IP Library Granted Patent US 8,575,788
Granted Patent B2
US 8,575,788 · App. 13/029,523 · Granted Nov 5, 2013

Method of operating a thermoelectric generator

Inventors: Michael G. Reynolds (Troy, MI); Joshua D. Cowgill (Hartland, MI)
Assignee: GM Global Technology Operations LLC
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Quick Facts
Patent No.
US 8,575,788
App. No.
13/029,523
Granted
Nov 5, 2013
Kind
B2
Abstract

A method for operating a thermoelectric generator supplying a variable-load component includes commanding the variable-load component to operate at a first output and determining a first load current and a first load voltage to the variable-load component while operating at the commanded first output. The method also includes commanding the variable-load component to operate at a second output and determining a second load current and a second load voltage to the variable-load component while operating at the commanded second output. The method includes calculating a maximum power output of the thermoelectric generator from the determined first load current and voltage and the determined second load current and voltage, and commanding the variable-load component to operate at a third output. The commanded third output is configured to draw the calculated maximum power output from the thermoelectric generator.

Claims (45)

1. A method for operating a thermoelectric generator supplying power to a variable-load component, comprising:

commanding the variable-load component to operate at a first output;

determining a first load current and a first load voltage to the variable-load component while operating at the commanded first output;

commanding the variable-load component to operate at a second output;

determining a second load current and a second load voltage to the variable-load component while operating at the commanded second output;

calculating a maximum power output of the thermoelectric generator from the determined first load current and voltage and the determined second load current and voltage; and

commanding the variable-load component to operate at a third output, wherein the commanded third output is configured to draw the calculated maximum power output from the thermoelectric generator.

2. The method of claim 1 ,

wherein calculating the maximum power output of the thermoelectric generator includes calculating an equivalent voltage of the thermoelectric generator; and

wherein commanding the variable-load component to operate at the commanded third output includes calculating a third load voltage, wherein the third load voltage is substantially twice the calculated equivalent voltage of the thermoelectric generator, and the commanded third output is configured to cause the variable-load component to operate at the calculated third load voltage.

3. The method of claim 2 , wherein the variable-load component is a DC-DC converter.

4. The method of claim 3 , wherein the commanded first output is a first output current, the commanded second output is a second output current, and the commanded third output is a third output current.

5. The method of claim 4 , wherein the commanded first output current and the commanded second output current are separated by at least a predetermined command differential.

6. The method of claim 5 , further comprising:

comparing the commanded third load voltage to a minimum load voltage constraint and a maximum load voltage constraint;

if the commanded third load voltage is between the minimum load voltage constraint and the maximum load voltage constraint, commanding the DC-DC converter to operate at the third output current;

if the commanded third load voltage is below the minimum load voltage constraint, commanding the DC-DC converter to operate at a fourth output current, wherein the commanded fourth output current is configured to cause the DC-DC converter to operate at the minimum load voltage constraint; and

if the commanded third load voltage is above the maximum load voltage constraint, commanding the DC-DC converter to operate at a fifth output current, wherein the commanded fifth output current is configured to cause the DC-DC converter to operate at the maximum load voltage constraint.

7. A method for operating a thermoelectric generator supplying power to a variable-load component, comprising:

commanding the variable-load component to operate at a first output current;

determining a first load current and a first load voltage to the variable-load component while operating at the commanded first output current;

commanding the variable-load component to operate at a second output current, wherein the commanded first output current and the commanded second output current are separated by at least a predetermined command differential;

determining a second load current and a second load voltage to the variable-load component while operating at the commanded second output current;

calculating a maximum power output of the thermoelectric generator from the determined first load current and voltage and the determined second load current and voltage; and

commanding the variable-load component to operate at a third output current, wherein the commanded third output current is configured to draw the calculated maximum power output from the thermoelectric generator.

8. The method of claim 7 , wherein the variable-load component is a DC-DC converter.

9. The method of claim 8 ,

wherein calculating the maximum power output of the thermoelectric generator includes calculating an equivalent voltage of the thermoelectric generator; and

wherein commanding the variable-load component to operate at the commanded third output current includes calculating a third load voltage, wherein the third load voltage is substantially twice the calculated equivalent voltage of the thermoelectric generator, and the commanded third output current is configured to cause the variable-load component to operate at the calculated third load voltage.

10. The method of claim 9 , further comprising:

comparing the commanded third load voltage to a minimum load voltage constraint and a maximum load voltage constraint;

if the commanded third load voltage is between the minimum load voltage constraint and the maximum load voltage constraint, commanding the DC-DC converter to operate at the third output current;

if the commanded third load voltage is below the minimum load voltage constraint, commanding the DC-DC converter to operate at a fourth output current, wherein the commanded fourth output current is configured to cause the DC-DC converter to operate at the minimum load voltage constraint; and

if the commanded third load voltage is above the maximum load voltage constraint, commanding the DC-DC converter to operate at a fifth output current, wherein the commanded fifth output current is configured to cause the DC-DC converter to operate at the maximum load voltage constraint.

11. A method for operating a thermoelectric generator supplying power to a variable-load component, comprising:

commanding the variable-load component to operate at a first output;

determining a first load current and a first load voltage to the variable-load component while operating at the commanded first output;

commanding the variable-load component to operate at a second output, wherein the commanded first output and the commanded second output are separated by at least a predetermined command differential;

determining a second load current and a second load voltage to the variable-load component while operating at the commanded second output;

calculating a maximum power output of the thermoelectric generator from the determined first load current and voltage and the determined second load current and voltage, including calculating an equivalent voltage of the thermoelectric generator;

commanding the variable-load component to operate at a third output, wherein the commanded third output is configured to draw the calculated maximum power output from the thermoelectric generator, wherein commanding the variable-load component to operate at the commanded third output includes calculating a third load voltage, wherein the third load voltage is substantially twice the calculated equivalent voltage of the thermoelectric generator, and the commanded third output is configured to cause the variable-load component to operate at the calculated third load voltage; and

comparing the commanded third load voltage to a minimum load voltage constraint and a maximum load voltage constraint, and:

if the commanded third load voltage is between the minimum load voltage constraint and the maximum load voltage constraint, commanding the DC-DC converter to operate at the third output;

if the commanded third load voltage is below the minimum load voltage constraint, commanding the DC-DC converter to operate at a fourth output, wherein the commanded fourth output is configured to cause the DC-DC converter to operate at the minimum load voltage constraint; and

if the commanded third load voltage is above the maximum load voltage constraint, commanding the DC-DC converter to operate at a fifth output, wherein the commanded fifth output is configured to cause the DC-DC converter to operate at the maximum load voltage constraint.

Assignments (4)
CONFIRMATORY LICENSE Recorded Mar 31, 2025
From: GENERAL MOTORS GLOBAL PROPULSION SYSTEMS
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 070676/0303 →
RELEASE OF SECURITY INTEREST Recorded Nov 7, 2014
From: WILMINGTON TRUST COMPANY
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 034287/0159 →
SECURITY AGREEMENT Recorded Jun 28, 2012
From: GM GLOBAL TECHNOLOGY OPERATIONS LLC
To: WILMINGTON TRUST COMPANY
Reel/Frame 028466/0870 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 17, 2011
From: REYNOLDS, MICHAEL G.; COWGILL, JOSHUA D.
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 025826/0314 →
Continuity (1)
Related Publication 20120212190A1 · Aug 23, 2012