate of a runner system (such as plate 562 , 564 of runner system 526 depicted in FIG. 7 ).
- FIGS. 4A & 4B depict a seal 260 in accordance with a third embodiment of the invention that is configured between a pair of melt conduits 270 , 270 ′.
- the exemplary melt conduits 270 , 270 ′ are tubular members with a melt passageway 248 extending therethrough.
- the melt conduits 270 , 270 ′ form a spigot connection along interposed tapered spigot portions 271 , 271 ′ that are arranged at the ends of the melt conduits 270 , 270 ′.
- An interface 264 is defined between tapered peripheral mating faces 273 , 273 ′ of the spigot portions 271 , 271 ′.
- a seal member 262 configured as a frusto-conical shaped tubular body, is arranged at the interface 264 between the mating faces 273 , 273 ′.
- the seal member 262 in conforming co-operation with the interface 264 controls leaking of the molding material at the interface 264 subject to the molding material approaching an injection pressure.
- the relatively soft seal member 262 is deformed to conform with the mating faces 273 , 273 ′ in response to a sealing force applied across the interface 264 .
- FIG. 5A & 5B depict a seal 360 in accordance with a fourth embodiment of the invention that is configured between a pair of melt conduits 370 , 370 ′.
- the exemplary melt conduits 370 , 370 ′ are tubular members with a melt passageway 348 extending therethrough.
- the melt conduits 370 , 370 ′ form a spigot connection along interposed spigot portions 371 , 371 ′ that are arranged at the ends of the melt conduits 370 , 370 ′.
- An interface 364 is defined between peripheral mating faces 373 , 373 ′ of the spigot portions 371 , 371 ′.
- a seal member 362 preferably configured as a tubular body, is arranged at the interface 364 between the mating faces 373 , 373 ′.
- the seal member 362 is to be made of a brazing alloy that is both chemically compatible with the molding material processed in the metal molding system and that has a melting temperature that is selected to be above a processing temperature range of the molding material.
- a heating structure 350 is arranged near the interface 364 for a controlled heating of the seal member 362 to cause the seal member 362 to melt, at least partially, to effect a re-molding of the seal member 362 to conform to the interface 364 .
- the re-molded seal 362 adheres to the interface 364 .
- the re-molding of the seal member 362 is preferably completed once the melt conduits 370 , 370 ′ have been heated to their processing temperatures.
- the heating structure 350 is controlled to reduce the temperature at the interface 364 to be below the melting temperature of the seal member 362 .
- the seal member 362 re-molded to be in conforming co-operation with the interface 364 controls leaking of the molding material at the interface 364 subject to the molding material approaching an injection pressure.
- the brazing alloy includes a gold alloy.
- the brazing material may be applied as a paste to the interface 364 during initial assembly.
- FIGS. 6A & 6B depict a seal 460 in accordance with a fifth embodiment of the invention that is configured between a pair of melt conduits 470 , 470 ′.
- the exemplary melt conduits 470 , 470 ′ are tubular members with a melt passageway 448 extending therethrough.
- An interface 464 is defined between annular mating faces 473 , 473 ′ at the ends of the melt conduits 470 , 470 ′.
- the mating face 473 ′ includes a surface of a groove 463 formed through the annular mating face of the melt conduit 470 ′.
- a composite seal member 462 preferably configured in the shape of a torus body, is arranged at the interface 464 between the mating faces 473 , 473 ′.
- the seal member 462 in conforming co-operation with an interface 464 controls leaking of the molding material at the interface 464 subject to the molding material approaching an injection pressure.
- the seal member 462 is deformed to conform with the mating faces 473 , 473 ′ in response to a sealing force applied across the interface 464 .
- the seal member 462 may be deformed plastically or elastically.
- the seal member 462 is configured as an elastically deformable spring energized seal member, such as AMERISEAL (a trademark of American Seal And Engineering Company, Inc.), which typically include a toroidal shaped casing surrounding a spring element.
- AMERISEAL a trademark of American Seal And Engineering Company, Inc.
- Such seal members 462 are often made from alloys of nickel such as INCONEL (a trademark of Inco Alloys International, Inc) in which case a coating made from a material that is chemically compatible with the molding material, such as alloys of gold, is preferably disposed around the seal member 462 .
- the composite seal member 462 may have, for example, a square, rectangular, oval, or racetrack configuration.
- FIG. 7 depicts a seal 560 in accordance with a sixth embodiment of the invention that is configured between a first and second manifold 570 , 572 , of an exemplary runner system 526 .
- the seal 560 is configured in accordance with the seal 60 of the first embodiment of the invention.
- any one of, combination, or permutation of the seals 60 , 160 , 260 , 360 , 460 in accordance with the first, second, third, fourth, or fifth embodiment may otherwise be used to control leaking of molding material between components of the runner system 526 .
- the runner system 526 is configured to include multiple drops, or gates, to the mold (not shown).
- the first and second manifolds 570 and 572 are arranged in manifold pockets (not shown) defined between a manifold plate 564 and a backing plate 562 .
- the manifolds 570 , 572 are also preferably configured to be located in the manifold pockets with an arrangement of side and axial insulators 506 , 508 , 510 that assist in isolating the heated manifolds 570 , 572 from the relatively cool plates 562 , 564 and to transfer forces thereto.
- the sealing force to register the seal member 562 in conforming co-operation with the interface (not shown) between the manifolds 570 , 572 may be achieved through the appropriate selection of cold clearances between the manifolds 570 , 572 , their insulators 506 , 508 , 510 , and the manifold pockets (not shown) such that when heated to a processing temperature the resultant thermal growth in the manifolds 570 , 572 is sufficient to both take-up the cold clearance, if any, and to generate an interference that provides the sealing force.
- an actuator may be placed in the runner system 526 to compress the manifolds 570 , 572 together to provide the sealing force.
- the runner system 526 is also shown to include a nozzle drop 573 for connecting the second manifolds 572 with the mold cavity, or cavities (not shown).
- the interface between the second manifold 572 and the nozzle drop 573 is preferably configured in accordance with any of the seals 60 , 160 , 260 , 360 , 460 in accordance with the foregoing embodiments.
- the runner system 526 is configured to include two vertically oriented drops, other quantities and configurations of drops are possible.
- the runner system 526 may include only a single drop that is centered with an interface with a molding machine nozzle 44 , or alternatively offset therewith.
- FIGS. 8A & 8B depict a seal 660 in accordance with a seventh embodiment of the invention that is configured in a barrel assembly 638 .
- the barrel assembly 638 includes a barrel head 642 that is positioned intermediate a machine nozzle 644 and a front end of a barrel 640 .
- a melt passageway 648 extends through the components of the barrel assembly 638 .
- the melt passageway 648 of the barrel 640 is disposed along a liner 646 made from a corrosion resistant material, such as STELLITE (a trademark of Deloro Stellite, Inc.) to protect the barrel substrate material, commonly made from a nickel-based alloy such as INCONEL, from the corrosive properties of the molding material.
- STELLITE a trademark of Deloro Stellite, Inc.
- the components of the barrel assembly 638 are shown to be held together, at least in part, through the use of fasteners 51 .
- the barrel 640 , barrel head 642 , and the machine nozzle 644 each include a heating structure 50 for controlling the molding material in the melt passageway 648 at a processing temperature.
- the exemplary barrel assembly 638 further includes an auxiliary member 641 arranged to overlap flange portions of the barrel head 642 and barrel liner 646 to provide alignment therebetween.
- the seal 660 is arranged at an interface 664 between the liner 646 of the barrel 640 and the barrel head 642 .
- the seal 660 is configured similarly to the seal 460 of the fifth embodiment of the invention.
- any one of, combination, or permutation of the seals 60 , 160 , 260 , 360 , 460 in accordance with the first, second, third, fourth, or fifth embodiment may otherwise be used to control leaking of molding material between components of the barrel assembly 638 .
- the interface 664 is defined between annular mating faces 473 , 473 ′ provided at the end of the barrel liner 646 and a surface of a groove 663 formed on the rear of the barrel head 642 .
- a composite seal member 662 preferably configured in the shape of a torus body, is arranged at the interface 664 between the mating faces 673 , 673 ′.
- the seal member 662 in conforming co-operation with an interface 664 controls leaking of the molding material at the interface 664 subject to the molding material approaching an injection pressure.
- the seal member 662 is deformed to conform with the mating faces 673 , 673 ′ in response to a sealing force applied across the interface 664 .
- the sealing force is preferably generated by the tightening of the fasteners 51 that bolt the barrel head 642 to the barrel 640 .
- FIGS. 9A & 9B depict a seal 760 in accordance with an eighth embodiment of the invention that is configured in a barrel assembly 738 .
- the barrel assembly 738 includes a barrel head 742 that is positioned intermediate a machine nozzle 744 and a front end of a barrel 740 .
- a melt passageway 748 extends through the components of the barrel assembly 738 .
- the melt passageway 748 of the barrel 740 is disposed along a liner 746 .
- An auxiliary device (not shown), such as dowels, may be used to align the barrel head 742 with the barrel 740 in place of the auxiliary member 641 of the foregoing embodiment.
- the seal 760 is configured similarly to the seal 60 of the first embodiment of the invention.
- any one of, combination, or permutation of the seals 60 , 160 , 260 , 360 , 460 in accordance with the first, second, third, fourth, or fifth embodiment may otherwise be used to control leaking of molding material between components of the barrel assembly 738 .
- a seal member 762 configured as an annular body, is arranged at the interface 764 between the mating faces 773 , 773 ′. The seal member 762 in conforming co-operation with an interface 764 controls leaking of the molding material at the interface 764 subject to the molding material approaching an injection pressure.
- the seal member 762 is deformed to conform with the mating faces 773 , 773 ′ in response to a sealing force applied across the interface 764 .
- the sealing force is preferably generated by the tightening of the fasteners 51 that bolt the barrel head 742 to the barrel 740 .
- FIG. 10A & 10B depict a seal 860 in accordance with a ninth embodiment of the invention that is configured in a barrel assembly 838 .
- the barrel assembly 838 includes a barrel head 842 that is positioned intermediate a machine nozzle 844 and a front end of a barrel 840 .
- a melt passageway 848 extends through the components of the barrel assembly 838 .
- the melt passageway 848 of the barrel 840 is disposed along a liner 846 .
- the exemplary barrel assembly 838 further includes a cooling structure 880 that is arranged to overlap flange portions of the barrel head 842 and barrel liner 846 to provide alignment therebetween and to cool an interface 864 formed between the barrel head 842 and the barrel liner 846 .
- the cooling structure 880 is preferably an annular body with a coolant channel 882 defined therein.
- the cooling structure 880 also preferably includes a temperature monitoring structure (not shown) to provide temperature feedback to a controller (not shown) in order that a flow and temperature of the coolant to the channel 882 may be controlled to effect a temperature control of the interface 864 .
- the exemplary barrel assembly 838 further includes an auxiliary member 841 that surrounds the cooling structure 880 as a structural spacer.
- the seal 860 is configured similarly to the seal 160 of the second embodiment of the invention.
- any one of, combination, or permutation of the seals 60 , 160 , 260 , 360 , 460 in accordance with the first, second, third, fourth, or fifth embodiment may otherwise be used to control leaking of molding material between components of the barrel assembly 838 .
- a seal member 862 configured as an annular body, is arranged at the interface 864 between the mating faces 873 , 873 ′. The seal member 862 in conforming co-operation with an interface 864 controls leaking of the molding material at the interface 864 subject to the molding material approaching an injection pressure.
- the seal member 862 is deformed to conform with the mating faces 873 , 873 ′ in response to a sealing force applied across the interface 864 .
- the sealing force is preferably generated by the tightening of the fasteners 51 that bolt the barrel head 842 to the barrel 840 .
- the cooling structure 880 provides for a controllable cooling of the interface 864 that has the technical effect of controlling the viscosity of the molding material in the vicinity of the interface 864 and thereby controlling the leakage through the interface 864 .
- the cooling structure 880 may controllably cool the interfaces 864 , 883 sufficiently to solidify, at least partially, molding material in the vicinity of one or both of the interfaces 864 , 883 to form a supplemental seal.
- the barrel assembly may include a multi-component barrel, for example having a first and second barrel portions.
- the seals 60 , 160 , 260 , 360 , 460 in accordance with the first, second, third, fourth, and/or fifth exemplary embodiments or further variants thereto, may be configured at an interface between the first and second barrel portions.
- FIGS. 11A & 11B depict a seal 960 in accordance with a tenth embodiment of the invention that is configured between a machine nozzle 944 and a mold sprue bushing 970 .
- the seal 960 is configured similarly to the seal 60 of the first embodiment of the invention.
- any one of, combination, or permutation of the seals 60 , 160 , 260 , 360 , 460 in accordance with the first, second, third, fourth, or fifth embodiment may otherwise be used to control leaking of molding material between the machine nozzle 944 and the sprue bushing 970 .
- the machine nozzle 944 and the mold sprue 970 form a spigot connection along interposed spigot portions 971 , 971 ′.
- An interface 964 is defined between annular mating faces 973 , 973 ′ of the spigot portions 971 , 971 ′.
- a seal member 962 configured as an annular body, is arranged at the interface 964 between the mating faces 973 , 973 ′.
- the seal member 962 in conforming co-operation with the interface 964 controls leaking of the molding material at the interface 964 subject to the molding material approaching an injection pressure.
- one of the seal member 962 and the mating faces 973 , 973 ′ are deformed to conform with the other in response to a sealing force applied across the interface 964 .
- the sealing force is typically provided by a carriage force applied along the barrel assembly (not shown) that maintains the machine nozzle 944 engaged in the sprue bushing 970 .
- the seal 60 , 160 , 260 , 360 , 460 , 560 , 660 , 760 , 860 , 960 of the embodiments of the present invention, and variants thereto, may be used in any combination, or permutation, including with other known seals, to supplement, the control of leaking through an interface.
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- Gasket Seals (AREA)
Abstract
Description
- The present invention generally relates to, but is not limited to, metal molding systems, and more specifically the present invention relates to, but is not limited to, (i) a seal of the metal molding system, (ii) a runner system of a metal molding system including a seal, (iii) a barrel assembly of a metal molding system including a seal, (iv) a metal molding system including a seal, and (v) a method of configuring a seal in a metal molding system, amongst other things.
- With reference to
FIG. 1 an exemplary metalinjection molding system 10 is shown. Themolding system 10 includes aninjection unit 14 and aclamp unit 12. - The
injection unit 14 processes a metal molding material (not shown) into a melt that is in at least a partially molten state. Theinjection unit 14 subsequently injects the melt into a closed and clamped injection mold, arranged in theclamp unit 12, in fluid communication therewith. The injection mold is shown in an open configuration inFIG. 1 and comprises complementary mold hot andcold halves injection unit 14 further includes aninjection unit base 28 which slidably supports aninjection assembly 29 mounted thereon. Theinjection assembly 29 comprises abarrel assembly 38 arranged within acarriage assembly 34, and adrive assembly 36 mounted to thecarriage assembly 34. Thedrive assembly 36 is mounted directly behind thebarrel assembly 38, for the operation (i.e., rotation and reciprocation) of a screw (not shown) arranged within thebarrel assembly 38. Theinjection assembly 29 is shown to be connected to astationary platen 16 of theclamp unit 12, through the use ofcarriage cylinders 30. - The
clamp unit 12 includes aclamp base 18 with astationary platen 16 securely retained to an end thereof, aclamp block 22 slidably connected at an opposite end of theclamp base 18, and a movingplaten 20 arranged to translate therebetween on a set oftie bars 32 that otherwise interconnect thestationary platen 16 and theclamp block 22. Theclamp unit 12 further includes a structure (not shown) for actuating the movingplaten 20 and for clamping of themold halves - The injection mold includes a molding cavity (not shown) formed between complementary molding inserts shared between the
mold halves mold half 25 includes arunner system 26 that connects a melt passageway (not shown) of thebarrel assembly 38 with the molding cavity for the filling thereof. - The structure and operation of the molding system is further described with reference to United States published patent application No. 2005/0255189 (Inventor: MANDA, Jan; et al. Published: 17 Nov. 2005).
- The provision of a seal in the
metal molding system 10, such as those between melt conduit components of thebarrel assembly 38 andrunner system 26, has been effected by various means. For example, the foregoing patent publication, US No. 2005/0255189, teaches a cooled interface for providing a seal of at least partially solidified molding material between the components of therunner system 26. A problem with the cooled interface may occur when the amount of heat required to be removed to effect the seal of at least partially solidified molding material is also sufficient to over-cool an adjacent portion of a melt passageway and cause a plug of at least partially solidified molding material to form therein which may affect the proper flow of the molding material therethrough. Others have relied on face seals across a clamped interface between mating faces of adjacent melt conduits. In practice, the mating faces of the melt conduits that form the interface do not adequately conform to one another to affect a reliable seal against the leakage of the generally low viscosity molding material under the injection pressure. - U.S. Pat. No. 6,942,006 (Inventor: KONO; Published: 13 Sep. 2005) describes a metal injection molding apparatus with features which reduce the amount of metal which enters a drive mechanism of the apparatus. The apparatus contains an injection chamber having an accumulation portion and a shaft housing portion. The shaft housing may extend all the way to the position of an injection member in a fully retracted position. The accumulation portion and the shaft housing may comprise different vessels attached to each other with an insulating gasket provided therebetween. The insulator material of the gasket is preferably made of asbestos, a heat insulating ceramic or any other suitable heat resistant material. The material to be injected, such as a liquid or thixotropic metal, enters the injection chamber through an entry opening configured in the accumulation portion, and exits the accumulation portion, when injected, through a nozzle aperture configured at an end of the accumulation portion and into the mold. The shaft housing portion may include openings in the sidewalls through which any melt leakage past from the injection member that has not been caught by a series of piston rings may egress. Accordingly, the shaft housing, and gasket, is not configured to experience pressurized melt of molding material.
- World Intellectual Property Organization Patent Number WO 9500312 (Inventor: WOLFF; Published: Jan. 15, 1995) discloses a hot runner distributor for supplying molten thermoplastic materials to hot nozzles at molding tools that has pipe plug-type connections that allow thermal expansion. Each pipe plug-type connection has two mutually aligned pipe ends which surround the runner of molten material and are mutually separated by an expandable joint. Both pipe ends are enclosed in the area of the expandable joint by a common cooling ring. The molten plastic material which solidifies under the action of the cooling ring seals the pipe plug-type connection in the area of the expandable joint.
- According to a first aspect of the present invention, there is provided a seal of a metal molding system. The seal includes a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, and the seal member in conforming co-operation with an interface controls leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- According to a second aspect of the present invention, there is provided a runner system of a metal molding system, the runner system including a seal. The seal includes a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, and the seal member in conforming co-operation with an interface controls leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- According to a third aspect of the present invention, there is provided a barrel assembly of a metal molding system, the barrel assembly including a seal. The seal including a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, and the seal member in conforming co-operation with an interface controls leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- According to a fourth aspect of the present invention, there is provided a metal molding system including a seal. The seal includes a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, and the seal member in conforming co-operation with an interface controls leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- According to a fifth aspect of the present invention, there is provided a method of configuring a seal in a metal molding system. The method including arranging a seal member configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system in conforming co-operation with an interface to control leaking of the molding material at the interface subject to the molding material approaching an injection pressure.
- A technical effect, amongst others, of the aspects of the present invention is the provision of a seal of a metal molding system that controls leaking of the molding material at an interface subject to the molding material approaching an injection pressure.
- Preferable embodiments of the present invention are subject of the dependent claims.
- A better understanding of the exemplary embodiments of the present invention (including alternatives and/or variations thereof) may be obtained with reference to the detailed description of the exemplary embodiments along with the following drawings, in which:
-
FIG. 1 is a side view of a metal molding system; -
FIG. 2A is a side view of a pair of melt conduits including a seal in accordance with an exemplary first, presently preferred, embodiment of the present invention; -
FIG. 2B is a section view through the melt conduits and seal ofFIG. 2A , as taken along section line B-B; -
FIG. 3A is a side view of a pair of melt conduits including a seal in accordance with an exemplary second embodiment of the present invention; -
FIG. 3B is a section view through the melt conduits and seal ofFIG. 3A , as taken along section line B-B; -
FIG. 4A is a side view of a pair of melt conduits including a seal in accordance with an exemplary third embodiment of the present invention; -
FIG. 4B is a section view through the melt conduits and seal ofFIG. 4A , as taken along section line B-B; -
FIG. 5A is a side view of a pair of melt conduits including a seal in accordance with an exemplary fourth embodiment of the present invention; -
FIG. 5B is a section view through the melt conduits and seal ofFIG. 5A , as taken along section line B-B; -
FIG. 6A is a side view of a pair of melt conduits including a seal in accordance with an exemplary fifth embodiment of the present invention; -
FIG. 6B is a section view through the melt conduits and seal ofFIG. 6A , as taken along section line B-B; -
FIG. 7 is an exploded perspective view of a runner system of the metal molding system including a seal in accordance an exemplary sixth embodiment of the present invention; -
FIG. 8A is a section view of a barrel assembly of the metal molding system including a seal in accordance an exemplary seventh embodiment of the present invention; -
FIG. 8B is a detailed view of the seal ofFIG. 8A ; -
FIG. 9A is a section view of a barrel assembly of the metal molding system including a seal in accordance an exemplary eighth embodiment of the present invention; -
FIG. 9B is a detailed view of the seal ofFIG. 9A ; -
FIG. 10A is a section view of a barrel assembly of the metal molding system including a seal in accordance an exemplary ninth embodiment of the present invention; -
FIG. 10B is a detailed view of the seal ofFIG. 10A ; -
FIG. 11A is a side view of a sprue bushing and machine nozzle including a seal in accordance with an exemplary tenth embodiment of the present invention; -
FIG. 11B is a section view through the sprue bushing, machine nozzle, and seal ofFIG. 11A , as taken along section line B-B. - The drawings are not necessarily to scale and are may be illustrated by phantom lines, diagrammatic representations and fragmentary views. In certain instances, details that are not necessary for an understanding of the exemplary embodiments or that render other details difficult to perceive may have been omitted.
-
FIGS. 2A & 2B depict aseal 60 in accordance with a first, presently preferred, embodiment of the invention that is configured between a pair ofmelt conduits exemplary melt conduits melt passageway 48 extending therethrough. Aheating structure 50, such as resistance and/or inductance heaters, is disposed on the outside themelt conduits melt passageway 48 at a processing temperature. Themelt conduits spigot portions melt conduits interface 64 is defined between annular mating faces 73, 73′ of thespigot portions seal member 62, configured as an annular body, is arranged at theinterface 64 between the mating faces 73, 73′. Theseal member 62 in conforming co-operation with theinterface 64 controls leaking of the molding material at theinterface 64 subject to the molding material approaching an injection pressure. Theseal member 62 is configured to be chemically compatible with, and of a different composition than, a molding material processed in the metal molding system, typically an alloy of Magnesium such as AZ91D. Preferably, theseal member 62 is made from low-carbon steel such as AISI 1010. Preferably, themelt conduits soft seal member 62 is deformed to conform with the mating faces 73, 73′ in response to a sealing force applied across theinterface 64. Theseal member 62 may be deformed plastically or elastically. - Alternatively, the foregoing material combination may be reversed wherein the
seal member 62 is made from the harder material and the mating faces 73, 73′ of themelt conduits seal member 62. - Alternatively, for example, the
seal member 62 may also be made from stainless steel, and cobalt alloys. - The description of technical features that are common between the melt conduit of the first exemplary embodiment and the alternatives that follow, identifiable as having similar reference numbers, will not be repeated.
-
FIGS. 3A & 3B depict aseal 160 in accordance with a second embodiment of the invention that is configured between a pair ofmelt conduits exemplary melt conduits melt passageway 148 extending therethrough. Aninterface 164 is defined between annular mating faces 173, 173′ at the ends of themelt conduits interface 164 between the mating faces 173, 173′. The seal member 162 in conforming co-operation with aninterface 64 controls leaking of the molding material at theinterface 164 subject to the molding material approaching an injection pressure. In operation, the seal member 162 is deformed to conform with the mating faces 173, 173′ in response to a sealing force applied across theinterface 164. Theseal 160 further includes acooling structure 180 for a controllable cooling of theinterface 164 that has the technical effect of controlling the viscosity of the molding material in the vicinity of theinterface 164 and thereby controlling the leakage through theinterface 164. Preferably, the cooling ring includes aspigot portion 181 that forms afurther interface 183 in cooperation withspigot portions melt conduits cooling structure 180 may controllably cool theinterfaces interfaces cooling structure 180 is configured in accordance with the teachings of the United States patent publication, US No. 2005/0255189. Thecooling structure 180 is preferably an annular body with acoolant channel 182 defined therein. Thecooling structure 180 also preferably includes atemperature monitoring structure channel 182 may be controlled to effect a temperature control of theinterfaces Fittings 184 are shown for connecting thecooling ring 180 to a coolant source. Alternatively, thecooling structure 180 may operate more simply as a heat radiator, for example to pass heat to a cooled plate of a runner system (such asplate runner system 526 depicted inFIG. 7 ). -
FIGS. 4A & 4B depict aseal 260 in accordance with a third embodiment of the invention that is configured between a pair ofmelt conduits exemplary melt conduits melt passageway 248 extending therethrough. Themelt conduits tapered spigot portions melt conduits interface 264 is defined between tapered peripheral mating faces 273, 273′ of thespigot portions seal member 262, configured as a frusto-conical shaped tubular body, is arranged at theinterface 264 between the mating faces 273, 273′. Theseal member 262 in conforming co-operation with theinterface 264 controls leaking of the molding material at theinterface 264 subject to the molding material approaching an injection pressure. In operation, the relativelysoft seal member 262 is deformed to conform with the mating faces 273, 273′ in response to a sealing force applied across theinterface 264. -
FIG. 5A & 5B depict aseal 360 in accordance with a fourth embodiment of the invention that is configured between a pair ofmelt conduits exemplary melt conduits melt passageway 348 extending therethrough. Themelt conduits spigot portions melt conduits interface 364 is defined between peripheral mating faces 373, 373′ of thespigot portions seal member 362, preferably configured as a tubular body, is arranged at theinterface 364 between the mating faces 373, 373′. Theseal member 362 is to be made of a brazing alloy that is both chemically compatible with the molding material processed in the metal molding system and that has a melting temperature that is selected to be above a processing temperature range of the molding material. Aheating structure 350 is arranged near theinterface 364 for a controlled heating of theseal member 362 to cause theseal member 362 to melt, at least partially, to effect a re-molding of theseal member 362 to conform to theinterface 364. Preferably, there-molded seal 362 adheres to theinterface 364. In operation, the re-molding of theseal member 362 is preferably completed once themelt conduits seal member 362 has been re-molded theheating structure 350 is controlled to reduce the temperature at theinterface 364 to be below the melting temperature of theseal member 362. Theseal member 362 re-molded to be in conforming co-operation with theinterface 364 controls leaking of the molding material at theinterface 364 subject to the molding material approaching an injection pressure. Preferably, the brazing alloy includes a gold alloy. Alternatively, the brazing material may be applied as a paste to theinterface 364 during initial assembly. -
FIGS. 6A & 6B depict aseal 460 in accordance with a fifth embodiment of the invention that is configured between a pair ofmelt conduits exemplary melt conduits melt passageway 448 extending therethrough. Aninterface 464 is defined between annular mating faces 473, 473′ at the ends of themelt conduits mating face 473′ includes a surface of agroove 463 formed through the annular mating face of themelt conduit 470′. Acomposite seal member 462, preferably configured in the shape of a torus body, is arranged at theinterface 464 between the mating faces 473, 473′. Theseal member 462 in conforming co-operation with aninterface 464 controls leaking of the molding material at theinterface 464 subject to the molding material approaching an injection pressure. In operation, theseal member 462 is deformed to conform with the mating faces 473, 473′ in response to a sealing force applied across theinterface 464. Theseal member 462 may be deformed plastically or elastically. Preferably, theseal member 462 is configured as an elastically deformable spring energized seal member, such as AMERISEAL (a trademark of American Seal And Engineering Company, Inc.), which typically include a toroidal shaped casing surrounding a spring element.Such seal members 462 are often made from alloys of nickel such as INCONEL (a trademark of Inco Alloys International, Inc) in which case a coating made from a material that is chemically compatible with the molding material, such as alloys of gold, is preferably disposed around theseal member 462. Alternatively, thecomposite seal member 462 may have, for example, a square, rectangular, oval, or racetrack configuration. -
FIG. 7 depicts aseal 560 in accordance with a sixth embodiment of the invention that is configured between a first andsecond manifold exemplary runner system 526. Theseal 560 is configured in accordance with theseal 60 of the first embodiment of the invention. However, any one of, combination, or permutation of theseals runner system 526. Therunner system 526 is configured to include multiple drops, or gates, to the mold (not shown). Preferably, the first andsecond manifolds manifold plate 564 and abacking plate 562. Themanifolds axial insulators heated manifolds cool plates seal member 562 in conforming co-operation with the interface (not shown) between themanifolds manifolds insulators manifolds runner system 526 to compress themanifolds runner system 526 is also shown to include anozzle drop 573 for connecting thesecond manifolds 572 with the mold cavity, or cavities (not shown). The interface between thesecond manifold 572 and thenozzle drop 573 is preferably configured in accordance with any of theseals - While the foregoing exemplary embodiment of the
runner system 526 is configured to include two vertically oriented drops, other quantities and configurations of drops are possible. For example, therunner system 526 may include only a single drop that is centered with an interface with amolding machine nozzle 44, or alternatively offset therewith. -
FIGS. 8A & 8B depict aseal 660 in accordance with a seventh embodiment of the invention that is configured in abarrel assembly 638. Thebarrel assembly 638 includes abarrel head 642 that is positioned intermediate amachine nozzle 644 and a front end of abarrel 640. Amelt passageway 648 extends through the components of thebarrel assembly 638. Themelt passageway 648 of thebarrel 640 is disposed along aliner 646 made from a corrosion resistant material, such as STELLITE (a trademark of Deloro Stellite, Inc.) to protect the barrel substrate material, commonly made from a nickel-based alloy such as INCONEL, from the corrosive properties of the molding material. The components of thebarrel assembly 638 are shown to be held together, at least in part, through the use offasteners 51. Thebarrel 640,barrel head 642, and themachine nozzle 644 each include aheating structure 50 for controlling the molding material in themelt passageway 648 at a processing temperature. Theexemplary barrel assembly 638 further includes anauxiliary member 641 arranged to overlap flange portions of thebarrel head 642 andbarrel liner 646 to provide alignment therebetween. - More particularly, the
seal 660 is arranged at aninterface 664 between theliner 646 of thebarrel 640 and thebarrel head 642. Theseal 660 is configured similarly to theseal 460 of the fifth embodiment of the invention. However, any one of, combination, or permutation of theseals barrel assembly 638. Accordingly, theinterface 664 is defined between annular mating faces 473, 473′ provided at the end of thebarrel liner 646 and a surface of agroove 663 formed on the rear of thebarrel head 642. Acomposite seal member 662, preferably configured in the shape of a torus body, is arranged at theinterface 664 between the mating faces 673, 673′. Theseal member 662 in conforming co-operation with aninterface 664 controls leaking of the molding material at theinterface 664 subject to the molding material approaching an injection pressure. In operation, theseal member 662 is deformed to conform with the mating faces 673, 673′ in response to a sealing force applied across theinterface 664. The sealing force is preferably generated by the tightening of thefasteners 51 that bolt thebarrel head 642 to thebarrel 640. -
FIGS. 9A & 9B depict aseal 760 in accordance with an eighth embodiment of the invention that is configured in abarrel assembly 738. Similar to thebarrel assembly 638 of the seventh embodiment, thebarrel assembly 738 includes abarrel head 742 that is positioned intermediate amachine nozzle 744 and a front end of abarrel 740. Amelt passageway 748 extends through the components of thebarrel assembly 738. Themelt passageway 748 of thebarrel 740 is disposed along aliner 746. An auxiliary device (not shown), such as dowels, may be used to align thebarrel head 742 with thebarrel 740 in place of theauxiliary member 641 of the foregoing embodiment. - More particularly, the
seal 760 is configured similarly to theseal 60 of the first embodiment of the invention. However, any one of, combination, or permutation of theseals barrel assembly 738. Accordingly, aseal member 762, configured as an annular body, is arranged at theinterface 764 between the mating faces 773, 773′. Theseal member 762 in conforming co-operation with aninterface 764 controls leaking of the molding material at theinterface 764 subject to the molding material approaching an injection pressure. In operation, theseal member 762 is deformed to conform with the mating faces 773, 773′ in response to a sealing force applied across theinterface 764. The sealing force is preferably generated by the tightening of thefasteners 51 that bolt thebarrel head 742 to thebarrel 740. -
FIG. 10A & 10B depict aseal 860 in accordance with a ninth embodiment of the invention that is configured in abarrel assembly 838. Similar to thebarrel assembly 638 of the seventh embodiment, thebarrel assembly 838 includes abarrel head 842 that is positioned intermediate amachine nozzle 844 and a front end of abarrel 840. Amelt passageway 848 extends through the components of thebarrel assembly 838. Themelt passageway 848 of thebarrel 840 is disposed along aliner 846. Theexemplary barrel assembly 838 further includes acooling structure 880 that is arranged to overlap flange portions of thebarrel head 842 andbarrel liner 846 to provide alignment therebetween and to cool aninterface 864 formed between thebarrel head 842 and thebarrel liner 846. Thecooling structure 880 is preferably an annular body with acoolant channel 882 defined therein. Thecooling structure 880 also preferably includes a temperature monitoring structure (not shown) to provide temperature feedback to a controller (not shown) in order that a flow and temperature of the coolant to thechannel 882 may be controlled to effect a temperature control of theinterface 864. Theexemplary barrel assembly 838 further includes anauxiliary member 841 that surrounds thecooling structure 880 as a structural spacer. - More particularly, the
seal 860 is configured similarly to theseal 160 of the second embodiment of the invention. However, any one of, combination, or permutation of theseals barrel assembly 838. Accordingly, aseal member 862, configured as an annular body, is arranged at theinterface 864 between the mating faces 873, 873′. Theseal member 862 in conforming co-operation with aninterface 864 controls leaking of the molding material at theinterface 864 subject to the molding material approaching an injection pressure. In operation, theseal member 862 is deformed to conform with the mating faces 873, 873′ in response to a sealing force applied across theinterface 864. The sealing force is preferably generated by the tightening of thefasteners 51 that bolt thebarrel head 842 to thebarrel 840. Thecooling structure 880 provides for a controllable cooling of theinterface 864 that has the technical effect of controlling the viscosity of the molding material in the vicinity of theinterface 864 and thereby controlling the leakage through theinterface 864. Alternatively, thecooling structure 880 may controllably cool theinterfaces interfaces - In accordance with another embodiment of the barrel assembly (not shown) the barrel assembly may include a multi-component barrel, for example having a first and second barrel portions. The
seals -
FIGS. 11A & 11B depict aseal 960 in accordance with a tenth embodiment of the invention that is configured between amachine nozzle 944 and amold sprue bushing 970. Theseal 960 is configured similarly to theseal 60 of the first embodiment of the invention. However, any one of, combination, or permutation of theseals machine nozzle 944 and thesprue bushing 970. Preferably, themachine nozzle 944 and themold sprue 970 form a spigot connection along interposedspigot portions interface 964 is defined between annular mating faces 973, 973′ of thespigot portions seal member 962, configured as an annular body, is arranged at theinterface 964 between the mating faces 973, 973′. Theseal member 962 in conforming co-operation with theinterface 964 controls leaking of the molding material at theinterface 964 subject to the molding material approaching an injection pressure. In operation, one of theseal member 962 and the mating faces 973, 973′ are deformed to conform with the other in response to a sealing force applied across theinterface 964. The sealing force is typically provided by a carriage force applied along the barrel assembly (not shown) that maintains themachine nozzle 944 engaged in thesprue bushing 970. - Alternatively, the
seal - The description of the exemplary embodiments provides examples of the present invention, and these examples do not limit the scope of the present invention. It is understood that the scope of the present invention is limited by the claims. The concepts described above may be adapted for specific conditions and/or functions, and may be further extended to a variety of other applications that are within the scope of the present invention. Having thus described the exemplary embodiments, it will be apparent that modifications and enhancements are possible without departing from the concepts as described. Therefore, what is to be protected by way of letters patent are limited only by the scope of the following claims:
Claims (105)
Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US11/502,942 US20080035297A1 (en) | 2006-08-11 | 2006-08-11 | Seal of a metal molding system |
PCT/CA2007/001213 WO2008017138A1 (en) | 2006-08-11 | 2007-07-11 | Seal of a metal molding system |
TW096127627A TW200823040A (en) | 2006-08-11 | 2007-07-27 | Seal of a metal molding system |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US11/502,942 US20080035297A1 (en) | 2006-08-11 | 2006-08-11 | Seal of a metal molding system |
Publications (1)
Publication Number | Publication Date |
---|---|
US20080035297A1 true US20080035297A1 (en) | 2008-02-14 |
Family
ID=39032566
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US11/502,942 Abandoned US20080035297A1 (en) | 2006-08-11 | 2006-08-11 | Seal of a metal molding system |
Country Status (3)
Country | Link |
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US (1) | US20080035297A1 (en) |
TW (1) | TW200823040A (en) |
WO (1) | WO2008017138A1 (en) |
Cited By (2)
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---|---|---|---|---|
US20100278962A1 (en) * | 2009-05-03 | 2010-11-04 | Hitesh Kaushal | Injection Molding Runner Apparatus Having Pressure Seal |
CN119159001A (en) * | 2024-11-18 | 2024-12-20 | 四川泛华航空仪表电器有限公司 | Nozzle closing assembly device and method |
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US5040589A (en) * | 1989-02-10 | 1991-08-20 | The Dow Chemical Company | Method and apparatus for the injection molding of metal alloys |
US5163721A (en) * | 1990-10-24 | 1992-11-17 | Cajon Company | Fluid coupling with gasket retainer having interlocking portions |
US5333919A (en) * | 1993-09-02 | 1994-08-02 | Ron Nerenberg | Gasket for a pipe joint |
US6357511B1 (en) * | 2000-10-26 | 2002-03-19 | Husky Injection Molding Systems, Ltd. | Injection nozzle for a metallic material injection-molding machine |
US6494703B2 (en) * | 2001-02-23 | 2002-12-17 | Husky Injection Molding Systems, Ltd. | Barrel assembly |
US6942006B2 (en) * | 1998-03-31 | 2005-09-13 | Takata Corporation | Injection molding method and apparatus with reduced piston leakage |
US20050255189A1 (en) * | 2004-05-17 | 2005-11-17 | Manda Jan M | Method and apparatus for coupling melt conduits in a molding system and/or a runner system |
US20060087050A1 (en) * | 2003-03-06 | 2006-04-27 | Manda Jan M | Sprue apparatus |
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FR2295808A1 (en) * | 1974-12-24 | 1976-07-23 | Pont A Mousson | LOW PRESSURE CASTING PROCESS AND PLANT IN SAND MOLD |
-
2006
- 2006-08-11 US US11/502,942 patent/US20080035297A1/en not_active Abandoned
-
2007
- 2007-07-11 WO PCT/CA2007/001213 patent/WO2008017138A1/en active Application Filing
- 2007-07-27 TW TW096127627A patent/TW200823040A/en unknown
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US5040589A (en) * | 1989-02-10 | 1991-08-20 | The Dow Chemical Company | Method and apparatus for the injection molding of metal alloys |
US5163721A (en) * | 1990-10-24 | 1992-11-17 | Cajon Company | Fluid coupling with gasket retainer having interlocking portions |
US5333919A (en) * | 1993-09-02 | 1994-08-02 | Ron Nerenberg | Gasket for a pipe joint |
US6942006B2 (en) * | 1998-03-31 | 2005-09-13 | Takata Corporation | Injection molding method and apparatus with reduced piston leakage |
US6357511B1 (en) * | 2000-10-26 | 2002-03-19 | Husky Injection Molding Systems, Ltd. | Injection nozzle for a metallic material injection-molding machine |
US6494703B2 (en) * | 2001-02-23 | 2002-12-17 | Husky Injection Molding Systems, Ltd. | Barrel assembly |
US20060087050A1 (en) * | 2003-03-06 | 2006-04-27 | Manda Jan M | Sprue apparatus |
US20050255189A1 (en) * | 2004-05-17 | 2005-11-17 | Manda Jan M | Method and apparatus for coupling melt conduits in a molding system and/or a runner system |
Cited By (3)
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US20100278962A1 (en) * | 2009-05-03 | 2010-11-04 | Hitesh Kaushal | Injection Molding Runner Apparatus Having Pressure Seal |
US7874833B2 (en) | 2009-05-03 | 2011-01-25 | Mold-Masters (2007) Limited | Injection molding runner apparatus having pressure seal |
CN119159001A (en) * | 2024-11-18 | 2024-12-20 | 四川泛华航空仪表电器有限公司 | Nozzle closing assembly device and method |
Also Published As
Publication number | Publication date |
---|---|
WO2008017138A1 (en) | 2008-02-14 |
TW200823040A (en) | 2008-06-01 |
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Owner name: HUSKY INJECTION MOLDING SYSTEMS LTD., CANADA Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:DIACONU, VALENTIN;DZAFIC, SVEMIR;WIECZOREK, WALDEMAR JANUSZ;REEL/FRAME:018200/0891 Effective date: 20060728 |
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