US3663307A - Thermoelectric device - Google Patents

Thermoelectric device Download PDF

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US3663307A
US3663307A US705507A US3663307DA US3663307A US 3663307 A US3663307 A US 3663307A US 705507 A US705507 A US 705507A US 3663307D A US3663307D A US 3663307DA US 3663307 A US3663307 A US 3663307A
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support members
thermoelectric
pellet
pellets
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Cecil J Mole
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CBS Corp
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Westinghouse Electric Corp
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    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10NELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10N10/00Thermoelectric devices comprising a junction of dissimilar materials, i.e. devices exhibiting Seebeck or Peltier effects
    • H10N10/10Thermoelectric devices comprising a junction of dissimilar materials, i.e. devices exhibiting Seebeck or Peltier effects operating with only the Peltier or Seebeck effects
    • H10N10/13Thermoelectric devices comprising a junction of dissimilar materials, i.e. devices exhibiting Seebeck or Peltier effects operating with only the Peltier or Seebeck effects characterised by the heat-exchanging means at the junction

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  • thermoelectric pellet is disposed between and attached to two metal plates by suitable means, such as metallurgical bonding.
  • a structural member such as an annulus composed of an epoxy resin having a characteristic of shrinking when cured, surrounds the pellet and is bonded to the metal plates, thereby sealing it from the atmosphere.
  • the structural member is so arranged that the pellet is maintained under a substantial compression load at all times and the complete structure is both rigid and strong.
  • thermoelectric devices THERMOELECTRIC DEVICE BACKGROUND OF THE INVENTION
  • This invention relates, generally, to thermoelectric devices and, more particularly, to encapsulated thermoelectric pellets for use in thennoelectric heat exchangers.
  • thermoelectric materials results in inherent problems in. heat exchanger module construction.
  • the thermoelectric pellets and related joints should be kept in compression at all times and protected from appreciable tensile, shear and bending loads. Since difierent alloys are used at each joint between pellets and adjacent parts, good sealing is necessary to prevent the entrance of moisture at the joints with resulting corrosion problems.
  • the problems of maintaining an array of thermoelectric pellets and connections in heat exchangers in compression with handling, assembly, shock and vibration are difficult and heretofore have required heavy and expensive structures with complex sealing arrangements.
  • An object of this invention is to provide a capsule in which a thermoelectric pellet is maintained under a compression load at all times.
  • Another object of the invention is to provide an encapsulated thermoelectric assembly which can be used as a structural member is thermoelectric apparatus.
  • thermoelectric heat exchanger includes a pair of spaced metal support members with at least one thermoelectric pellet extending between and secured to opposed surfaces of the support members.
  • An epoxy resin annulus surrounds the pellet and is bonded to the support members in a manner to exert forces on the members tending to move the surfaces toward each other, thereby sealing the pellet and maintaining it under a compression load at all times.
  • FIGS. 1, 2 and 3 are views, in section, showing successive steps in the procedure for providing an encapsulated thermoelectric pellet embodying principal features of the inventron;
  • FIG. 4 is a view, in section, taken along the line IV-IV in FIG. 3;
  • FIG. 5 is a view, in section, of a heat exchange apparatus in which encapsulated thermoelectric pellets of the type shown in FIG. 3 are utilized;
  • FIG. 6 is a view, similar to FIG. 5, of a modified thermoelectric heat exchange apparatus
  • FIG. 7 is a view taken along the line VII-VII in FIG. 6;
  • FIG. 8 is a view, similar to FIG. 4, of another modification of an encapsulated thermoelectric pellet
  • FIGS. 9 and 10 are views, in end and side elevation, respectively, of a modified thermoelectric heat exchanger.
  • FIGS. 11 and 12 are views, similar to FIGS. 9 and 10, of another modification of the invention.
  • thermoelectric device or capsule 10 shown therein is an improvement over prior devices, such as the one described in US Pat. No. 3,303,058, issued Feb. 7, 1967 to George Sonnenschein, in which a metal bellows is utilized to enclose a thermoelectric pellet.
  • the thermoelectric device 10 comprises a lower support member 12, a thermoelectric pellet 14, an upper support member 16, an annulus l8 and bonding material 20.
  • the support members 12 and l6 are composed of a material, such as copper, having good heat and electrical conductivity.
  • the pellet 14 may be formed from either thermoelectrically positive or thermoelectrically negative materials which are well known in the art.
  • the annulus 18 may be composed of an epoxy resin of a thermosetting type having a relatively high coefficient of expansion and a characteristic of shrinking when cured.
  • a suitable epoxy resin for this application is diglycidyl ether of bisphenol-A and epichlorohydrin with two hardeners, meta-phenylenediamine and methyl nodic anhydride with catalytic curing agents BF: monoethylamine.
  • the bonding material 20 is available on the market under the trade name "Delta Bond. Numerous other suitable bonding materials are also available on the market.
  • the device 10 may be constructed by attaching the pellet 14 to opposed surfaces 13 and 15 of the support members 12 and 16, respectively, by soldering or other methods of metallurgical bonding.
  • a fillet of bonding material 20 is applied around the step of the pedestal type support member 12.
  • the epoxy ring 18 is then placed over the upper support member 16 and seated firmly on the step of the lower support member 12 so that the complete circumference is sealed by the bonding material 20.
  • a small hole 22 is provided in the epoxy annulus or ring 18.
  • a fillet of bonding material 20 is then applied around the top of the epoxy ring 18 to completely seal it to the upper support member 16.
  • the encapsulated pellet is then placed in an oven at a relatively high temperature, for example 400 F. for curing. During the curing process the ring 18 is bonded to the support members 12 and 16.
  • the annulus 18 has the characteristic of shrinking when cured.
  • forces are exerted on the support members 12 and 16 tending to move their opposed surfaces 24 and 16 toward each other to exert a compression force on the pellet 14.
  • the small hole 22 is sealed with a dab of the bonding material 20.
  • the epoxy annulus 18 functions as an insulating member to avoid electrically shunting the pellet 14.
  • the ring or annulus 18 also functions as a structural member to make the capsule strong and rigid, thereby making it suitable for utilization in thermoelectric heat exchangers. Since the pellet 14 is maintained under compression at all times by the force exerted by the annulus 18, the pellet is protected from tensile, shear and bending loads. Furthermore, the pellet 14 is completely sealed, thereby preventing moisture from entering the capsule which could result in corrosion at the joints between the different metals utilized in the capsule or device 10.
  • the strength and rigidity of the capsule 10 makes it suitable for use in thermoelectric heat exchangers, such as the exchanger 30 shown in FIG. 5.
  • the exchanger 30 includes two capsules or devices 10, one having positive characteristics and the other negative characteristics, connected in series-circuit relation, and heating or cooling fin structures 32, 34 and 36 which are electrically and thermally conductive.
  • the fin structure 32 comprises a plurality of metal fins 38 spaced between and attached to metal plates 40 and 42.
  • the fins 38 may be attached to the plates by brazing, or other suitable means.
  • the plate 42 is attached to the lower support members 12 of the capsules 10 opposite the pellets 14, as by brazing.
  • Each one of the fin structures 34 and 36 comprises a plurality of fins 38 spaced between and attached to metal plates 44 and 46.
  • Each plate 44 is attached to the by circulating a fluid of different temperatures through the fin structure 32, 34 and 36.
  • a generally rectangular member 12' functions as the lower support member for two capsules 10'.
  • the fins 38 for the fin structure 32' are attached directly to the support member 12.
  • the fins 38 for each of the fin structures 34' and 36' are attached to one of the upper support members 16' for one of the capsules 10. In this manner the height of the exchanger 30 is reduced by omitting the plates 42 and 44 from the structure.
  • each thermoelectric pellet 14 between the support members 12 and 16'.
  • the epoxy bars 52 are bonded to the members 12 and 16' in the manner hereinbefore described. Therefore, they maintain a compressive force on the pellet 14 as previously explained.
  • the exchanger 30 is suitable for use where it will not be subjected to moisture and dirt, thereby not requiring the capsules l to be completely sealed.
  • the bars 52 add rigidity and strength to the structure as previously explained.
  • thermosetting epoxy resin instead of using a thermosetting epoxy resin as hereinbefore described, a cold curing epoxy resin having a characteristic of shrinking when cured may be utilized in the thermoelectric device.
  • a pellet may be encapsulated by placing an open end container around or adjacent to the pellet between opposed surfaces of the support members for the pellet and pouring in the epoxy in a fluid state before it has hardened after the resin material has been mixed with a suitable hardener.
  • a suitable hardener During curing the epoxy bonds to the support members, but not to the container which may be composed of a material to which the epoxy will not adhere, such as Polytetrafluoroethylene which is available under the trade name Teflon.
  • the epoxy will shrink during curing, thereby placing a compressive load on the pellet in the manner previously described.
  • thermoelectric pellets 14 are arranged in pairs with one pellet of each pair having positive characteristics and the other having negative characteristics.
  • An electrically and thermally conductive unit 62 is disposed between and secured to the pellets of each pair of pellets and the polarities of successive pairs are reversed as shown in FIG. 10.
  • Each unit 62 comprises a plurality of metal fins 38 welded or brazed to an upper metal plate 64 and to a lower metal plate 66.
  • the plate 64 is secured to the upper pellet l4 and the plate 66 is secured to the lower pellet 14 of one pair of pellets by soldering or other means of metallurgical bonding.
  • the upper pellet 14 is secured to the lower face of an upper metal support member 68.
  • the lower pellet 14 is secured to the upper face of a lower metal support member 70.
  • Each support member 68 bridges two pellets, thereby connecting a P and N pellet in series.
  • the member 70 is connected only to an N pellet, but each of the members 70 connects a P and an N pellet in series. Accordingly, current will flow through the units 62 as indicated by the line 72 in FIG. 10.
  • thermally and electrically conductive unit 74 is attached to each upper support member 68.
  • conductive units 76 and 76 are attached to the lower support members 70 and 70', respectively.
  • the units 74, 76 and 76' are similar in construction to the units 62.
  • the units 62 become cold fins and the units 74, 76 and 76 become hot fins.
  • air may be circulated through the fin structures by any suitable means to obtain the desired cooling or heating effeet.
  • upper arms 78 on each support member 68 extend toward corresponding lower arms 80 on the support members 70 and 70'.
  • two arms 78 and two arms 80 are provided for each unit 62.
  • the arms may be formed integrally with the support members 68, 70 and 70 or they may be secured to the support members by welding or brazing. If the arms are composed of a plastic material, they may be bonded to the support members.
  • each arm 78 is spaced from the upper end of its corresponding arm 80 a predetermined distance to permit the ends to be bonded together by means of an insulating epoxy resin 82 which has a characteristic of shrinking when cured.
  • a cold curing resin may be utilized by providing a suitable retainer or mold at each pair of ends to be joined and pouring the resin into the mold while in a fluid state. The resin is bonded to the ends of the arms and shrinks during curing, thereby drawing the arms toward each other to exert a compressive force on the pellets l4 and on the conductive unit 62.
  • the compressive load on the pellets is determined by the distance e (FIG. 9) and the characteristics of the bonding resin. Thus, the load can be changed by changing the distance e which changes the cross section of the bonding material.
  • the heat exchanger 60' shown in FIGS. 11 and 12 is similar to the exchanger 60 with the exception that the arms 78' and 80 extend the full length of the structure and are common to all of the electrically and thermally conductive units 62.
  • the arms must be composed of insulating material bonded to the support members. This arrangement simplifies the operation of bonding the ends of the arms together with a suitable epoxy resin.
  • thermoelectric capsule or device which has numerous advantages over devices of the prior art.
  • thermoelectric module The structural system for a thermoelectric module is simplified and substantial cost savings are obtained.
  • the capsule may be used as a structural member.
  • thermoelectric heat exchangers 5 Special provision for terminal connections for electrical power and fluid are not required, thereby resulting in reduced weight and volume in the construction of thermoelectric heat exchangers.
  • thermoelectric heat exchanger in combination, a plurality of electrically conductive spaced support members each having a surface thereon, said surfaces of adjacent support members being respectively opposed to one another, a plurality of pellets secured directly to said surfaces of adjacent support members, respectively, and tubular means formed at least in part from insulating material extending between and adherently bonded directly to said support members, the insulating material being composed at least in part of a material having a characteristic of shrinking when cured to exert forces on said adjacent members tending to move said surfaces toward each other to exert a compressive force on said pellets, respectively.
  • thermoelectric heat exchanger comprising a plurality of spaced electrically conductive support members each having a surface thereon, said surfaces being opposed to one another, thermoelectric pellets secured directly to said surfaces, said pellets being arranged in pairs with one pellet of each pair having positive thermoelectric characteristics and the other having negative thermoelectric characteristics, an electrically and thermally conductive heat exchange unit disposed between and secured to the pellets of each pair of said pellets formed at least in part from insulating material,
  • said insulating material being composed at least in part of a material having a characteristic of shrinking when cured to exert forces on said members tending to move said surface toward each other to exert a compressive force on said pellets and on said heat exchange unit.
  • thermoelectric heat exchanger defined in claim 10, including additional thermally and electrically conductive heat exchange units attached directly to said support members.
  • thermoelectric heat exchanger defined in claim 10, wherein the support members on opposite sides of the electrically and thermally conductive unit have arms extending toward each other and the insulating means is bonded to said arms.
  • thermoelectric heat exchanger defined in claim 1 1, wherein the support members on opposite sides of the electrically and thermally conductive units have arms extending toward each other and the insulating means is bonded to said arms and wherein said arms are composed of insulating material and are common to a plurality of said units.

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  • Cooling Or The Like Of Semiconductors Or Solid State Devices (AREA)
  • Epoxy Resins (AREA)
  • Measuring Temperature Or Quantity Of Heat (AREA)

Abstract

A thermoelectric pellet is disposed between and attached to two metal plates by suitable means, such as metallurgical bonding. A structural member, such as an annulus composed of an epoxy resin having a characteristic of shrinking when cured, surrounds the pellet and is bonded to the metal plates, thereby sealing it from the atmosphere. The structural member is so arranged that the pellet is maintained under a substantial compression load at all times and the complete structure is both rigid and strong.

Description

United States Patent Mole [451 May 16, 1972 [54] THERMOELECTRIC DEVICE [72] Inventor: Cecil J. Mole, Monroeville, Pa.
[73] Assignee: Westinghouse Electric Corporation, Pittsburgh, Pa.
[22] Filed: Feb. 14, 1968 [21] App]. No.: 705,507
[52] U.S. Cl ..136/204, 136/212 [51] Int. Cl. ..H01v1/32 [58] Field ofSearch ..l36/203,204, 205,211,212, 136/230 [56] References Cited UNITED STATES PATENTS 2,942,051 6/1960 Roeder, Jr. ..136/204 2,997,514 8/1961 Roeder, Jr. ..136/211 X 3,006,979 10/1961 Rich ..136/204 3,083,248 3/1963 Schumacher ....l36/203 3,110,628 11/1963 Ramey, Jr. et a1. ..136/204 X 3,111,813 11/1963 Blumentritt ..136/204 3,167,925 2/1965 Elfving ..136/230 3,225,549 12/1965 Elfving ..136/204 X 3,296,033 1/1967 Scuro et a1 ..136/205 3,412,566 11/1968 Townsend et a1. 1 36/212 X 3,450,572 6/1969 Rietveld ..136/230 X Primary ExaminerCarl D. Quarforth Assistant Examiner-Harvey E. Behrend Attorney-A. T. Stratton and Z. L. Dermer [57] ABSTRACT A thermoelectric pellet is disposed between and attached to two metal plates by suitable means, such as metallurgical bonding. A structural member, such as an annulus composed of an epoxy resin having a characteristic of shrinking when cured, surrounds the pellet and is bonded to the metal plates, thereby sealing it from the atmosphere. The structural member is so arranged that the pellet is maintained under a substantial compression load at all times and the complete structure is both rigid and strong.
13 Claims, 12 Drawing Figures flamed ay 16, 1972 2 Sheets-Sheet 1 INVENTOR Cecil J.. Mole WITNESSES:
THERMOELECTRIC DEVICE BACKGROUND OF THE INVENTION This invention relates, generally, to thermoelectric devices and, more particularly, to encapsulated thermoelectric pellets for use in thennoelectric heat exchangers.
The physical weakness of thermoelectric materials results in inherent problems in. heat exchanger module construction. The thermoelectric pellets and related joints should be kept in compression at all times and protected from appreciable tensile, shear and bending loads. Since difierent alloys are used at each joint between pellets and adjacent parts, good sealing is necessary to prevent the entrance of moisture at the joints with resulting corrosion problems. The problems of maintaining an array of thermoelectric pellets and connections in heat exchangers in compression with handling, assembly, shock and vibration are difficult and heretofore have required heavy and expensive structures with complex sealing arrangements.
An object of this invention is to provide a capsule in which a thermoelectric pellet is maintained under a compression load at all times.
Another object of the invention is to provide an encapsulated thermoelectric assembly which can be used as a structural member is thermoelectric apparatus.
Other objects of the invention will be explained fully hereinafter or will be apparent to those skilled in the art.
SUMMARY OF THE INVENTION In accordance with one embodiment of the invention, a thermoelectric heat exchanger includes a pair of spaced metal support members with at least one thermoelectric pellet extending between and secured to opposed surfaces of the support members. An epoxy resin annulus surrounds the pellet and is bonded to the support members in a manner to exert forces on the members tending to move the surfaces toward each other, thereby sealing the pellet and maintaining it under a compression load at all times.
BRIEF DESCRIPTION OF THE DRAWING For a better understanding of the nature and objects of the invention, reference may be had to the following detailed description, taken in conjunction with the accompanying drawing, in which:
FIGS. 1, 2 and 3 are views, in section, showing successive steps in the procedure for providing an encapsulated thermoelectric pellet embodying principal features of the inventron;
FIG. 4 is a view, in section, taken along the line IV-IV in FIG. 3;
FIG. 5 is a view, in section, of a heat exchange apparatus in which encapsulated thermoelectric pellets of the type shown in FIG. 3 are utilized;
FIG. 6 is a view, similar to FIG. 5, of a modified thermoelectric heat exchange apparatus;
FIG. 7 is a view taken along the line VII-VII in FIG. 6;
FIG. 8 is a view, similar to FIG. 4, of another modification of an encapsulated thermoelectric pellet;
FIGS. 9 and 10 are views, in end and side elevation, respectively, of a modified thermoelectric heat exchanger; and
FIGS. 11 and 12 are views, similar to FIGS. 9 and 10, of another modification of the invention.
DESCRIPTION OF THE PREFERRED EMBODIMENT Referring to the drawing, particularly to FIGS. 1 to 4 inclusive, the thermoelectric device or capsule 10 shown therein is an improvement over prior devices, such as the one described in US Pat. No. 3,303,058, issued Feb. 7, 1967 to George Sonnenschein, in which a metal bellows is utilized to enclose a thermoelectric pellet. As shown in FIG. 3 the thermoelectric device 10 comprises a lower support member 12, a thermoelectric pellet 14, an upper support member 16, an annulus l8 and bonding material 20. The support members 12 and l6 are composed of a material, such as copper, having good heat and electrical conductivity. The pellet 14 may be formed from either thermoelectrically positive or thermoelectrically negative materials which are well known in the art. The annulus 18 may be composed of an epoxy resin of a thermosetting type having a relatively high coefficient of expansion and a characteristic of shrinking when cured. A suitable epoxy resin for this application is diglycidyl ether of bisphenol-A and epichlorohydrin with two hardeners, meta-phenylenediamine and methyl nodic anhydride with catalytic curing agents BF: monoethylamine. The bonding material 20 is available on the market under the trade name "Delta Bond. Numerous other suitable bonding materials are also available on the market.
As shown in FIGS. 1, 2 and 3, the device 10 may be constructed by attaching the pellet 14 to opposed surfaces 13 and 15 of the support members 12 and 16, respectively, by soldering or other methods of metallurgical bonding. A fillet of bonding material 20 is applied around the step of the pedestal type support member 12. The epoxy ring 18 is then placed over the upper support member 16 and seated firmly on the step of the lower support member 12 so that the complete circumference is sealed by the bonding material 20. Note that a small hole 22 is provided in the epoxy annulus or ring 18. A fillet of bonding material 20 is then applied around the top of the epoxy ring 18 to completely seal it to the upper support member 16. The encapsulated pellet is then placed in an oven at a relatively high temperature, for example 400 F. for curing. During the curing process the ring 18 is bonded to the support members 12 and 16.
As previously explained, the annulus 18 has the characteristic of shrinking when cured. Thus, forces are exerted on the support members 12 and 16 tending to move their opposed surfaces 24 and 16 toward each other to exert a compression force on the pellet 14. After the capsule has been cured completely, removed from the oven, and cooled to room temperature the small hole 22 is sealed with a dab of the bonding material 20.
The epoxy annulus 18 functions as an insulating member to avoid electrically shunting the pellet 14. The ring or annulus 18 also functions as a structural member to make the capsule strong and rigid, thereby making it suitable for utilization in thermoelectric heat exchangers. Since the pellet 14 is maintained under compression at all times by the force exerted by the annulus 18, the pellet is protected from tensile, shear and bending loads. Furthermore, the pellet 14 is completely sealed, thereby preventing moisture from entering the capsule which could result in corrosion at the joints between the different metals utilized in the capsule or device 10.
As explained hereinbefore, the strength and rigidity of the capsule 10 makes it suitable for use in thermoelectric heat exchangers, such as the exchanger 30 shown in FIG. 5. The exchanger 30 includes two capsules or devices 10, one having positive characteristics and the other negative characteristics, connected in series-circuit relation, and heating or cooling fin structures 32, 34 and 36 which are electrically and thermally conductive. The fin structure 32 comprises a plurality of metal fins 38 spaced between and attached to metal plates 40 and 42. The fins 38 may be attached to the plates by brazing, or other suitable means. The plate 42 is attached to the lower support members 12 of the capsules 10 opposite the pellets 14, as by brazing. Each one of the fin structures 34 and 36 comprises a plurality of fins 38 spaced between and attached to metal plates 44 and 46. Each plate 44 is attached to the by circulating a fluid of different temperatures through the fin structure 32, 34 and 36.
In the modified exchanger 30 shown in FIG. 6, a generally rectangular member 12' functions as the lower support member for two capsules 10'. The fins 38 for the fin structure 32' are attached directly to the support member 12. Likewise, the fins 38 for each of the fin structures 34' and 36' are attached to one of the upper support members 16' for one of the capsules 10. In this manner the height of the exchanger 30 is reduced by omitting the plates 42 and 44 from the structure.
As shown more clearly in FIG. 7, two generally rectangular epoxy resin bars 52 are disposed at opposite sides of each thermoelectric pellet 14 between the support members 12 and 16'. The epoxy bars 52 are bonded to the members 12 and 16' in the manner hereinbefore described. Therefore, they maintain a compressive force on the pellet 14 as previously explained. The exchanger 30 is suitable for use where it will not be subjected to moisture and dirt, thereby not requiring the capsules l to be completely sealed. The bars 52 add rigidity and strength to the structure as previously explained.
If it is desired to seal the pellet 14 in the structure 30, this may be done by utilizing an annulus or ring 18 which is divided into two sections with the sections being bonded together by bonding material 20 as shown in FIG. 8. The ring 18 or the bars 52 are installed and cured in the manner hereinbefore described. Therefore, they function to maintain a compressive load on the thermoelectric pellet 14.
Instead of using a thermosetting epoxy resin as hereinbefore described, a cold curing epoxy resin having a characteristic of shrinking when cured may be utilized in the thermoelectric device. Thus, a pellet may be encapsulated by placing an open end container around or adjacent to the pellet between opposed surfaces of the support members for the pellet and pouring in the epoxy in a fluid state before it has hardened after the resin material has been mixed with a suitable hardener. During curing the epoxy bonds to the support members, but not to the container which may be composed of a material to which the epoxy will not adhere, such as Polytetrafluoroethylene which is available under the trade name Teflon. The epoxy will shrink during curing, thereby placing a compressive load on the pellet in the manner previously described.
In a modified heat exchanger 60 shown in FIGS. 9 and 10, the thermoelectric pellets 14 are arranged in pairs with one pellet of each pair having positive characteristics and the other having negative characteristics. An electrically and thermally conductive unit 62 is disposed between and secured to the pellets of each pair of pellets and the polarities of successive pairs are reversed as shown in FIG. 10.
Each unit 62 comprises a plurality of metal fins 38 welded or brazed to an upper metal plate 64 and to a lower metal plate 66. The plate 64 is secured to the upper pellet l4 and the plate 66 is secured to the lower pellet 14 of one pair of pellets by soldering or other means of metallurgical bonding. The upper pellet 14 is secured to the lower face of an upper metal support member 68. The lower pellet 14 is secured to the upper face of a lower metal support member 70. Each support member 68 bridges two pellets, thereby connecting a P and N pellet in series. The member 70 is connected only to an N pellet, but each of the members 70 connects a P and an N pellet in series. Accordingly, current will flow through the units 62 as indicated by the line 72 in FIG. 10.
An additional thermally and electrically conductive unit 74 is attached to each upper support member 68. Likewise, conductive units 76 and 76 are attached to the lower support members 70 and 70', respectively. The units 74, 76 and 76' are similar in construction to the units 62. Thus, when direct current is caused to flow through the exchanger in the direction indicated by the line 72, the units 62 become cold fins and the units 74, 76 and 76 become hot fins. As shown by the arrows, air may be circulated through the fin structures by any suitable means to obtain the desired cooling or heating effeet.
In order to strengthen the structure and to apply a compressive load on the pellets 14, upper arms 78 on each support member 68 extend toward corresponding lower arms 80 on the support members 70 and 70'. In the structure shown in FIGS. 9 and 10, two arms 78 and two arms 80 are provided for each unit 62. The arms may be formed integrally with the support members 68, 70 and 70 or they may be secured to the support members by welding or brazing. If the arms are composed of a plastic material, they may be bonded to the support members.
The lower end of each arm 78 is spaced from the upper end of its corresponding arm 80 a predetermined distance to permit the ends to be bonded together by means of an insulating epoxy resin 82 which has a characteristic of shrinking when cured. A cold curing resin may be utilized by providing a suitable retainer or mold at each pair of ends to be joined and pouring the resin into the mold while in a fluid state. The resin is bonded to the ends of the arms and shrinks during curing, thereby drawing the arms toward each other to exert a compressive force on the pellets l4 and on the conductive unit 62. The compressive load on the pellets is determined by the distance e (FIG. 9) and the characteristics of the bonding resin. Thus, the load can be changed by changing the distance e which changes the cross section of the bonding material.
The heat exchanger 60' shown in FIGS. 11 and 12 is similar to the exchanger 60 with the exception that the arms 78' and 80 extend the full length of the structure and are common to all of the electrically and thermally conductive units 62. The arms must be composed of insulating material bonded to the support members. This arrangement simplifies the operation of bonding the ends of the arms together with a suitable epoxy resin.
From the foregoing description it is apparent that the present invention provides a thermoelectric capsule or device which has numerous advantages over devices of the prior art. Some of the advantages are:
l. The structural system for a thermoelectric module is simplified and substantial cost savings are obtained.
2. The capsule may be used as a structural member.
3. The pellet is sealed from the atmosphere.
4. Greater reliability is obtained.
5 Special provision for terminal connections for electrical power and fluid are not required, thereby resulting in reduced weight and volume in the construction of thermoelectric heat exchangers.
Since numerous changes may be made in the above described construction and different embodiments of the invention may be made without departing from the spirit and scope thereof, it is intended that all subject matter contained in the foregoing description or shown in the accompanying drawing shall be interpreted as illustrative and not in a limiting sense.
I claim as my invention:
1. In a thermoelectric heat exchanger, in combination, a plurality of electrically conductive spaced support members each having a surface thereon, said surfaces of adjacent support members being respectively opposed to one another, a plurality of pellets secured directly to said surfaces of adjacent support members, respectively, and tubular means formed at least in part from insulating material extending between and adherently bonded directly to said support members, the insulating material being composed at least in part of a material having a characteristic of shrinking when cured to exert forces on said adjacent members tending to move said surfaces toward each other to exert a compressive force on said pellets, respectively.
2. The combination defined in claim 1, wherein the means is in an elastic condition after being bonded to the support members.
3. The combination defined in claim 1, wherein the material is a therrnosetting resin.
4. The combination defined in claim 1, wherein the material is a cold curing resin.
5. The combination defined in claim 1, wherein the means is an annulus surrounding each pellet.
6. The combination defined in claim 5, wherein the annulus is divided into a plurality of sections.
7. The combination defined in claim 6, wherein the sections of the annulus are adherently bonded together.
8. The combination defined in claim 1, including electrically and thermally conductive heat exchange means supported by said support members.
9. The combination defined in claim 8, wherein said heat exchange means are respectively attached directly to surfaces of the support members opposite the pellet.
10. A thermoelectric heat exchanger comprising a plurality of spaced electrically conductive support members each having a surface thereon, said surfaces being opposed to one another, thermoelectric pellets secured directly to said surfaces, said pellets being arranged in pairs with one pellet of each pair having positive thermoelectric characteristics and the other having negative thermoelectric characteristics, an electrically and thermally conductive heat exchange unit disposed between and secured to the pellets of each pair of said pellets formed at least in part from insulating material,
and means extending between and adherently bonded directly to said support members, said insulating material being composed at least in part of a material having a characteristic of shrinking when cured to exert forces on said members tending to move said surface toward each other to exert a compressive force on said pellets and on said heat exchange unit.
11. The thermoelectric heat exchanger defined in claim 10, including additional thermally and electrically conductive heat exchange units attached directly to said support members.
12. The thermoelectric heat exchanger defined in claim 10, wherein the support members on opposite sides of the electrically and thermally conductive unit have arms extending toward each other and the insulating means is bonded to said arms.
13. The thermoelectric heat exchanger defined in claim 1 1, wherein the support members on opposite sides of the electrically and thermally conductive units have arms extending toward each other and the insulating means is bonded to said arms and wherein said arms are composed of insulating material and are common to a plurality of said units.

Claims (12)

  1. 2. The combination defined in claim 1, wherein the means is in an elastic condition after being bonded to the support members.
  2. 3. The combination defined in claim 1, wherein the material is a thermosetting resin.
  3. 4. The combination defined in claim 1, wherein the material is a cold curing resin.
  4. 5. The combination defined in claim 1, wherein the means is an annulus surrounding each pellet.
  5. 6. The combination defined in claim 5, wherein the annulus is divided into a plurality of sections.
  6. 7. The combination defined in claim 6, wherein the sections of the annulus are adherently bonded together.
  7. 8. The combination defined in claim 1, including electrically and thermally conductive heat exchange means supported by said support members.
  8. 9. The combination defined in claim 8, wherein said heat exchange means are respectively attached directly to surfaces of the support members opposite the pellet.
  9. 10. A thermoelectric heat exchanger comprising a plurality of spaced electrically conductive support members each having a surface thereon, said surfaces being opposed to one another, thermoelectric pellets secured directly to said surfaces, said pellets being arranged in pairs with one pellet of each pair having positive thermoelectric characteristics and the other having negative thermoelectric characteristics, an electrically and thermally conductive heat exchange unit disposed between and secured to the pellets of each pair of said pellets formed at least in part from insulating material, and means extending between and adherently bonded directly to said support members, said insulating material being composed at least in part of a material having a characteristic of shrinking when cured to exert forces on said members tending to move said surface toward each other to exert a compressive force on said pellets and on said heat exchange unit.
  10. 11. The thermoelectric heat exchanger defined in claim 10, including additional thermally and electrically conductive heat exchange units attached directly to said support members.
  11. 12. The thermoelectric heat exchanger defined in claim 10, wherein the support members on opposite sides of the electrically and thermally conductive unit have arms extending toward each other and the insulating means is bonded to said arms.
  12. 13. The thermoelectric heat exchanger defined in claim 11, wherein the support members on opposite sides of the electrically and thermally conductive units have arms extending toward each other and the insulating means is bonded to said arms and wherein said arms are composed of insulating material and are common to a plurality of said units.
US705507A 1968-02-14 1968-02-14 Thermoelectric device Expired - Lifetime US3663307A (en)

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Cited By (50)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0820107A2 (en) * 1996-06-25 1998-01-21 Technova Inc. Thermoelectric apparatus
EP0838867A2 (en) * 1996-10-22 1998-04-29 Thermovonics Co., Ltd Thermoelectric module
US5865031A (en) * 1996-05-29 1999-02-02 Aisin Seiki Kabushiki Kaisha Heat exchange device having thermoelectric device
US6282907B1 (en) * 1999-12-09 2001-09-04 International Business Machines Corporation Thermoelectric cooling apparatus and method for maximizing energy transport
US20020174660A1 (en) * 2001-04-09 2002-11-28 Research Triangle Institute Thin-film thermoelectric cooling and heating devices for DNA genomic and proteomic chips, thermo-optical switching circuits, and IR tags
US20030005706A1 (en) * 2001-02-09 2003-01-09 Bell Lon E Compact, high-efficiency thermoelectric systems
US20030029173A1 (en) * 2001-08-07 2003-02-13 Bell Lon E. Thermoelectric personal environment appliance
AU759584B2 (en) * 1996-12-27 2003-04-17 Thermovonics Co., Ltd. Storage box apparatus
US20030099279A1 (en) * 2001-10-05 2003-05-29 Research Triangle Insitute Phonon-blocking, electron-transmitting low-dimensional structures
US20030230332A1 (en) * 2002-04-15 2003-12-18 Research Triangle Institute Thermoelectric device utilizing double-sided peltier junctions and method of making the device
US6686532B1 (en) * 2000-03-24 2004-02-03 Chris Macris Heat sink/heat spreader structures and methods of manufacture
US20040031514A1 (en) * 2001-02-09 2004-02-19 Bell Lon E. Thermoelectric power generation systems
US20040076214A1 (en) * 2001-02-09 2004-04-22 Bell Lon K High power density thermoelectric systems
US20040261829A1 (en) * 2001-10-24 2004-12-30 Bell Lon E. Thermoelectric heterostructure assemblies element
US20050072165A1 (en) * 2001-02-09 2005-04-07 Bell Lon E. Thermoelectrics utilizing thermal isolation
US20050210883A1 (en) * 2001-02-09 2005-09-29 Bell Lon E Efficiency thermoelectrics utilizing convective heat flow
US20060086118A1 (en) * 2004-10-22 2006-04-27 Research Triangle Insitute Thin film thermoelectric devices for hot-spot thermal management in microprocessors and other electronics
US20060101829A1 (en) * 2004-11-18 2006-05-18 Stmicroelectronics S.A. Self-cooled vertical electronic component
US20060243317A1 (en) * 2003-12-11 2006-11-02 Rama Venkatasubramanian Thermoelectric generators for solar conversion and related systems and methods
US20060289050A1 (en) * 2005-06-22 2006-12-28 Alley Randall G Methods of forming thermoelectric devices including electrically insulating matrixes between conductive traces and related structures
US20070028956A1 (en) * 2005-04-12 2007-02-08 Rama Venkatasubramanian Methods of forming thermoelectric devices including superlattice structures of alternating layers with heterogeneous periods and related devices
US20070089773A1 (en) * 2004-10-22 2007-04-26 Nextreme Thermal Solutions, Inc. Methods of Forming Embedded Thermoelectric Coolers With Adjacent Thermally Conductive Fields and Related Structures
US20070215194A1 (en) * 2006-03-03 2007-09-20 Jayesh Bharathan Methods of forming thermoelectric devices using islands of thermoelectric material and related structures
US20080289677A1 (en) * 2007-05-25 2008-11-27 Bsst Llc Composite thermoelectric materials and method of manufacture
US20090178700A1 (en) * 2008-01-14 2009-07-16 The Ohio State University Research Foundation Thermoelectric figure of merit enhancement by modification of the electronic density of states
US20090235969A1 (en) * 2008-01-25 2009-09-24 The Ohio State University Research Foundation Ternary thermoelectric materials and methods of fabrication
US20090269584A1 (en) * 2008-04-24 2009-10-29 Bsst, Llc Thermoelectric materials combining increased power factor and reduced thermal conductivity
US20090293499A1 (en) * 2008-06-03 2009-12-03 Bell Lon E Thermoelectric heat pump
US20100024859A1 (en) * 2008-07-29 2010-02-04 Bsst, Llc. Thermoelectric power generator for variable thermal power source
US20100101239A1 (en) * 2008-10-23 2010-04-29 Lagrandeur John Multi-mode hvac system with thermoelectric device
US20100236595A1 (en) * 2005-06-28 2010-09-23 Bell Lon E Thermoelectric power generator for variable thermal power source
US20100258154A1 (en) * 2009-04-13 2010-10-14 The Ohio State University Thermoelectric alloys with improved thermoelectric power factor
US7847179B2 (en) 2005-06-06 2010-12-07 Board Of Trustees Of Michigan State University Thermoelectric compositions and process
US20100326092A1 (en) * 2006-08-02 2010-12-30 Lakhi Nandlal Goenka Heat exchanger tube having integrated thermoelectric devices
US7942010B2 (en) 2001-02-09 2011-05-17 Bsst, Llc Thermoelectric power generating systems utilizing segmented thermoelectric elements
US7946120B2 (en) 2001-02-09 2011-05-24 Bsst, Llc High capacity thermoelectric temperature control system
US7952015B2 (en) 2006-03-30 2011-05-31 Board Of Trustees Of Michigan State University Pb-Te-compounds doped with tin-antimony-tellurides for thermoelectric generators or peltier arrangements
US20110220162A1 (en) * 2010-03-15 2011-09-15 Siivola Edward P Thermoelectric (TE) Devices/Structures Including Thermoelectric Elements with Exposed Major Surfaces
US20120012146A1 (en) * 2009-04-02 2012-01-19 Avl List Gmbh Thermoelectric generator unit
US8424315B2 (en) 2006-03-16 2013-04-23 Bsst Llc Thermoelectric device efficiency enhancement using dynamic feedback
US8490412B2 (en) 2001-08-07 2013-07-23 Bsst, Llc Thermoelectric personal environment appliance
US8623687B2 (en) 2005-06-22 2014-01-07 Nextreme Thermal Solutions, Inc. Methods of forming thermoelectric devices including conductive posts and/or different solder materials and related methods and structures
US8795545B2 (en) 2011-04-01 2014-08-05 Zt Plus Thermoelectric materials having porosity
US9006557B2 (en) 2011-06-06 2015-04-14 Gentherm Incorporated Systems and methods for reducing current and increasing voltage in thermoelectric systems
US9293680B2 (en) 2011-06-06 2016-03-22 Gentherm Incorporated Cartridge-based thermoelectric systems
US9306143B2 (en) 2012-08-01 2016-04-05 Gentherm Incorporated High efficiency thermoelectric generation
US9310112B2 (en) 2007-05-25 2016-04-12 Gentherm Incorporated System and method for distributed thermoelectric heating and cooling
US10270141B2 (en) 2013-01-30 2019-04-23 Gentherm Incorporated Thermoelectric-based thermal management system
US10991869B2 (en) 2018-07-30 2021-04-27 Gentherm Incorporated Thermoelectric device having a plurality of sealing materials
US11152557B2 (en) 2019-02-20 2021-10-19 Gentherm Incorporated Thermoelectric module with integrated printed circuit board

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AU555193B2 (en) * 1980-11-10 1986-09-18 Edwin James Freeburn Cooling device
US4650919A (en) * 1984-08-01 1987-03-17 The United States Of America As Represented By The United States Department Of Energy Thermoelectric generator and method for the fabrication thereof

Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2942051A (en) * 1958-03-11 1960-06-21 Whirlpool Co Refrigerating apparatus
US2997514A (en) * 1958-03-11 1961-08-22 Whirlpool Co Refrigerating apparatus
US3006979A (en) * 1959-04-09 1961-10-31 Carrier Corp Heat exchanger for thermoelectric apparatus
US3083248A (en) * 1961-07-28 1963-03-26 Gen Electric Thermoelectric module
US3110628A (en) * 1960-03-02 1963-11-12 Westinghouse Electric Corp Thermoelectric assembly
US3111813A (en) * 1958-12-04 1963-11-26 Siemens Elektrogeraete Gmbh Peltier cooling apparatus
US3167925A (en) * 1963-03-14 1965-02-02 Thore M Elfving Thermoelectric cooling device
US3225549A (en) * 1962-04-18 1965-12-28 Thore M Elfving Thermoelectric cooling device
US3296033A (en) * 1961-10-04 1967-01-03 Westinghouse Electric Corp Semiconductor device
US3412566A (en) * 1965-06-21 1968-11-26 Borg Warner Thermoelectric apparatus
US3450572A (en) * 1962-04-24 1969-06-17 Philips Corp Method of assembling a peltier battery with heat exchanger and device so constructed

Patent Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2942051A (en) * 1958-03-11 1960-06-21 Whirlpool Co Refrigerating apparatus
US2997514A (en) * 1958-03-11 1961-08-22 Whirlpool Co Refrigerating apparatus
US3111813A (en) * 1958-12-04 1963-11-26 Siemens Elektrogeraete Gmbh Peltier cooling apparatus
US3006979A (en) * 1959-04-09 1961-10-31 Carrier Corp Heat exchanger for thermoelectric apparatus
US3110628A (en) * 1960-03-02 1963-11-12 Westinghouse Electric Corp Thermoelectric assembly
US3083248A (en) * 1961-07-28 1963-03-26 Gen Electric Thermoelectric module
US3296033A (en) * 1961-10-04 1967-01-03 Westinghouse Electric Corp Semiconductor device
US3225549A (en) * 1962-04-18 1965-12-28 Thore M Elfving Thermoelectric cooling device
US3450572A (en) * 1962-04-24 1969-06-17 Philips Corp Method of assembling a peltier battery with heat exchanger and device so constructed
US3167925A (en) * 1963-03-14 1965-02-02 Thore M Elfving Thermoelectric cooling device
US3412566A (en) * 1965-06-21 1968-11-26 Borg Warner Thermoelectric apparatus

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5865031A (en) * 1996-05-29 1999-02-02 Aisin Seiki Kabushiki Kaisha Heat exchange device having thermoelectric device
EP0820107A3 (en) * 1996-06-25 1999-04-21 Technova Inc. Thermoelectric apparatus
AU717063B2 (en) * 1996-06-25 2000-03-16 Engineering Advancement Association Of Japan Thermoelectric apparatus
EP0820107A2 (en) * 1996-06-25 1998-01-21 Technova Inc. Thermoelectric apparatus
CN1128478C (en) * 1996-06-25 2003-11-19 株式会社泰库诺瓦 Thermoelectric apparatus
EP0838867A2 (en) * 1996-10-22 1998-04-29 Thermovonics Co., Ltd Thermoelectric module
EP0838867A3 (en) * 1996-10-22 1999-03-31 Thermovonics Co., Ltd Thermoelectric module
US6034317A (en) * 1996-10-22 2000-03-07 Thermovonics Co., Ltd. Thermoelectric module
AU739795B2 (en) * 1996-10-22 2001-10-18 Thermovonics Co., Ltd. Thermoelectric module
AU759584B2 (en) * 1996-12-27 2003-04-17 Thermovonics Co., Ltd. Storage box apparatus
US6282907B1 (en) * 1999-12-09 2001-09-04 International Business Machines Corporation Thermoelectric cooling apparatus and method for maximizing energy transport
US6686532B1 (en) * 2000-03-24 2004-02-03 Chris Macris Heat sink/heat spreader structures and methods of manufacture
US20050072165A1 (en) * 2001-02-09 2005-04-07 Bell Lon E. Thermoelectrics utilizing thermal isolation
US20100031988A1 (en) * 2001-02-09 2010-02-11 Bell Lon E High power density thermoelectric systems
US8495884B2 (en) 2001-02-09 2013-07-30 Bsst, Llc Thermoelectric power generating systems utilizing segmented thermoelectric elements
US8079223B2 (en) 2001-02-09 2011-12-20 Bsst Llc High power density thermoelectric systems
US7231772B2 (en) * 2001-02-09 2007-06-19 Bsst Llc. Compact, high-efficiency thermoelectric systems
US20040031514A1 (en) * 2001-02-09 2004-02-19 Bell Lon E. Thermoelectric power generation systems
US7942010B2 (en) 2001-02-09 2011-05-17 Bsst, Llc Thermoelectric power generating systems utilizing segmented thermoelectric elements
US20040076214A1 (en) * 2001-02-09 2004-04-22 Bell Lon K High power density thermoelectric systems
US20110162389A1 (en) * 2001-02-09 2011-07-07 Bsst, Llc Thermoelectrics utilizing convective heat flow
US20050210883A1 (en) * 2001-02-09 2005-09-29 Bell Lon E Efficiency thermoelectrics utilizing convective heat flow
US20030005706A1 (en) * 2001-02-09 2003-01-09 Bell Lon E Compact, high-efficiency thermoelectric systems
US7273981B2 (en) 2001-02-09 2007-09-25 Bsst, Llc. Thermoelectric power generation systems
US7946120B2 (en) 2001-02-09 2011-05-24 Bsst, Llc High capacity thermoelectric temperature control system
US6959555B2 (en) 2001-02-09 2005-11-01 Bsst Llc High power density thermoelectric systems
US20050263177A1 (en) * 2001-02-09 2005-12-01 Bell Lon E High power density thermoelectric systems
US7926293B2 (en) 2001-02-09 2011-04-19 Bsst, Llc Thermoelectrics utilizing convective heat flow
US8375728B2 (en) 2001-02-09 2013-02-19 Bsst, Llc Thermoelectrics utilizing convective heat flow
US7111465B2 (en) 2001-02-09 2006-09-26 Bsst Llc Thermoelectrics utilizing thermal isolation
US7587902B2 (en) 2001-02-09 2009-09-15 Bsst, Llc High power density thermoelectric systems
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US7164077B2 (en) 2001-04-09 2007-01-16 Research Triangle Institute Thin-film thermoelectric cooling and heating devices for DNA genomic and proteomic chips, thermo-optical switching circuits, and IR tags
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US8069674B2 (en) 2001-08-07 2011-12-06 Bsst Llc Thermoelectric personal environment appliance
US20080250794A1 (en) * 2001-08-07 2008-10-16 Bell Lon E Thermoelectric personal environment appliance
US20030029173A1 (en) * 2001-08-07 2003-02-13 Bell Lon E. Thermoelectric personal environment appliance
US8490412B2 (en) 2001-08-07 2013-07-23 Bsst, Llc Thermoelectric personal environment appliance
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US20030099279A1 (en) * 2001-10-05 2003-05-29 Research Triangle Insitute Phonon-blocking, electron-transmitting low-dimensional structures
US7342169B2 (en) 2001-10-05 2008-03-11 Nextreme Thermal Solutions Phonon-blocking, electron-transmitting low-dimensional structures
US7932460B2 (en) 2001-10-24 2011-04-26 Zt Plus Thermoelectric heterostructure assemblies element
US20040261829A1 (en) * 2001-10-24 2004-12-30 Bell Lon E. Thermoelectric heterostructure assemblies element
US20110220163A1 (en) * 2001-10-24 2011-09-15 Zt Plus Thermoelectric heterostructure assemblies element
EP1495498A4 (en) * 2002-04-15 2008-03-05 Nextreme Thermal Solutions Inc Thermoelectric device utilizing double-sided peltier junctions and method of making the device
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US7235735B2 (en) * 2002-04-15 2007-06-26 Nextreme Thermal Solutions, Inc. Thermoelectric devices utilizing double-sided Peltier junctions and methods of making the devices
WO2004019379A2 (en) * 2002-08-23 2004-03-04 Bsst, Llc Compact, high-efficiency thermoelectric systems
WO2004019379A3 (en) * 2002-08-23 2005-07-14 Bsst Llc Compact, high-efficiency thermoelectric systems
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US7638705B2 (en) 2003-12-11 2009-12-29 Nextreme Thermal Solutions, Inc. Thermoelectric generators for solar conversion and related systems and methods
US20060243317A1 (en) * 2003-12-11 2006-11-02 Rama Venkatasubramanian Thermoelectric generators for solar conversion and related systems and methods
US7997087B2 (en) 2004-10-22 2011-08-16 Rama Venkatasubramanian Thin film thermoelectric devices for hot-spot thermal management in microprocessors and other electronics
US20060086118A1 (en) * 2004-10-22 2006-04-27 Research Triangle Insitute Thin film thermoelectric devices for hot-spot thermal management in microprocessors and other electronics
US20090282852A1 (en) * 2004-10-22 2009-11-19 Nextreme Thermal Solutions, Inc. Thin Film Thermoelectric Devices for Hot-Spot Thermal Management in Microprocessors and Other Electronics
US8063298B2 (en) 2004-10-22 2011-11-22 Nextreme Thermal Solutions, Inc. Methods of forming embedded thermoelectric coolers with adjacent thermally conductive fields
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US20070089773A1 (en) * 2004-10-22 2007-04-26 Nextreme Thermal Solutions, Inc. Methods of Forming Embedded Thermoelectric Coolers With Adjacent Thermally Conductive Fields and Related Structures
US20060101829A1 (en) * 2004-11-18 2006-05-18 Stmicroelectronics S.A. Self-cooled vertical electronic component
US20070028956A1 (en) * 2005-04-12 2007-02-08 Rama Venkatasubramanian Methods of forming thermoelectric devices including superlattice structures of alternating layers with heterogeneous periods and related devices
US7847179B2 (en) 2005-06-06 2010-12-07 Board Of Trustees Of Michigan State University Thermoelectric compositions and process
US20060289050A1 (en) * 2005-06-22 2006-12-28 Alley Randall G Methods of forming thermoelectric devices including electrically insulating matrixes between conductive traces and related structures
US7838759B2 (en) 2005-06-22 2010-11-23 Nextreme Thermal Solutions, Inc. Methods of forming thermoelectric devices including electrically insulating matrices between conductive traces
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US20100236595A1 (en) * 2005-06-28 2010-09-23 Bell Lon E Thermoelectric power generator for variable thermal power source
US7679203B2 (en) 2006-03-03 2010-03-16 Nextreme Thermal Solutions, Inc. Methods of forming thermoelectric devices using islands of thermoelectric material and related structures
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US7952015B2 (en) 2006-03-30 2011-05-31 Board Of Trustees Of Michigan State University Pb-Te-compounds doped with tin-antimony-tellurides for thermoelectric generators or peltier arrangements
US20100326092A1 (en) * 2006-08-02 2010-12-30 Lakhi Nandlal Goenka Heat exchanger tube having integrated thermoelectric devices
US9366461B2 (en) 2007-05-25 2016-06-14 Gentherm Incorporated System and method for climate control within a passenger compartment of a vehicle
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US20090178700A1 (en) * 2008-01-14 2009-07-16 The Ohio State University Research Foundation Thermoelectric figure of merit enhancement by modification of the electronic density of states
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US20090269584A1 (en) * 2008-04-24 2009-10-29 Bsst, Llc Thermoelectric materials combining increased power factor and reduced thermal conductivity
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US8640466B2 (en) 2008-06-03 2014-02-04 Bsst Llc Thermoelectric heat pump
US8701422B2 (en) 2008-06-03 2014-04-22 Bsst Llc Thermoelectric heat pump
US10473365B2 (en) 2008-06-03 2019-11-12 Gentherm Incorporated Thermoelectric heat pump
US20090293499A1 (en) * 2008-06-03 2009-12-03 Bell Lon E Thermoelectric heat pump
US20100024859A1 (en) * 2008-07-29 2010-02-04 Bsst, Llc. Thermoelectric power generator for variable thermal power source
US8613200B2 (en) 2008-10-23 2013-12-24 Bsst Llc Heater-cooler with bithermal thermoelectric device
US20100101239A1 (en) * 2008-10-23 2010-04-29 Lagrandeur John Multi-mode hvac system with thermoelectric device
US20120012146A1 (en) * 2009-04-02 2012-01-19 Avl List Gmbh Thermoelectric generator unit
US9466778B2 (en) * 2009-04-02 2016-10-11 Avl List Gmbh Thermoelectric generator unit
US20100258154A1 (en) * 2009-04-13 2010-10-14 The Ohio State University Thermoelectric alloys with improved thermoelectric power factor
US20110220162A1 (en) * 2010-03-15 2011-09-15 Siivola Edward P Thermoelectric (TE) Devices/Structures Including Thermoelectric Elements with Exposed Major Surfaces
US9601677B2 (en) 2010-03-15 2017-03-21 Laird Durham, Inc. Thermoelectric (TE) devices/structures including thermoelectric elements with exposed major surfaces
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US9293680B2 (en) 2011-06-06 2016-03-22 Gentherm Incorporated Cartridge-based thermoelectric systems
US9006557B2 (en) 2011-06-06 2015-04-14 Gentherm Incorporated Systems and methods for reducing current and increasing voltage in thermoelectric systems
US9306143B2 (en) 2012-08-01 2016-04-05 Gentherm Incorporated High efficiency thermoelectric generation
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DE1904492A1 (en) 1969-09-18
CH479964A (en) 1969-10-15
AT284231B (en) 1970-09-10

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