Method and apparatus for cooling electronics with a coolant at a subambient pressure

Abstract
According to one embodiment of the invention, a method is provided for cooling heat-generating structure disposed in an environment having an ambient pressure. The heat-generating structure includes electronics. The method includes providing a coolant, reducing a pressure of the coolant to a subambient pressure at which the coolant has a boiling temperature less than a temperature of the heat-generating structure, and bringing the heat-generating structure and the coolant at the subambient pressure into contact with one another, so that the coolant boils and vaporizes to thereby absorb heat from the heat-generating structure. In a more particular embodiment the coolant is either pure water or pure methanol with an electrical resistivity level of greater than one million Ohms-cm. Further, in another particular embodiment the method includes filtering the coolant to maintain its purity above a particular level.
Description
TECHNICAL FIELD OF THE INVENTION

This invention relates in general to cooling techniques and, more particularly, to a method and apparatus for cooling electronics with a coolant at a subambient pressure.


BACKGROUND OF THE INVENTION

Some types of electronic circuits use relatively little power, and produce little heat. Circuits of this type can usually be cooled satisfactorily through a passive approach, such as convection cooling. In contrast, there are other circuits which consume large amounts of power, and produce large amounts of heat. One example is the circuitry used in a phased array antenna system. Others include other types of electronics, such as densely packed electronics used for current and future computational circuits, which can produce 1000-10,000 watts of heat per cubic centimeter, or more.


In the modern phased array antenna example, the system can easily produce 25 to 500 kilowatts of heat, or even more. Future computers are envisioned to produce equally large amounts of heat. One known approach for cooling this circuitry is to incorporate a refrigeration unit into the electronics cooling. However, suitable refrigeration units are large, heavy, and consume many kilowatts of power in order to provide adequate cooling. Although refrigeration units of this type have been generally adequate for their intended purposes, they have not been satisfactory in all respects. An equally important factor is the inability of existing methods to remove high flux heat loads from electronic components and modules. Existing approaches, which use a coolant flowing inside a coldplate or thermal plane to which electrical components and modules are mounted, have inadequate heat transfer performance to meet future needs. In addition, approaches using two-phase, sprayed fluorinerts are not satisfactory in all respects.


SUMMARY OF THE INVENTION

According to one embodiment of the invention, a method is provided for cooling heat-generating structure disposed in an environment having an ambient pressure. The heat-generating structure includes electronics. The method includes providing a coolant, reducing a pressure of the coolant to a subambient pressure at which the coolant has a boiling temperature less than a temperature of the heat-generating structure, and bringing the heat-generating structure and the coolant at the subambient pressure into contact with one another, so that the coolant boils and vaporizes to thereby absorb heat from the heat-generating structure. In a more particular embodiment the coolant is either pure water or pure methanol with an electrical resistivity level of greater than one million Ohms-cm. Further, in another particular embodiment the method includes filtering the coolant to maintain its purity above a particular level.


Some embodiments of the invention may provide numerous technical advantages. Other embodiments may realize some, none, or all of these advantages. For example, according to one embodiment, large amounts of heat may be removed from a heat-generating structure, allowing, for example, more densely-packed electronics to be utilized.


Other advantages may be readily ascertainable by those skilled in the art.





BRIEF DESCRIPTION OF THE DRAWINGS

A more complete understanding of embodiments of the invention will be apparent from the detailed description taken in conjunction with the accompanying drawings in which:



FIG. 1A is a block diagram of an apparatus which includes a heat-generating structure and an associated cooling arrangement that embodies aspects of the present invention;



FIG. 1B is a side view of one example of the chamber and heat producing structure of the system of FIG. 1A;



FIG. 2 is a schematic diagram of one embodiment of the heat-generating structure of FIG. 1;



FIG. 3A is a schematic diagram of a flow-through module that includes an array of the circuit substrates of FIGS. 3B through 3D that may be cooled according to the method of FIG. 1A;



FIGS. 3B through 3C are schematic diagrams showing various views of a circuit substrate that may be cooled according to the method of FIG. 1A;



FIG. 4A is a schematic diagram of a frame for holding an array of modules of FIG. 3D; and



FIG. 4B is an assembly combining the frame of FIG. 4A and an array of modules of FIG. 3D that may be cooled according to the method of FIG. 1A.





DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS OF THE INVENTION

Example embodiments of the present invention and their advantages are best understood by referring to FIGS. 1A-4B of the drawings, like numerals being used for like and corresponding parts of the various drawings.



FIG. 1A is a block diagram of an apparatus 10 that includes a heat-generating structure 12. The heat-generating structure 12 may be, in a particular embodiment, one or more microelectronic assemblies, which may produce an enormous amount of heat that is difficult to cool using conventional techniques. Alternatively, heat-generating structures may include no electronics and/or may not produce excessive amounts of heat. In general, although the teachings of the invention may provide greater benefit to cooling microelectronics that produce excessive amounts of heat, these teachings are applicable to cooling any type of device at high or lower levels of heat-generation. According to the teachings of one embodiment of the invention, heat-generating structure 12 is submerged within a bath of coolant 16 within a chamber 14 and/or subject to a flow of coolant 16 with coolant 16 being at a subambient pressure. One example is illustrated in FIG. 1B. The bath may be a generally stationary bath or, alternatively, the bath may further utilize flowing coolant 16 to further enhance heat transfer from heat-generating structure 12 to coolant 16. Alternatively, the bath may be replaced with simply a flow of coolant over heat-generating structure 12.


Coolant 16 may be any liquid with suitable resistivity and latent heat of vaporization properties. In the environment in which microelectronics is used within heat-generating structure 12, the resistivity of coolant 16 should be high enough such that coolant 16 does not form a short in the microelectronics. Further, where large heat loads need to be disposed of, liquids with relatively high latent heats of vaporization are more desirable. Both pure water and methanol meet these criteria when high heat load microelectronics are used as part of heat-generating structure 12.


Pure water has a very high electrical resistivity of approximately 18.2 million Ohms-cm and pure methanol has a high electrical resistivity of approximately 40 million Ohms-cm. Consequently, such pure water or pure methanol would not cause electrical shorts in heat-generating structure 12 in the associated electrical signals or power leads. Use of pure water as coolant 16 is particularly desirable because of its relatively high latent heat of vaporization, which is about 24 times that of fluroinerts. Methanol also has a fairly high latent heat vaporization, about half of that of water. However, although pure water and methanol are particularly desirable coolants, other coolants may also be used.


System 10 is designed such that coolant 16 boils when it comes into contact with heat-generating structure 12. In particular, system 10 involves reducing the pressure of coolant 16 to subambient levels such that it boils at a desired temperature lower than the temperature at which the coolant 16 would otherwise boil. Thus system 10 may be referred to as a subambient cooling system. Subambient cooling systems suitable for use with the present disclosure include those described in the following patent applications assigned to the same assignee as the present invention: Method and Apparatus for Cooling with Coolant at a Subambient Pressure, filed Jul. 11, 2002, having a Ser. No. 10/192,891; and Method and Apparatus for Controlling Cooling with Coolant at a Subambient Pressure, filed May 25, 2004, having a Ser. No. 10/853,038, which are both incorporated herein by reference for all purposes.


Providing coolant 16 at subambient levels permits the use of pure water and methanol as coolants, which are typically not useful in certain applications because of their relatively high boiling temperatures. Thus, the teachings of the invention recognize the desirability of combining boiling heat transfer at a subambient pressure, which is generally the best heat removal mechanism to extract heat from a surface, with direct application of the coolant to the heat-generating structure, such as by submerging or flowing the coolant over the structure. When used with electronic components as part of heat-generating structure 12, submersion of heat-generating structure 12, or sufficient flow of coolant 16 over heat-generating structure 12, allows heat to be removed from active and passive component surfaces and features, as well as removing heat from component leads. Additional details of system 10 are described below with reference to FIGS. 1A-4B.


Heat-generating structure 12 is configured so that the heat it generates is transferred to coolant 16 coming into contact with heat-generating structure 16. Coolant 16 flows through a tube 22. As discussed later, this fluid coolant is a two-phase coolant 16, which comes into contact with heat-generating structure 12 in liquid form. Absorption of heat from heat-generating structure 12 causes part or all of the liquid coolant 16 to boil and vaporize, such that some or all of the coolant 16 flowing through a tube 24 is in its vapor phase. This departing coolant 16 then flows successively through a separator 26, a heat exchanger 28, a pump 30, a metering pump 31, and a filtration bed 34 in order to again reach the inlet end of tube 22. As illustrated, only a portion of coolant 16 flows through metering pump 31 and filtration bed 34.


Pump 30 causes coolant 16 to circulate around the endless loop shown in FIG. 1. In the embodiment of FIG. 1, the pump 30 consumes only about 0.1 kilowatts to 2.0 kilowatts of power.


Separator 26 separates the vaporized portion of the liquid coolant 16 flowing through tube 24 from the unvaporized liquid portion. The vaporized portion is provided to heat exchanger 28, and the liquid portion is provided at separator pump 36. Separator pump 36 receives the liquid portion of the coolant that has not vaporized in tube 24 and circulates this fluid back through tube 22. Orifice 32 creates a pressure drop between throughput of pump 30 and the output of 32, where coolant 16 vaporizes.


As described above, the teachings of the invention recognize that in some instances it will be desirable to purify coolant 16 while it flows in the above-described loop to maintain its resistivity above a desired level. This is particularly true when coolant 16 is pure water and heat-generating structure 16 comprises electronic components. The particular desired level of resistivity will vary based on the structure and content of heat-generating structure 16, but in one example, maintaining the resistivity of coolant 16 above one million Ohms-cm is particularly desirable for avoiding electrical shorts. Filtration bed 34 is used to remove contaminants from coolant 16 such as salts, metallic constituents, or other contaminants that are generated or that enter the loop during operation, to ensure it has a resistivity sufficiently high enough during operation that it does not cause electrical shorts in heat-generating structure 12. Filtration bed 34 may remove carbon dioxide, free oxygen and metallics, and may utilize a distillation, reverse osmosis, or other suitable process. Only about 5-10% of the coolant flow would need to be processed, in one embodiment, which is provided by metering pump 31. Other purification methods may also be used.


Ambient air or liquid 38 is caused to flow through heat exchanger 28, for example, by a not-illustrated fan of a known type. Alternatively, if the apparatus 10 was on a ship, the flow 38 could be ambient seawater or a distilled water secondary loop that transfers heat to seawater. The heat exchanger 28 transfers heat from the coolant to the air flow 38. The heat exchanger 28 thus cools the coolant, thereby causing any portion of the coolant which is in the vapor phase to condense back into its liquid phase.


Liquid coolant 16 exiting heat exchanger 28 is supplied to expansion reservoir 40. Since fluids typically take up more volume in their vapor phase than in their liquid phase, expansion reservoir 40 is provided in order to take up the volume of liquid coolant that is displaced when some or all of the coolant in the system changes from its liquid phase to its vapor phase. The amount of coolant 16 that is in its vapor phase can vary over time, due in part to the fact that the amount of heat being produced by heat-generating structure 16 will vary over time, as the heat-generating structure 16 may operate in various operational modes over time, in some embodiments.


In some embodiments, a controller may be utilized to control the amount of heat transfer from heat-generating structure 16, one example of which is desired in Method and Apparatus for Controlling Cooling with Coolant at a Subambient Pressure, filed May 25, 2004, having a Ser. No. 10/853,038, which is incorporated herein by reference. However, other control approaches may be used. In one particular embodiment, a pressure controller 42 maintains coolant 16 at a desired subambient pressure in portions of the cooling loop downstream of filtration bed 34 and upstream of pump 30. Typically, the ambient air pressure will be that of atmospheric air, which at sea level is 14.7 pounds per square inch absolute (psia). When heat-generating structure 12 undergoes transient heat loads, this subambient pressure may need to be adjusted to allow greater or lesser amounts of heat transfer from heat-generating structure 12 at a desired temperature. Heat-generating structure 12 is maintained at a desired temperature by feeding back the pressure of the coolant as it exits tube 22. This pressure is indicative of the temperature of the boiling coolant. In response, pressure controller 42 may respond by raising or lowering the pressure of coolant 16, which affects the boiling temperature of the coolant. By feeding back the coolant pressure, as opposed to the temperature of heat-generating structure 12, associated thermal delay is eliminated from the control loop, permitting direct control of pressure without taking into account the thermal delay.


In one example, the coolant used is pure water. Pure water has a very high latent heat of vaporization thus it absorbs a substantial amount of heat as it vaporizes. However, water boils at a temperature of 100° C. at atmospheric pressure of 14.7 psia. In order to provide suitable cooling for an electronic apparatus, coolant 16 needs to boil at a temperature in the range of approximately 50-65° C. When water is subjected to a subambient pressure of about 3 psia, its boiling temperature decreases to approximately 60° C. Thus, in the embodiment of FIG. 1A, the orifice 32 permits the coolant pressure downstream from it to be less than the coolant pressure between the pump 30 and the orifice 32.


In one example, pure water flowing from the pump 30 to the orifice 32 and 34 has a temperature of approximately 60° C. to 65° C., and a pressure in the range of approximately 15 psia to 100 psia. After passing through the orifice 32 and 34, the water will still have a temperature of approximately 60° C. to 65° C., but will have a much lower pressure, in the range about 2 psia to 4 psia. Due to this reduced pressure, some or all of the water will boil as it passes through and absorbs heat from the heat-generating structure 12, and some or all of the water will thus vaporize. After exiting through tube 24, the water vapor (and any remaining liquid water) will still have the reduced pressure of about 2 psia to 4 psia.


When this subambient water vapor reaches the heat exchanger 28, heat will be transferred from the vapor to the forced air flow 38. The air flow 38 has a temperature less than a specified maximum of 55° C., and typically has an ambient temperature below 40° C. As heat is removed from the vapor, any portion of the water which is in its vapor phase will condense, such that all of the coolant water will be in liquid form when it exits the heat exchanger 28. This liquid will have a temperature of approximately 60° C. to 65° C., and will still be at the subambient pressure of approximately 2 psia to 4 psia. This liquid coolant will then flow to the pump 30 with a tee connection prior to the expansion reservoir 40. The pump 30 will have the effect of increasing the pressure of the coolant water, to a value in the range of approximately 15 psia to 100 psia, as mentioned earlier.


It will be noted that the embodiment of FIG. 1A may operate without any refrigeration system. In the context of high-power electronic circuitry, the absence of a refrigeration system can result in a very significant reduction in the size, weight, and power consumption of the structure provided to cool the electronics system.



FIG. 2 is a schematic diagram illustrating one example of heat-generating structure 12 that is particularly suited to cooling according to the method described in FIG. 1A. It is emphasized, however, that this is merely one example. Heat-generating structure 52 includes, in this example, a plurality of electronic modules 54 thermally coupled to a mesh 60. Mesh 60 helps transfer heat from electronic modules 54 to coolant 16 and, in some embodiments, may also provide structural support for electronic modules 54. Mesh 60 is porous such that coolant 16 may flow through mesh 16, whether heat-generating structure 52 is submerged in coolant 16 or coolant 16 flows over and through heat-generating structure 52 through mesh 60.


In this example, electronic modules 54 include electronic device 62, having associated electronic components and an interconnect component 64. Interconnect component 64 provides for electrical connection to other devices. Interconnect component 64 may include a plurality of bumps 66, which not only provide for electrical connections but also may act as pin fins, providing increased heat transfer due to the associated increased surface area contact with coolant 16. Heat-generating structure 52 may also be formed with a plurality of interconnect lines 68 electrically connecting electronic modules 54 to each other or to other devices.


In operation, heat-generating structure 52 is either submerged in coolant 16, as illustrated in FIG. 1B, or coolant 16 may be flowed over heat-generating structure 52. In either case, coolant 16 comes into contact with electronic modules 54 and mesh 60, and in response, receives heat and begins to boil, transferring heat from heat-generating structure 52 to coolant 16. Mesh 60 assists with this heat transfer, in this example, by increasing contact area with coolant 16 and conducting heat away from electronic modules 54 to coolant 16. Yet, because mesh 60 is porous, coolant 16 may flow through the mesh and allow heat-generating structure 52 to be submerged in coolant 16. It is noted that even if submerged, coolant 16 may nevertheless flow over and through heat-generating structure 52 to further increase heat transfer.



FIG. 3A illustrates a flow through module 100 that may form a part of an alternative embodiment of heat-generating structure 12. Module 100 includes a plurality of components best illustrated in FIG. 3B through 3D. FIG. 3B is a side view, FIG. 3C is a top view, and FIG. 3D is a bottom view of a circuit substrate 102 according to the teachings of the invention. FIG. 3A is taken along the direction of lines 3A-3A of FIG. 3C, but for an array of circuit substrates 102. Circuit substrate 102 includes a plurality of electronic devices 104 formed on a substrate 106. Coupled to substrate 106 are a plurality of micro pin fins 108, best illustrated in FIG. 3D. Interconnects 107 are disposed on top of substrate 106 for providing electrical connection to electronic devices 104. In one embodiment, substrate 106 is highly thermally conductive to enhance heat transfer.


Each one of circuit substrates 102 is shown positioned in an array configuration to form module 100, illustrated in FIG. 3A. Disposed between adjacent circuit substrates 102 are void spaces 110. Void spaces 110 provide a space for coolant 16 to flow or to otherwise come into contact with circuit substrates 102. A plurality of interconnect stringers 112 may separate adjacent circuit and associated substrates 102. Interconnect stringers 112 may provide suitable electrical connections, as well as structured support for circuit substrates 102, as well as thermal coupling to coolant 16 within void regions 110. Further, blank or dummy substrates may be utilized to route signals or power from one interconnect stringer 112 to another, in addition to that routed on the edges of the module 100.


In operation, coolant may flow through, or be maintained within, void regions 110, within the context of system 10, or other suitable cooling system, allowing heat transfer from circuit and associated substrate 102 to the coolant. In the illustrated embodiment, flow is into or out of the page of FIG. 3A. Micro pin fins 108 further enhance heat transfer by increasing surface area contact with the coolant. Other forms of enhancements such as fins, dimples, or microchannels can be used. Such a system may allow direct contact between the coolant and any heat generating electronics, resulting in efficient boiling heat transfer. In some embodiments, circuit substrate 102 may be encapsulated, or alternatively, electronic components within may be directly exposed to the coolant, allowing for even greater heat transfer.



FIG. 4A is a schematic diagram of a frame 120 having a frame structure 122 formed with a plurality of frame voids 124. In one embodiment, a single module 100 may be disposed in each frame void 124. Frame structure 122 may be formed with a plurality of interconnects 126, allowing electrical connection of portions of module 100 to other modules 100 or to other devices. A completed array of module 100 disposed within frame 120 is illustrated in FIG. 4B as assembly 128.


As described above with module 100, the entire assembly 128 may be submerged in coolant 16, or coolant 16 may otherwise flow through the voids within assembly 128 to provide heat transfer. It is noted that modules 100 and/or assembly 128 may have a significant depth (into the page) in some embodiments, allowing for cooling of more components. Alternatively, modules 100 and/or assembly 128 may be substantially two-dimensional.


A heat-generating structure 12 may comprise a plurality of assemblies 128 that are interconnected through a signal and power bus or a motherboard, which may include fiber optics. In one embodiment, all assemblies 128 are mounted horizontally with a forced flow of coolant 16 upward through a stack of multiple assemblies. In this case, the individual substrates are vertical, which allows the upward flowing of coolant along their lengths. In another embodiment, a water injection manifold associated with each assembly may be used to force water through each flow through module 100 mounted on frame 120.


Although the present invention has been described in detail, it should be understood that various changes, alterations, substitutions, and modifications can be made to the teachings disclosed herein without departing from the spirit and scope of the present invention which is solely defined by the appended claims.

Claims
  • 1. A method for cooling electronics disposed in an environment having an ambient pressure, the method comprising: providing a coolant comprising one of pure water or pure methanol;bringing the electronics into direct contact with the coolant, so that the coolant boils and vaporizes to thereby absorb heat from the electronics;purifying the coolant while at a subambient pressure in order to maintain the purity of the coolant at a level so the coolant has an electrical resistivity greater than one million Ohms-cm; andwherein purifying the coolant while at the subambient pressure in order to maintain the purity of the coolant at the level so the coolant has the electrical resistivity greater than one million Ohms-cm comprises purifying the coolant, using a filtration bed, while at the subambient pressure in order to maintain the purity of the coolant at the level so the coolant has the electrical resistivity greater than one million Ohms-cm.
  • 2. The method of claim 1, further comprising: reducing a pressure of the coolant to the subambient pressure at which the coolant has a boiling temperature less than a temperature of the electronics.
  • 3. The method of claim 2, further comprising: circulating the coolant through a flow loop while maintaining the pressure of the pure water within a range having an upper bound less than the ambient pressure.
  • 4. The method of claim 2, further comprising: flowing the coolant over the electronics.
  • 5. The method of claim 3, further comprising: configuring the loop to include a heat exchanger for removing heat from the pure water so as to condense the pure water to a liquid.
  • 6. The method of claim 5, further comprising causing the heat exchanger to transfer heat from the coolant to a further medium having an ambient temperature that is less than the boiling temperature of the coolant at the subambient pressure.
  • 7. The method of claim 3, further comprising configuring the loop to include a pump for circulating the pure water through the loop.
  • 8. The method of claim 1, further comprising: flowing the coolant over the electronics.
  • 9. The method of claim 1, further comprising configuring the electronics to include a plurality of electronic modules and a porous mesh coupled to each electronic module.
  • 10. The method of claim 9, wherein each electronic module is electrically connected to at least one other of the plurality of electronic modules.
  • 11. The method of claim 1, and further comprising configuring the electronics as part of a heat-generating structure that includes: a frame having a plurality of frame voids;a plurality of modules each disposed in respective ones of the frame voids, each module comprising an array of circuit substrates separated by void regions through which coolant may flow, each circuit substrate comprising:a substrate; andat least one electrical circuit disposed on the substrate.
  • 12. The method of claim 11, wherein the heat-generating structure further includes a plurality of pin fins extending from the substrate.
  • 13. An apparatus for cooling electronics disposed in an environment having an ambient pressure, the apparatus comprising: a coolant comprising one of pure water or pure methanol;a pressure reduction system operable to reduce a pressure of the coolant to a subambient pressure at which the coolant has a boiling temperature less than a temperature of the heat-generating structure; andan assembly operable to bring the electronics into direct contact with the coolant such that heat from the electronics causes the coolant to boil and vaporize, so that the coolant absorbs heat from the electronics as the coolant changes state;a purification system operable to maintain the purity of the coolant at a level so the coolant has an electrical resistivity greater than one million Ohms-cm; andwherein the purification system comprises a filtration bed.
  • 14. The apparatus of claim 13, wherein the assembly is further operable to allow the coolant to flow over the submerged electronics.
  • 15. The apparatus of claim 13, further comprising: a heat exchanger for removing heat from the coolant so as to condense the coolant to a liquid.
  • 16. The apparatus of claim 14, and further comprising a pump for circulating the coolant.
  • 17. The apparatus of claim 13, wherein the electronics comprise a plurality of electronic modules and a porous mesh coupled to each electronic module.
  • 18. The apparatus of claim 17, wherein each electronic module is electrically connected to at least one other of the plurality of electronic modules.
  • 19. The apparatus of claim 13, wherein the electronics are part of a heat-generating structure comprising: a frame having a plurality of frame voids;a plurality of modules each disposed in respective ones of the frame voids, each module comprising an array of circuit substrates separated by void regions through which coolant may flow, each circuit substrate comprising:a substrate; andat least one electrical circuit disposed on the substrate.
  • 20. The apparatus of claim 19, further comprising: a plurality of pin fins extending from each substrate.
  • 21. The apparatus of claim 17, and further comprising: a coolant;a pressure reduction system operable to reduce a pressure of the coolant to a pressure at which the coolant has a boiling temperature less than a temperature of the heat-generating structure; anda submerged assembly in which the porous mesh and the plurality of electronic modules connected to the mesh are submerged within the coolant.
  • 22. An apparatus comprising: a coolant comprising one of pure methanol or pure water;a frame having a plurality of frame voids submerged in a bath of the coolant;a plurality of modules each disposed in respective ones of the frame voids, each module comprising an array of circuit substrates separated by void regions through which the coolant may flow in order to directly contact the circuit substrates, each circuit substrate comprising:a substrate;at least one electrical circuit disposed on the substrate; anda filtration bed operable to maintain the purity of the coolant at a level so the coolant has an electrical resistivity greater than one million Ohms-cm.
  • 23. The apparatus of claim 22, wherein the coolant is at a pressure less than 14.7 psia.
US Referenced Citations (139)
Number Name Date Kind
1528619 Alphonse Mar 1925 A
1906422 Roulton May 1933 A
2321964 Zieber Jun 1943 A
2371443 Harold Mar 1945 A
2991978 Jones Jul 1961 A
3131548 Chubb et al. May 1964 A
3174540 Dutton Mar 1965 A
3332435 Anderson et al. Jul 1967 A
3334684 Roush et al. Aug 1967 A
3371298 Narbut Feb 1968 A
3524497 Chu et al. Aug 1970 A
3586101 Chu Jun 1971 A
3609991 Chu et al. Oct 1971 A
3731497 Ewing May 1973 A
3756903 Jones Sep 1973 A
3774677 Antonetti et al. Nov 1973 A
3989102 Jaster et al. Nov 1976 A
4003213 Cox Jan 1977 A
4019098 McCready et al. Apr 1977 A
4072188 Wilson et al. Feb 1978 A
4129180 Larinoff Dec 1978 A
4169356 Kingham Oct 1979 A
4295341 Gale Oct 1981 A
4296455 Leaycraft et al. Oct 1981 A
4301861 Larinoff Nov 1981 A
4312012 Frieser et al. Jan 1982 A
4330033 Okada et al. May 1982 A
4381817 Brigida et al. May 1983 A
4411756 Bennett et al. Oct 1983 A
4495988 Grossman Jan 1985 A
4511376 Coury Apr 1985 A
4585054 Köprunner Apr 1986 A
4619316 Nakayama et al. Oct 1986 A
4638642 Tokuno Jan 1987 A
4691532 Reid et al. Sep 1987 A
4794984 Lin Jan 1989 A
4843837 Ogawa et al. Jul 1989 A
4851856 Altoz Jul 1989 A
4938280 Clark Jul 1990 A
4945980 Umezawa Aug 1990 A
4998181 Haws et al. Mar 1991 A
5021924 Kieda et al. Jun 1991 A
5067560 Carey et al. Nov 1991 A
5086829 Asakawa Feb 1992 A
5128689 Wong et al. Jul 1992 A
5148859 Beamer Sep 1992 A
5158136 Azar Oct 1992 A
5161610 Leidinger Nov 1992 A
5168919 Berenholz et al. Dec 1992 A
5181395 Carpenter et al. Jan 1993 A
5183104 Novotny Feb 1993 A
5239443 Fahey et al. Aug 1993 A
5245839 Chang et al. Sep 1993 A
5261246 Blackmon et al. Nov 1993 A
5297621 Taraci et al. Mar 1994 A
5333677 Mclivadas Aug 1994 A
5353865 Adiutori et al. Oct 1994 A
5398519 Weber et al. Mar 1995 A
5406807 Ashiwake et al. Apr 1995 A
5447189 McIntyre Sep 1995 A
5464325 Albring et al. Nov 1995 A
5493305 Wooldridge et al. Feb 1996 A
5497631 Lorentzen et al. Mar 1996 A
5501082 Tachibana et al. Mar 1996 A
5509468 Lopez Apr 1996 A
5515690 Blackmon et al. May 1996 A
5522452 Mizuno et al. Jun 1996 A
5605054 Chen Feb 1997 A
5655600 Dewar et al. Aug 1997 A
5666269 Romero et al. Sep 1997 A
5701751 Flores Dec 1997 A
5726495 Aihara et al. Mar 1998 A
5761037 Anderson et al. Jun 1998 A
5815370 Sutton Sep 1998 A
5818692 Denney, Jr. et al. Oct 1998 A
5829514 Smith et al. Nov 1998 A
5841564 McDunn et al. Nov 1998 A
5862675 Scaringe et al. Jan 1999 A
5910160 Caakmakci et al. Jun 1999 A
5940270 Puckett Aug 1999 A
5943211 Havey et al. Aug 1999 A
5950717 Fay Sep 1999 A
5960861 Price et al. Oct 1999 A
6018192 Root et al. Jan 2000 A
6038873 Koo Mar 2000 A
6052284 Suga et al. Apr 2000 A
6052285 Hileman Apr 2000 A
6055154 Azar Apr 2000 A
6173758 Ward et al. Jan 2001 B1
6205803 Scaringe Mar 2001 B1
6292364 Fitzgerald et al. Sep 2001 B1
6297775 Haws et al. Oct 2001 B1
6305463 Salmonson Oct 2001 B1
6347531 Roberts et al. Feb 2002 B1
6349760 Budelman Feb 2002 B1
6366462 Chu et al. Apr 2002 B1
6397932 Calaman et al. Jun 2002 B1
6415619 Bash Jul 2002 B1
6489582 Roedl et al. Dec 2002 B1
6498725 Cole et al. Dec 2002 B2
6519148 Nakagawa et al. Feb 2003 B2
6519955 Marsala Feb 2003 B2
6529377 Nelson et al. Mar 2003 B1
6536516 Davies et al. Mar 2003 B2
6571569 Rini et al. Jun 2003 B1
6594479 Ammar et al. Jul 2003 B2
6603662 Ganrot Aug 2003 B1
6625023 Morrow et al. Sep 2003 B1
6679081 Marsala Jan 2004 B2
6687122 Monfarad Feb 2004 B2
6708511 Martin Mar 2004 B2
6708515 Malone et al. Mar 2004 B2
6729383 Cannell et al. May 2004 B1
6744136 Dubhashi Jun 2004 B2
6827135 Kramer et al. Dec 2004 B1
6828675 Memory et al. Dec 2004 B2
6931834 Jones Aug 2005 B2
6952345 Weber et al. Oct 2005 B2
6952346 Tilton et al. Oct 2005 B2
6957550 Wyatt et al. Oct 2005 B2
6976527 Kirshberg et al. Dec 2005 B2
6993926 Rini et al. Feb 2006 B2
7000691 Weber Feb 2006 B1
7017358 Wayburn et al. Mar 2006 B2
7110260 Weber et al. Sep 2006 B2
7227753 Weber et al. Jun 2007 B2
7240494 Akei et al. Jul 2007 B2
7246658 Wyatt et al. Jul 2007 B2
7254957 Weber et al. Aug 2007 B2
7414843 Joshi et al. Aug 2008 B2
7607475 Weber Oct 2009 B2
20020124585 Bash et al. Sep 2002 A1
20030042003 Novotny et al. Mar 2003 A1
20030053298 Yamada et al. Mar 2003 A1
20030062149 Goodson et al. Apr 2003 A1
20040231351 Wyatt Nov 2004 A1
20060021736 Tran Feb 2006 A1
20080158817 Tsunoda et al. Jul 2008 A1
20080291629 Ali Nov 2008 A1
Foreign Referenced Citations (14)
Number Date Country
1220952 Mar 1968 DE
0 243 239 Apr 1987 EP
02 51 836 May 1987 EP
0 817 263 Oct 1991 EP
0 666 214 Aug 1995 EP
1 143 778 Oct 2001 EP
1 380 799 Jan 2004 EP
1 381 083 Jan 2004 EP
1 601 043 Nov 2005 EP
1 627 192 Jan 2008 EP
2 730 556 Feb 1995 FR
4-316972 Sep 1992 JP
WO 0065890 Feb 2000 WO
WO 0223966 Mar 2002 WO
Related Publications (1)
Number Date Country
20070263356 A1 Nov 2007 US