THERMOELECTRIC POWER GENERATION WITH COMBINED HYDRONIC HEATING CAPABILITIES
20220113066 ยท 2022-04-14
Inventors
Cpc classification
H10N10/13
ELECTRICITY
F23D14/78
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D14/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An apparatus and method for generating electricity wherein the apparatus comprises a burner operably connected to a fuel source, an energy receiving housing radially surrounding the burner having an energy receiving surface inwardly oriented towards the radian burner, at least one thermoelectric generator applied to an outer surface of the energy receiving housing and a cooler in contact with the at least one thermoelectric generator so as to position the thermoelectric generator between the cooler and the energy receiving housing. The method comprises combusting a fuel with a burner, capturing the heat from the burner with the energy receiving housing and generating electricity with a thermoelectric generator applied to the outer surface of the housing between the housing and a cooler.
Claims
1. An apparatus for generating electricity comprising: a burner operably connected to a fuel source; an energy receiving housing radially surrounding the burner having an energy receiving surface inwardly oriented towards the radian burner; at least one thermoelectric generator applied to an outer surface of the energy receiving housing; and a cooler in contact with the at least one thermoelectric generator so as to position the thermoelectric generator between the cooler and the energy receiving housing.
2. The apparatus of claim 1 wherein the burner comprises a radiant burner.
3. The apparatus of claim 2 wherein the burner extends along a length.
4. The apparatus of claim 3 wherein the burner is substantially tubular.
5. The apparatus of claim 4 wherein the burner and the housing extend along a common axis.
6. The apparatus of claim 1 wherein the housing includes an energy receiving interior surface.
7. The apparatus of claim 6 wherein the energy receiving surface has a dark color.
8. The apparatus of claim 6 wherein the housing has a substantially rectangular cross section.
9. The apparatus of claim 6 wherein the housing is formed of a high thermal conductivity material.
10. The apparatus of claim 9 wherein the housing is formed of a material selected from the group consisting of copper and aluminum.
11. The apparatus of claim 1 wherein the at least one thermoelectric generator is selected to be substantially planar and positioned between relatively hot and cold surfaces.
12. The apparatus of claim 1 further comprising at least one thermoelectric generator and cooler on each side of the housing.
13. The apparatus of claim 1 wherein the cooler comprises a heat exchanger operable to transfer heat from the thermoelectric generator to a fluid.
14. The apparatus of claim 13 further comprising a closed fluid loop cooling circuit operably coupled to the cooler so as to remove heat therefrom.
15. The apparatus of claim 14 further comprising a secondary heater adapted to increase the temperature of the fluid with a secondary burner.
16. The apparatus of claim 15 wherein said secondary heater comprises a tubular radiant heater burner with a fluid filled cooling jacket therearound.
17. The apparatus of claim 14 wherein the fluid loop includes a pump.
18. The apparatus of claim 14 wherein the fluid loop includes a waste heat exchanger to discharge heat from the loop to an environment.
19. The apparatus of claim 14 wherein the fluid loop includes a temperature valve controlled adapted to shut off the gas supply to the burner when the temperature in the fluid loop reaches a predetermined over heat temperature.
20. A method for generating electricity comprising: combusting a fuel with a burner; capturing the heat from the burner with an energy receiving housing radially surrounding the burner; and generating electricity with a thermoelectric generator applied to the outer surface of the housing between the housing and a cooler.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The accompanying drawings constitute part of the disclosure. Each drawing illustrates exemplary aspects wherein similar characters of reference denote corresponding parts in each view,
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DETAILED DESCRIPTION
[0017] Aspects of the present disclosure are now described with reference to exemplary apparatuses, methods and systems. Referring to
[0018] As illustrated in
[0019] As illustrated in
[0020] The apparatus also includes a plurality of return water lines 30 extending from thermoelectric cooling heat exchangers from the interior of flue 26 to a common collection manifold 32 in the cabinet 12. The collection manifold 32 is in fluidic communication with a pump 34 which is powered by an electric motor 36. The pump 34 is furthermore connected to a cooling loop 38. As illustrated in
[0021] Turning now to
[0022] Turning now to
[0023] Furthermore, each of the cooling heat exchangers 60 includes thermoelectric generator modules 70 sandwiched between the cooling heat exchanger and the outer surface 56 of the exhaust stack 52. In operation, it will be appreciated that while the burner 20 is in operation, the exhaust stack 52 will be hot due to the absorbed infrared energy and exhaust gasses from the burner 20 and the cooling heat exchanger will be maintained cool due to the cooling loop 30 as set out above. The thermoelectric generator modules 70 will therefore be operable to generate an electric current due to the temperature difference thereacross. It will be appreciated that any thermoelectric generator may be utilized in the present apparatus and that in particular solid state planar devices capable of withstanding the temperature of the exhaust gasses are particularly useful. Each of the thermoelectric generators 70 is electrically coupled through wiring 72 to a collection point such as a controller or battery 74 for use thereafter. With reference to
[0024] In operation, the controller 74 may be connected to the valves operating the burner as is known to control the operation of the burner and the cooling loop. The controller may initially activate the burner to begin burning. The output of the burner 20 and therefore the heat radiated by the emitter 58 will be controlled by a valve to the burner. Optionally, such valves may be located in the reservoir 42 so as to monitor the temperature of the cooling fluid so to ensure the system does not overheat by shutting down when a predetermined temperature is reached. Once the emitter 58 begins radiating infrared energy to the exhaust stack 52 which is absorbed thereby, a temperature difference will be created between the exhaust stack 52 and the heat exchanger 60. The temperature difference between the exhaust stack 52 and the cooling heat exchanger 60 will generate electricity at each of the thermoelectric modules and generators for collection by the controller and/or electric motor 32. The pump may begin operation immediately upon the thermoelectric generators 70 producing electricity so as to cool the heat exchangers 60. Any surplus electricity generated by the apparatus may then be provided for external use by a user.
[0025] It will be appreciated that any combustion fuel may be utilized in the present apparatus as is available. It will also be appreciated that any desired cooling fluid may also be utilized, including without limitation, water, glycol or refrigerants.
[0026] Although a single burner and set of thermoelectric generators are illustrated in
[0027] While specific embodiments have been described and illustrated, such embodiments should be considered illustrative only and not as limiting the disclosure as construed in accordance with the accompanying claims.