IP Library Granted Patent US 11,946,672
Granted Patent B2
US 11,946,672 · App. 15/734,738 · Granted Apr 2, 2024

Energy recovery from waste heat

Inventor: Kamal Jaffrey (Winchester, MA)
Assignee: Breakthrough Technologies, LLC
F25B21/02F25B25/00H10N10/17F25B2321/0212F25B2321/023F25B2339/047F25B2700/2107
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Quick Facts
Patent No.
US 11,946,672
App. No.
15/734,738
Granted
Apr 2, 2024
Kind
B2
Abstract

An apparatus for waste heat recovery is provided. The apparatus includes a base block disposed adjacent to a heat source, a thermoelectric generator including a first end and a second end, the first end being thermally coupled to the base block and configured to receive heat from the heat source, and a thermoelectric cooler including a third end and a fourth end, the third end being thermally coupled to the second end. The thermoelectric cooler is configured to receive an electric current, which causes the third end to cool and the fourth end to heat such that the third end conducts heat from the second end. Related apparatus, systems, techniques, and articles are also described.

Claims (43)

1. An apparatus comprising:

first, second, and third thermally conductive members;

a body configured to receive heat from a fluid;

at least one thermoelectric generator (TEG) positioned between the first thermally conductive member and the body, having a first end and a second end, the first end of the at least one TEG being thermally coupled to the body and configured to receive at least a portion of the heat from the fluid, and the second end of the at least one TEG being thermally coupled to the first thermally conductive member and configured to deliver heat to the first thermally conductive member;

a first thermoelectric cooler (TEC) having a first end and a second end, the second end of the at least one TEC being thermally coupled to the first thermally conductive member, and the first end of the at least one TEC being thermally coupled to the second thermally conductive member, the at least one TEC being configured to receive electric power, which causes the first end of the at least one TEC to heat to deliver heat to the second thermally conductive member, and the second end of the at least one TEC to cool such that the second end of the at least one TEC extracts heat from the first thermally conductive member;

a second TEC positioned between, and coupled to, the second and third thermally conductive members, the second TEC being configured to remove heat from the third thermally conductive member, and to deliver heat to the second thermally conductive member, and

at least one temperature sensor embedded within the body.

2. The apparatus of claim 1 , wherein the at least one temperature sensor is positioned adjacent to one of the first end and the second end of the at least one TEG, the at least one temperature sensor being configured to measure a temperature of condenser at the position adjacent to one of the first end and the second end of the at least one TEG.

3. The apparatus of claim 1 , wherein the at least one temperature sensor is positioned adjacent to one of the first end and the second end of the at least one TEC, and configured to measure a temperature of condenser at the position adjacent to one of the first end and the second end of the first TEC.

4. An apparatus comprising:

first, second, and third thermally conductive members;

a first thermoelectric cooler (TEC) positioned between, and coupled to, the first and second thermally conductive members, the first TEC being configured to remove heat from the first thermally conductive member, and to deliver heat to the second thermally conductive member;

a second TEC positioned between, and coupled to, the second and third thermally conductive members, the second TEC being configured to remove heat from the third thermally conductive member, and to deliver heat to the second thermally conductive member;

a first body having a first passage extending therethrough, the first passage being configured to receive a fluid, and the first body being configured to receive heat from the fluid

a second body having a second passage extending therethrough, the second passage being configured to receive the fluid from the first passage, and the body being configured to receive heat from the fluid;

a first thermoelectric generator (TEG) positioned between the first thermally conductive member and the first body, the first TEG being configured to receive heat transferred to the first body from the fluid; and

a second TEG positioned between the third thermally conductive member and the second body, the second TEG being configured to receive heat transferred to the second body from the fluid.

5. A method comprising:

delivering a fluid to a body of a heat exchanger;

transferring heat from the fluid to the body;

transferring heat from the body to a first end of a thermoelectric generator (TEG);

delivering a first electric power to a first thermoelectric cooler (TEC) having a first end and a second end, the second end of the first TEC being thermally coupled to a first thermally conductive member, and the first end of the first TEC being thermally coupled to a second thermally conductive member, thereby causing the first end of the first TEC to increase in temperature to deliver heat to the second thermally conductive member, and the second end of the first TEC to decrease in temperature to extract heat from the first thermally conductive member;

delivering a second electric power to a second thermoelectric cooler (TEC) having a first end and a second end, the second end of the second TEC being thermally coupled to a third thermally conductive member, and the first end of the second TEC being thermally coupled to the second thermally conductive member, thereby causing the first end of the second TEC to increase in temperature to deliver heat to the second thermally conductive member and the second end of the second TEC to decrease in temperature to extract heat from the third thermally conductive member;

transferring heat from a second end of the TEG to the first thermally conductive member;

creating a temperature gradient across semiconductors of the TEG, thereby causing the TEG to generate a second electric power; and

measuring a temperature of the heat exchanger at a location adjacent to at least one of the first and second ends of the TEG, and adjusting at least one of a voltage and a current of the first electric power delivered to the first TEC based on the measured temperature.

6. The method of claim 5 , further comprising delivering at least portion of the second electric power to the first TEC.

7. The method of claim 5 , further comprising storing at least a portion of the second electric power within batteries.

8. The method of claim 5 , further comprising measuring a temperature of the heat exchanger at a location adjacent to at least one of the first and second ends of the first TEC, and adjusting at least one of a voltage and a current of the first electric power delivered to the first TEC based on the measure temperature.

9. The method of claim 5 , further comprising delivering at least a portion of the second electric power to a compressor that compresses the fluid.

10. An apparatus comprising:

a base block disposed adjacent to a heat source;

a temperature sensor embedded within the base block and configured to measure a temperature of a surface of the heat source;

first, second, and third thermally conductive members;

a thermoelectric generator (TEG) positioned between the first thermally conductive member and the body, and including a first end and a second end, the first end being thermally coupled to the base block and configured to receive heat from the heat source, and the second end of the TEG being thermally coupled to the first thermally conductive member and configured to deliver heat to the first thermally conductive member;

a first thermoelectric cooler (TEC) positioned between the first and second thermally conductive members, and including a third end and a fourth end, the third end being thermally coupled to the first thermally conductive member, the first thermoelectric cooler being configured to receive an electric current, which causes the third end to cool and the fourth end to heat such that the third end conducts heat from the first thermally conductive member; and

a second thermoelectric cooler (TEC) positioned between, and coupled to, the second and third thermally conductive members, the second TEC being configured to remove heat from the third thermally conductive member and to deliver heat to the second thermally conductive member.

11. The apparatus of claim 10 , wherein the thermoelectric generator is configured to generate electrical power and at least a portion of the generated electrical power is supplied to the first thermoelectric cooler for cooling.

12. The apparatus of claim 10 , wherein the heat source includes a kiln.

13. The apparatus of claim 10 , wherein the base block includes a heat exchanger on a side that faces the heat source.

14. The apparatus of claim 10 comprising a heat sink disposed on the fourth end.

15. The apparatus of claim 10 , wherein the temperature sensor is a thermocouple, a resistance temperature detector (RTD), or an infrared sensor.

16. The apparatus of claim 10 , wherein, in response to detecting that the temperature of the surface of the heat source is greater than a predetermined temperature limit, an electric current is provided to the thermoelectric generator such that the first end is cooled and the second end is heated.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2024
From: FORTISTAR BREAKTHROUGH HOLDINGS LLC, AS COLLATERAL AGENT
To: NOUVEL TECHNOLOGIES INC.
Reel/Frame 069206/0343 →
SECURITY INTEREST Recorded Jun 3, 2024
From: BREAKTHROUGH TECHNOLOGIES, LLC
To: FORTISTAR BREAKTHROUGH HOLDINGS LLC, AS COLLATERAL AGENT
Reel/Frame 067603/0557 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 6, 2022
From: JAFFREY, KAMAL
To: BREAKTHROUGH TECHNOLOGIES, LLC
Reel/Frame 059516/0856 →
Continuity (3)
Provisional Application 62767641 · Nov 15, 2018
Provisional Application 62680038 · Jun 4, 2018
Related Publication 20210262706A1 · Aug 26, 2021
Cited By (1)
US 12,442,569