Thermoelectric generator
Disclosed are apparatus and methodology for constructing thermoelectric devices (TEDs). N-type elements are paired with P-type elements in an array of pairs between substrates. The paired elements are electrically connected in series by various techniques including brazing for hot side and/or also cold side connections, and soldering for cold side connections while being thermally connected in parallel. In selected embodiments, electrical and mechanical connections of the elements may be made solely by mechanical pressure.
1. A charging circuit for charging a storage device, comprising:
a thermoelectric generator module for converting thermal energy to electrical energy based on temperature differences between portions of the module based on the Peltier/Seebeck effect, comprising:
a plurality of N-type oxide ceramic elements comprising an N-type ceramic material;
a plurality of P-type oxide ceramic elements comprising a P-type ceramic material and respectively paired with said plurality of N-type elements;
a pair of supporting ceramic substrates, supporting a plurality of conductive traces thereon, and with said paired N-type and P-type elements received on selected of said conductive traces so as to form an array of such pairs between said substrates, with said paired elements electrically connected in series by said conductive traces and thermally connected in parallel relative to said substrates; and
a pair of output terminals provided on at least one of said substrates and configured to provide an output voltage from said module; and
a voltage converter electrically connected with at least one of the pair of output terminals and configured to receive the output voltage from said module and convert said module output voltage to a relatively higher output voltage that is suitable for charging the storage device;
wherein the plurality of N-type elements the plurality of P-type elements comprise a plurality of porosity layers that are spaced apart in a heat-flow direction perpendicular to said generally planar ceramic substrates, the plurality of porosity layers having thicknesses in the heat-flow direction that range from 1 micron to 100 microns, and wherein the plurality of porosity layers comprise pores formed inside the N-type ceramic material and P-type ceramic material.
2. The charging circuit as in claim 1 , wherein said voltage converter is configured to regulate said relatively higher output voltage to 2.4 volts.
3. The charging circuit as in claim 1 , wherein said plurality of N-type elements and said P-type elements of said thermoelectric generator module further comprise non-uniform concentrations of at least one of metallization or chemical composition of said N-type elements and said P-type elements.
4. The charging circuit as in claim 1 , wherein said substrates of said thermoelectric generator module comprise planar constructions capturing said array of paired elements between said substrates.
5. The charging circuit as in claim 4 , wherein said conductive traces comprise complementary patterns of screen-printed, fired metallizations formed on said substrates.
6. The charging circuit as in claim 1 , further including:
potting material captured between said substrates of said thermoelectric generator module in between said array pairs; and
hermetic sealing material surrounding the peripheral edges of said potting material, for hermetically sealing said module.
7. The charging circuit as in claim 1 , wherein the thicknesses in the heat-flow direction of the plurality of porosity layers range from 2 microns to 100 microns.
8. The charging circuit as in claim 1 , wherein the thicknesses in the heat-flow direction of the plurality of porosity layers range from 10 microns to 100 microns.
9. The charging circuit as in claim 1 , wherein the thicknesses in the heat-flow direction of the plurality of porosity layers range from 20 microns to 100 microns.
10. Methodology for charging a storage device, comprising:
providing a thermoelectric generator module for converting thermal energy to electrical energy based on temperature differences between portions of the module based on the Peltier/Seebeck effect, comprising:
a plurality of N-type oxide ceramic elements comprising an N-type ceramic material;
a plurality of P-type oxide ceramic elements comprising a P-type ceramic material and respectively paired with said plurality of N-type elements; and
a pair of supporting ceramic substrates, supporting a plurality of conductive traces thereon, and with said paired N-type and P-type elements received on selected of said conductive traces so as to form an array of such pairs between said substrates, with said paired elements electrically connected in series by said conductive traces and thermally connected in parallel relative to said substrates; and
a pair of output terminals provided on at least one of said substrates and configured to provide an output voltage from said module;
wherein the plurality of N-type elements and the plurality of P-type elements comprise a plurality of porosity layers that are spaced apart in a heat-flow direction perpendicular to said generally planar ceramic substrates, the plurality of porosity layers having thicknesses in the heat-flow direction that range from 1 micron to 100 microns, and wherein the plurality of porosity layers comprise pores formed inside the N-type ceramic material and P-type ceramic material; and
charging the storage device using a voltage converter that is electrically connected with at least one of the pair of output terminals and configured to receive the output voltage from said module and convert said module output voltage to a relatively higher output voltage that is suitable for charging the storage device.
11. The methodology as in claim 10 , further including regulating said converter higher output voltage said relatively higher output voltage to 2.4 volts.
12. The methodology as in claim 10 , wherein said plurality of N-type elements and said P-type elements of said thermoelectric generator module further comprise non-uniform concentrations of at least one of metallization or chemical composition of said elements.
13. The methodology as in claim 10 , wherein said substrates of said thermoelectric generator module comprise planar constructions capturing said array of paired elements between said substrates, and said conductive traces comprise complementary patterns of screen-printed, fired metallizations formed on said substrates.
14. The methodology as in claim 10 , further including:
providing potting material captured between said substrates of said thermoelectric generator module in between said array pairs; and
hermetically sealing said module.
15. The methodology as in claim 10 , wherein the thicknesses in the heat-flow direction of the plurality of porosity layers range from 2 microns to 100 microns.
16. The methodology as in claim 10 , wherein the thicknesses in the heat-flow direction of the plurality of porosity layers range from 10 microns to 100 microns.
17. The methodology as in claim 10 , wherein the thicknesses in the heat-flow direction of the plurality of porosity layers range from 20 microns to 100 microns.