Senior Fitness - Exercise and Nutrition for Aging Men and Women
FREE Article Feed for your website.
Home Ownership Magazine
Party Planning Information
Article Marketing Resources
Bio-Medical Research Article Database
Informative Articles on Life, Love and Happiness
Tutorials on Business to Writing
Famous Quotes from Famous People
Song Lyric Information
New US Patent Information
Comprehensive List of Content by Category
Online Auctions and Shopping Related Articles
Article Search
Most Recent Articles
Title: Erroneous connection detecting method of ignition devices and apparatus of the same
Patent Number: 7,367,321 Issued on 05/06/2008 to Ichikatai

Title: Fuel control system for internal combustion engine
Patent Number: 7,367,320 Issued on 05/06/2008 to Komori,   et al.

Title: Method and apparatus to determine magnitude of combustion chamber deposits
Patent Number: 7,367,319 Issued on 05/06/2008 to Kuo,   et al.

Title: Control system and control method of internal combustion engine
Patent Number: 7,367,318 Issued on 05/06/2008 to Moriya,   et al.

Title: Control apparatus for internal combustion engine
Patent Number: 7,367,317 Issued on 05/06/2008 to Miyazaki,   et al.

Title: Vehicle control system
Patent Number: 7,367,316 Issued on 05/06/2008 to Russell,   et al.

Title: Throttle valve control apparatus of internal combustion engine and automobile using the same
Patent Number: 7,367,315 Issued on 05/06/2008 to Wayama,   et al.

Title: Governor system for gasoline powered vehicles
Patent Number: 7,367,314 Issued on 05/06/2008 to Houston

Title: Speed transient control methods for direct-injection engines with controlled auto-ignition combustion
Patent Number: 7,367,313 Issued on 05/06/2008 to Chang,   et al.

Title: Control strategy to better usage of fuel in gaseous engine
Patent Number: 7,367,312 Issued on 05/06/2008 to Boyer,   et al.

Title: Control system for compression ignition internal combustion engine
Patent Number: 7,367,311 Issued on 05/06/2008 to Norimoto,   et al.

Title: Controller for compression ignition engine
Patent Number: 7,367,310 Issued on 05/06/2008 to Kakuya,   et al.

Title: Internal combustion engine
Patent Number: 7,367,309 Issued on 05/06/2008 to Hashimoto,   et al.

Title: Method for load transient control between lean and stoichiometric combustion modes of direct-injection engines with controlled auto-ignition combustion
Patent Number: 7,367,308 Issued on 05/06/2008 to Kuo,   et al.

Title: Split phase fuel conditioner
Patent Number: 7,367,307 Issued on 05/06/2008 to Lampard

Title: Internal combustion engine and method of operating
Patent Number: 7,367,306 Issued on 05/06/2008 to Holden

Title: Internal combustion engine and connecting rod therefor
Patent Number: 7,367,305 Issued on 05/06/2008 to Endoh,   et al.

Title: Apparatus and method for forced response acoustic isolation enclosure in cast aluminum oil pan
Patent Number: 7,367,304 Issued on 05/06/2008 to Hanner,   et al.

Title: Crankshaft of in-line four-cylinder engine
Patent Number: 7,367,303 Issued on 05/06/2008 to Yamamoto,   et al.

Title: Method and device for switching on a power switch arranged between capacitive elements
Patent Number: 7,367,302 Issued on 05/06/2008 to Bolz,   et al.

Title: CAM follower
Patent Number: 7,367,301 Issued on 05/06/2008 to Waseda,   et al.

Title: Electric valve drive with a rotating actuator
Patent Number: 7,367,300 Issued on 05/06/2008 to Meyer

Title: Variable ratio rocker assembly
Patent Number: 7,367,299 Issued on 05/06/2008 to Vaseleniuck

Title: Variable valve gear for internal combustion engine
Patent Number: 7,367,298 Issued on 05/06/2008 to Meyer,   et al.

Title: Valve train for internal combustion engine
Patent Number: 7,367,297 Issued on 05/06/2008 to Tashiro

Title: Bi-directional power electronics circuit for electromechanical valve actuator of an internal combustion engine
Patent Number: 7,367,296 Issued on 05/06/2008 to Degner,   et al.

Title: Exhaust control valve for internal combustion engine
Patent Number: 7,367,295 Issued on 05/06/2008 to Zauner

Title: Cylinder head with integral tuned exhaust manifold
Patent Number: 7,367,294 Issued on 05/06/2008 to Rozario,   et al.

Title: Four-stroke engine
Patent Number: 7,367,293 Issued on 05/06/2008 to Takeuchi

Title: Fuel cooler with lamellar inner structures for connecting to an air-conditioning system of a vehicle
Patent Number: 7,367,292 Issued on 05/06/2008 to Vath

Title: Locomotive apparatus
Patent Number: 7,367,291 Issued on 05/06/2008 to Marsh,   et al.

Title: Diesel combustion mode switching control strategy and model
Patent Number: 7,367,290 Issued on 05/06/2008 to Chen,   et al.

Title: Control system for hydrogen addition internal combustion engine
Patent Number: 7,367,289 Issued on 05/06/2008 to Ito

Title: Upper bundle cleaning system of steam generator
Patent Number: 7,367,288 Issued on 05/06/2008 to Kim

Title: Animal control apparatus
Patent Number: 7,367,287 Issued on 05/06/2008 to Jones, Jr.

Title: Implement for carrying waste
Patent Number: 7,367,286 Issued on 05/06/2008 to Beaupre

Title: Illuminated pet leash
Patent Number: 7,367,285 Issued on 05/06/2008 to Cooper

Title: Automated poultry processing method and system
Patent Number: 7,367,284 Issued on 05/06/2008 to Gorans

Title: Leak-proof pet ball
Patent Number: 7,367,283 Issued on 05/06/2008 to Aboujaoude,   et al.

Title: Apparatus for repelling predators of water-residing species
Patent Number: 7,367,282 Issued on 05/06/2008 to Franchino

Title: Plasma antenna
Patent Number: 7,367,281 Issued on 05/06/2008 to Lee

Title: Bookmark
Patent Number: 7,367,280 Issued on 05/06/2008 to Armstrong

Title: Stackable support shock absorbing platform
Patent Number: 7,367,279 Issued on 05/06/2008 to Giannasca

Title: Device of a towing pin for guiding a cable on board a vessel
Patent Number: 7,367,278 Issued on 05/06/2008 to Tande,   et al.

Title: Pulley
Patent Number: 7,367,277 Issued on 05/06/2008 to Bowman

Title: Retractable bowsprit for sailboat
Patent Number: 7,367,276 Issued on 05/06/2008 to Ashdown

Title: Sewing machine frame and method for assembling the same
Patent Number: 7,367,275 Issued on 05/06/2008 to Tajima

Title: Darning width adjusting device for sewing machine
Patent Number: 7,367,274 Issued on 05/06/2008 to Sadasue

Title: Diagnostic table
Patent Number: 7,367,273 Issued on 05/06/2008 to Shinoda

Title: Door position indicating mechanism for a railcar
Patent Number: 7,367,272 Issued on 05/06/2008 to Taylor

Title: Railway hopper car discharge gate
Patent Number: 7,367,271 Issued on 05/06/2008 to Early

Title: Isolation mounting system for railroad car steps and running boards
Patent Number: 7,367,270 Issued on 05/06/2008 to Perry, Jr.

Title: Blast movement monitor and method for determining the movement of a blast movement monitor and associated rock as a result of blasting operations
Patent Number: 7,367,269 Issued on 05/06/2008 to La Rosa,   et al.

Title: Safety and arming device for a spinning projectile fuze
Patent Number: 7,367,268 Issued on 05/06/2008 to Westphal,   et al.

Title: Web printer incorporating a drying module
Patent Number: 7,367,267 Issued on 05/06/2008 to Silverbrook,   et al.

Title: Plate feeding apparatus
Patent Number: 7,367,266 Issued on 05/06/2008 to Takeda,   et al.

Title: Method and device for mounting dressings onto the cylinder of a printing press
Patent Number: 7,367,265 Issued on 05/06/2008 to Zink

Title: Method and apparatus for treating sheets including a vacuum roller for retaining sheets in curved configuration
Patent Number: 7,367,264 Issued on 05/06/2008 to Beaudry

Title: Spit holder assembly
Patent Number: 7,367,262 Issued on 05/06/2008 to Powell,   et al.

Title: Section divider ensemble for roller grill for cooking human food
Patent Number: 7,367,261 Issued on 05/06/2008 to Gaskill,   et al.

Title: In-wall coffee maker system and method of installation
Patent Number: 7,367,260 Issued on 05/06/2008 to Spencer

Title: Pressure pin and axial piston machine having said pressure pin
Patent Number: 7,367,259 Issued on 05/06/2008 to Beck

Title: Longitudinally adjustable reversible axial piston machine
Patent Number: 7,367,258 Issued on 05/06/2008 to Wanschura,   et al.

Title: Hydraulic cylinder with position encoder
Patent Number: 7,367,257 Issued on 05/06/2008 to Kadlicko

Title: Pressure switch control for attachment coupling system
Patent Number: 7,367,256 Issued on 05/06/2008 to Fatemi,   et al.

Title: Device and method for separating at least one optical fiber
Patent Number: 7,367,255 Issued on 05/06/2008 to Brugger,   et al.

Title: Cutter with laser generator that irradiates cutting position on workpiece to facilitate alignment of blade with cutting position
Patent Number: 7,367,254 Issued on 05/06/2008 to Ushiwata,   et al.

Title: Cutting assembly having multiple turntable locking mechanisms
Patent Number: 7,367,253 Issued on 05/06/2008 to Romo,   et al.

Title: Integrated circuit package separators
Patent Number: 7,367,252 Issued on 05/06/2008 to Tripard

Title: Format change in a corrugating plant
Patent Number: 7,367,251 Issued on 05/06/2008 to Titz

Title: Digital beam torque wrench
Patent Number: 7,367,250 Issued on 05/06/2008 to Rainone,   et al.

Title: Quick release device of a socket wrench
Patent Number: 7,367,249 Issued on 05/06/2008 to Chiang

Title: Screwtop opener
Patent Number: 7,367,248 Issued on 05/06/2008 to Ruffner

Title: Change-speed control system for utility vehicle having stepless change-speed apparatus for speed-changing engine output and transmitting the speed-changed output to traveling unit
Patent Number: 7,367,247 Issued on 05/06/2008 to Horiuchi,   et al.

Title: Adjustable steering column including electrically-operable locking means
Patent Number: 7,367,246 Issued on 05/06/2008 to Ben Rhouma,   et al.

Thermally conductive elastomeric pad Number:7,094,822 from the United States Patent and Trademark Office (PTO) owispatent

Home    Author Login    Submit Article    Article Search    Add Your Link    Edit Your Link    Contact Us    Advertising    Disclaimer

   

 
Web LinkGrinder.com

Top Breaking News
     California Supreme Court Strikes Down Gay Marriage Ban by Mike O'Sullivan
     UN Scales Down Global Growth Forecast by Alex Villarreal
     Donovan, Leslie Lead USA Women's Basketball to Beijing by David Byrd

Title: Thermally conductive elastomeric pad

Abstract: The present invention relates to thermally conductive, elastomeric pads. The pads can be made by injection-molding a thermally conductive composition comprising about 30 to 60% by volume of an elastomer polymer matrix and about 25 to 60% by volume of a thermally conductive filler material. The resultant pads have heat transfer properties and can be used as a thermal interface to protect heat-generating electronic devices.

Patent Number: 7,094,822 Issued on 08/22/2006 to Sagal,   et al.


Inventors: Sagal; E. Mikhail (Wakefield, RI), McCullough; Kevin A. (North Kingstown, RI), Miller; James D. (Marietta, GA)
Assignee: Cool Shield, Inc. (Warwick, RI)
Appl. No.: 10/870,629
Filed: June 17, 2004


Current U.S. Class: 524/404 ; 524/413; 524/424; 524/431; 524/437; 524/438; 524/441; 524/495; 524/496; 524/499; 524/543; 524/567; 524/571; 524/574; 524/588
Current International Class: C08K 3/00 (20060101)


References Cited [Referenced By]

U.S. Patent Documents
4155402 May 1979 Just
4826896 May 1989 Procter
5011870 April 1991 Peterson
5011872 April 1991 Latham et al.
5021494 June 1991 Toya
5106540 April 1992 Barma et al.
5490319 February 1996 Nakamura et al.
5536568 July 1996 Teruo
5580493 December 1996 Chu et al.
5681883 October 1997 Hill et al.
5945217 August 1999 Hanrahan
6048919 April 2000 McCullough
6251978 June 2001 McCullough
6652958 November 2003 Tobita
6716904 April 2004 Takahashi
2002/0058743 May 2002 Tobita et al.
2003/0038278 February 2003 Ishihara
2003/0044631 March 2003 Sagal et al.

Other References

Property data for hexagonal boron nitride at the url www.a-m.de/englisch/lexikon/bornitride.htm. cited by examiner.

Primary Examiner: Zimmer; Marc S.
Attorney, Agent or Firm: Barlow, Josephs & Holmes, Ltd.

Parent Case Text



CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a divisional of U.S. patent application Ser. No. 10/225,924 having a filing date of Aug. 22, 2002, which claims the benefit of U.S. Provisional Patent Application No. 60/316,486 having a fling date of Aug. 31, 2001.
Claims



What is claimed is:

1. A thermally conductive, elastomeric interface pad comprising: about 30 to about 60% by volume of an elastomer polymer matrix; and about 25 to about 60% by volume of a first thermally conductive filler material having an aspect ratio of at least 10:1; and about 10 to about 15% by volume of a second thermally conductive filler material having an aspect ratio of 5:1 or less.

2. The interface pad of claim 1, wherein the elastomer polymer is selected from the group consisting of: styrene-butadiene copolymer, polychloroprene, nitrile rubber, butyl rubber, polysulfide rubber, ethylene-propylene terpolymers, polysiloxanes, and polyurethanes.

3. The interface pad of claim 2, wherein the elastomer polymer is a polysiloxane.

4. The interface pad of claim 1, wherein the interface pad has a thermal conductivity of greater than 3 W/m.degree. K.

5. The interface pad of claim 1, wherein the interface pad has a thermal conductivity of greater than 22 W/m.degree. K.
Description



BACKGROUND OF THE INVENTION

The present invention relates to thermally conductive elastomeric pads and methods for manufacturing such pads. Particularly, the pads comprise an elastomer polymer matrix and a thermally conductive filler material. The pads produced by these methods can be used as thermal interfaces to dissipate heat from heat-generating electronic devices.

Electronic devices such as semiconductors, microprocessors, and circuit boards can generate a substantial amount of heat that must be removed in order for the device to function properly. The industry uses thermally conductive compositions to dissipate heat from such electronic components. Typically, such compositions comprise a base polymer matrix and thermally conductive filler material.

For example, Peterson, U.S. Pat. No. 5,011,870 discloses thermally conductive organosiloxane compositions comprising a polyorganosiloxane and a mixture of thermally conductive fillers that includes aluminum nitride.

McCullough, U.S. Pat. No. 6,251,978 discloses a thermally conductive composition comprising a polymer base matrix (liquid crystal polymer) and thermally conductive fillers (aluminum, alumina, copper, magnesium, brass, carbon, and boron nitride).

Conventional thermally conductive compositions can be used in a variety of ways. For example, a heat-generating device (e.g., electronic part) and an adjacent heat-dissipating article (e.g., heat sink) first are secured in place by mechanical means using clips or screws. Thermally conductive pastes or greases comprising polysiloxane oils loaded with fillers are then smeared onto these components. The thermally conductive greases tend to have initially good film-forming and gap-filling properties. For example, small gaps may exist between the heat sink and electronic part, where these components interface with each other. The uneven mating surfaces of these components can cause such gaps. The thermal greases tend to seep into these gaps bringing the heat sink and electronic part into initial contact with each other. However, it has been found that such thermal greases have poor adhesive properties and will ultimately seep out. This seepage causes air voids to form between the two surfaces resulting in hot spots. Moreover, the mechanical fasteners may exert excessive pressure on the heat sink and accelerate the seepage. It has been reported that seeping polysiloxane oils can evaporate and re-condense on sensitive parts of surrounding microcircuits. The re-condensed oils lead to the formation of silicates that can interfere with the microcircuits and cause the microprocessor to fail in operation.

In the case of polysiloxanes and thermoplastic polymers, these materials are typically cast in sheet form and die-cut into desired shapes corresponding to the shapes of the heat sink and heat-generating device. The resulting pre-formed sheet is attached to the surface of the heat-generating device, and the heat sink is secured by means of clips or screws. These pre-cut, thermally conductive sheets solve the problems associated with the above-described greases. However, an operator may find it difficult to precisely cut the sheets to specific configurations. Thus, the sheets may not have the proper geometry to provide an optimum pathway for heat-transfer between the heat-generating device and heat sink. Further, the added step of cutting and manually applying the pre-formed sheets adds cost to the assembly process. The sheets may have non-uniform thickness and vary in their effectiveness to transfer heat. Finally, while these sheet materials are suitable for filling undesirable air gaps, they are generally less thermally conductive than the heat sink member. Thus, these sheets can detract from the overall thermal conductivity of the assembly.

In view of the foregoing problems, it would be desirable to have a method for making a thermally conductive elastomeric pad, where no further processing or tooling is required to produce the final shape of the pad. In addition, the pad should be capable of providing a tightly conforming interface between heat-generating and heat-dissipating devices. The present invention provides such an elastomeric pad and the methods for making such a pad.

SUMMARY OF THE INVENTION

The present invention relates to a thermally-conductive, elastomeric pad and the methods for making such a pad. In general, the method comprises the steps of: a) injecting a molten composition comprising about 30 to about 60% by volume of an elastomer polymer matrix and about 25 to about 60% by volume of a filler material into a mold, b) cooling the composition, and c) removing the composition from the mold. Preferably, the composition has a thermal conductivity of greater than 3 W/m.degree. K., and more preferably greater than 22 W/m.degree. K.

The elastomer polymer may be selected from the group consisting of styrene-butadiene copolymer, polychloroprene, nitrile rubber, butyl rubber, polysulfide rubber, ethylene-propylene terpolymers, polysiloxanes, and polyurethanes. Preferably, the elastomer is a polysiloxane (silicone). The filler material can have a relatively high aspect ratio of 10:1 or greater, or a relatively low aspect ratio of 5:1 or less.

In one embodiment of the invention, the composition comprises i) about 30 to about 60% by volume of an elastomer polymer matrix, ii) about 25 to about 60% by volume of a first thermally conductive filler material having an aspect ratio of at least 10:1, and (iii) about 10 to about 15% by volume of a second thermally conductive filler material having an aspect ratio of 5:1 or less.

The filler material may be selected from the group consisting of aluminum, alumina, copper, magnesium, brass, carbon, silicon nitride, aluminum nitride, boron nitride, and zinc oxide. Preferably, the filler material is alumina or boron nitride. The filler material can be in any suitable form such as granular powder, whiskers, or fibers.

BRIEF DESCRIPTION OF THE DRAWINGS

The novel features that are characteristic of the present invention are set forth in the appended claims. However, the preferred embodiments of the invention, together with further objects and attendant advantages, will be best understood by reference to the following detailed description taken in connection with the accompanying drawings in which:

FIG. 1 is a cross-sectional view of an assembly showing an elastomeric pad of the present invention and a circuit board containing heat-generating elements; and

FIG. 2 is a cross-sectional view of an assembly showing another embodiment of the elastomeric pad of the present invention and a circuit board containing heat-generating elements.

DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT

The present invention relates to thermally conductive elastomeric pads and methods for making such pads.

The thermally conductive composition used to make the pads of this invention comprises an elastomer polymer matrix. Suitable elastomers include, for example, styrene-butadiene copolymer, polychloroprene, nitrile rubber, butyl rubber, polysulfide rubber, ethylene-propylene terpolymers, polysiloxanes, and polyurethanes. Preferably, the elastomer polymer is a polysiloxane (silicone). The polymer matrix preferably constitutes 30% to 60% by volume of the total composition. It is important that the matrix comprise an elastomer polymer. The matrix provides the pad with rubber-like consistency, elasticity, and texture. Because of these rubber-like properties, the pad can provide an effective interface between the heat-generating and heat-dissipating devices as discussed in further detail below.

Thermally conductive filler materials are added to the polymer matrix. Suitable filler materials include, for example, aluminum, alumina, copper, magnesium, brass, carbon, silicon nitride, aluminum nitride, boron nitride, zinc oxide, and the like. Mixtures of such fillers are also suitable. The filler material preferably constitutes 25% to 70% by volume of the composition and is more preferably less than 60%.

The filler material may be in the form of granular powder, whiskers, fibers, or any other suitable form. The granules can have a variety of structures. For example, the grains can have flake, plate, rice, strand, hexagonal, or spherical-like shapes. The filler material may have a relatively high aspect (length to thickness) ratio of about 10:1 or greater. For example, PITCH-based carbon fiber having an aspect ratio of about 50:1 can be used. Alternatively, the filler material may have a relatively low aspect ratio of about 5:1 or less. For example, boron nitride grains having an aspect ratio of about 4:1 can be used. Preferably, both low aspect and high aspect ratio filler materials are added to the polymer matrix as described in McCullough, U.S. Pat. Nos. 6,251,978 and 6,048,919, the disclosures of which are hereby incorporated by reference.

In one preferred embodiment, the composition comprises: i) about 30 to about 60% by volume of an elastomer polymer matrix, ii) about 25 to about 60% by volume of a first thermally conductive filler material having an aspect ratio of 10:1 or greater, and (iii) about 10 to about 15% by volume of a second thermally conductive filler material having an aspect ratio of 5:1 or less. More particularly, the composition can comprise about 50% by volume of the elastomer polymer matrix; about 35% by volume of the first thermally conductive filler material; and about 15% by volume of the second thermally conductive filler material.

The filler material may be electrically conductive for applications where efficient electrical transmission is needed. Particularly, the filler material may be selected so that the ultimate composition has a volume resistivity of approximately 0.1 ohm-cm or lower and a surface resistivity of approximately 1.0 ohm or lower. Thus, the resultant elastomeric pad may be thermally conductive and/or electrically conductive.

The filler material is intimately mixed with the non-conductive elastomer polymer matrix. The loading of the filler material in the matrix imparts thermal conductivity to the composition. The mixture can be prepared and molded into a thermally conductive, elastomeric pad using techniques known in the art. First, the ingredients are preferably mixed under low shear conditions in order to avoid damaging the structure of the filler material. The composition may then be shaped into the elastomeric pad using any suitable molding process such as melt-extrusion, casting, or injection-molding. The composition is preferably injection-molded using conventional techniques employed to produce plastics and other molded materials. These techniques generally involve the following steps: (a) feeding the composition into the heating chamber of a molding machine and heating the composition to form a molten composition; b) injecting the molten composition into a mold cavity; c) maintaining the composition in the mold under high pressure until it cools, and d) removing the molded article.

The elastomeric pad of this invention is thermally conductive. Preferably, the pad has a thermal conductivity of greater than 3 W/m.degree. K., and more preferably greater than 22 W/m.degree. K. In addition, the elastomeric pad is net-shape molded meaning that the final shape of the pad is determined by the shape of the mold cavity. No further processing or tooling is required to produce the final shape of the pad. The pad produced by this method is ready for use. If desired, various known adhesive materials can be applied either during manufacture or at the time of assembly to adhere the pad to the heat-generating (electrical part) and heat-dissipating devices (heat sink).

In practice, the heat-generating and/or heat sink components may have small voids and other minor manufacturing defects on their surfaces. When these components are brought together, small gaps may appear in the interface between the components. The elastomeric pads of the present invention solve this problem by providing a tightly conforming interface. These rubber-like pads are highly compressible and can conform to voids located on the components' surfaces, thereby creating an effective seal. Further, the interface pads of the present invention are substantially non-corrosive and will not creep or bleed-out under applied pressure.

In contrast, many conventional pre-formed films do not have good compressibility resulting in poor intimate contact between the surfaces of the heat sink and heat-generating source.

The elastomeric interface pads of the present invention offer other advantages over conventional pre-formed films. As discussed above, the pads can be molded to any desired shape. Thus, it is not necessary to die-cut the pads to obtain a specific structure. This ability to net-shape mold the compositions is beneficial, because die-cutting operations can generate substantial amounts of material waste.

Further, the elastomeric pad can vary in thickness and contain numerous recesses and protrusions along its contour. As a result, the surface of the pad can span over adjacent heat-generating elements (e.g., memory chips) on a circuit board despite the fact that the elements may be of varying heights.

Such an assembly 2 is illustrated in FIG. 1, where an elastomeric pad 4 made in accordance with the present invention spans over multiple heat-generating elements 6 on circuit board 8. The heat generating elements 6 may be, for example, microprocessor or RAM electronic devices. The protruding sections 10 of the pad 4 form a thermal interface 12 with the elements. The layout and arrangement of the protruding sections are customized to match the layout and arrangement of the elements 6 to be cooled on circuit board 8. In this embodiment, the top surface 6a of the elements 6 are in contact with the elastomeric pad 4 of the present invention.

In FIG. 2, an alternative embodiment 20 of an elastomeric pad 22 made in accordance with the present invention is shown. This pad 22 contains multiple recesses 24 that form a thermal interface with the elements 6 on the circuit board 8. In this embodiment 20, the pad 22 is sized so that the recesses correspond with the elements 6 on the circuit board 8. Further, the pad is communicates with the top sides 6a as well as the sides 6b of the elements 6 for improved thermal transfer. It may be more desirable to use the pad of FIG. 2 rather than the pad of FIG. 1 to suit the application at hand, namely, the nature of the circuit board 8 and the elements 6 to be cooled.

Under uniformly applied pressure, the elastomeric pads 4 and 22 intimately contact the heat-generating surfaces of each element 6 while allowing a flat opposing surface 4a and 22a upon which a heat sink (not shown) can be installed. For example, a machined block heat sink can be clamped to the circuit board 8 with the gap pad 4 or 22 and elements 6 residing therebetween. This feature is a particular improvement over conventional interfaces that are generically flat in profile and require a separate interface pad for each component.

It is appreciated by those skilled in the art that various changes and modifications can be made to the illustrated embodiments without departing from the spirit of the present invention. All such modifications and changes are intended to be covered by the appended claims.

*


Free Web Sudoku Puzzles.
Solve with your browser.
      3         9
7 8             6
  2   7     3    
          5 7 3  
6     2   4     1
  1 7 8          
    5     1   4  
3             9 5
9         3      
What is it?



Add Your Site · Terms Of Service · Privacy Policy


DISCLAIMER
Linkgrinder is a free service that searches the Internet and indexes all files found so that you may search quickly and easily for shared files. These files are created and made available individually by users whose identity we are not aware of and who we have no control over. In essence we function like a search engine tool; these files ARE NOT STORED OR SERVED BY OUR NETWORK. We are not responsible for any materials obtained by using our service. We do not monitor any of the contents of these files. These files may contain viruses, illegal materials, materials inappropriate for minors, offensive files and the like. BY USING OUR SERVICE, YOU ASSUME FULL RESPONSIBILITY FOR DOWNLOADING THESE MATERIALS AND WILL INDEMNIFY US FOR ANY DAMAGES THAT MAY BE INCURRED.

For More Specific Information VIEW OUR TERMS OF SERVICE.

Thank you and Enjoy!