Thermoelectric energy storage system with an intermediate storage tank and method for storing thermoelectric energy
원문보기
IPC분류정보
국가/구분
United States(US) Patent
등록
국제특허분류(IPC7판)
F01K-001/00
F28D-020/00
F01K-003/12
F28D-020/02
출원번호
US-0325706
(2011-12-14)
등록번호
US-8904793
(2014-12-09)
우선권정보
EP-09163084 (2009-06-18)
발명자
/ 주소
Hemrle, Jaroslav
Kaufmann, Lilian
Mercangoez, Mehmet
출원인 / 주소
ABB Research Ltd.
대리인 / 주소
Buchanan Ingersoll & Rooney PC
인용정보
피인용 횟수 :
10인용 특허 :
1
초록▼
A system and method are provided for storing electric energy in the form of thermal energy. A thermoelectric energy storage system includes a working fluid circuit for circulating a working fluid through a heat exchanger, and a thermal storage medium circuit for circulating a thermal storage medium.
A system and method are provided for storing electric energy in the form of thermal energy. A thermoelectric energy storage system includes a working fluid circuit for circulating a working fluid through a heat exchanger, and a thermal storage medium circuit for circulating a thermal storage medium. The thermal storage medium circuit includes at least one hot storage tank, an intermediate temperature storage tank, and a cold storage tank connected together via the heat exchanger. A proportion of the storage medium is redirected to or from the intermediate storage tank from or to the hot or cold storage tank, joining another proportion which flows directly between the cold and hot storage tank.
대표청구항▼
1. A thermoelectric energy storage system having a charging cycle for providing thermal energy to a thermal storage, and a discharging cycle for generating electricity by retrieving the thermal energy from the thermal storage, the thermoelectric energy storage system comprising: a heat exchanger;a w
1. A thermoelectric energy storage system having a charging cycle for providing thermal energy to a thermal storage, and a discharging cycle for generating electricity by retrieving the thermal energy from the thermal storage, the thermoelectric energy storage system comprising: a heat exchanger;a working fluid circuit for circulating a working fluid through the heat exchanger, the working fluid undergoing a transcritical process during heat transfer in the heat exchanger;a thermal storage medium circuit for circulating a thermal storage medium, the thermal storage medium circuit having at least one hot storage tank, an intermediate temperature storage tank and a cold storage tank connected together via the heat exchanger; andmeans for modifying a rate of flow of the thermal storage medium in the heat exchanger, the means for modifying including an internal stream splitter configured to vary an input rate of flow of the thermal storage medium to the intermediate storage tank, and to vary an output rate of flow of the thermal storage medium from the intermediate storage tank,wherein the means for modifying modifies the rate of flow of the thermal storage medium to minimize a temperature difference between the working fluid and the thermal storage medium during the charging and discharging cycles, andwherein the internal stream splitter is comprised in the heat exchanger, and the internal stream splitter is configured to one of divide and join the stream of the thermal storage medium from the intermediate storage tank. 2. A thermoelectric energy storage system having a charging cycle for providing thermal energy to a thermal storage, and a discharging cycle for generating electricity by retrieving the thermal energy from the thermal storage, the thermoelectric energy storage system comprising: a heat exchanger;a working fluid circuit for circulating a working fluid through the heat exchanger, the working fluid undergoing a transcritical process during heat transfer in the heat exchanger;a thermal storage medium circuit for circulating a thermal storage medium, the thermal storage medium circuit having at least one hot storage tank, an intermediate temperature storage tank and a cold storage tank connected together via the heat exchanger; andmeans for modifying a rate of flow of the thermal storage medium in the heat exchanger, the means for modifying including an internal stream splitter configured to vary an input rate of flow of the thermal storage medium to the intermediate storage tank, and to vary an output rate of flow of the thermal storage medium from the intermediate storage tank, wherein:the means for modifying modifies the rate of flow of the thermal storage medium to minimize a temperature difference between the working fluid and the thermal storage medium during the charging and discharging cycles;the heat exchanger is divided into a first section and a second section, and the heat exchanger is configured for the thermal storage medium to flow through both the first section and the second section;the internal stream splitter is arranged between the first section and second section of the heat exchanger; andthe internal stream splitter is configured to one of divide and join the stream of the thermal storage medium from the intermediate storage tank. 3. A thermoelectric energy storage system having a charging cycle for providing thermal energy to a thermal storage, and a discharging cycle for generating electricity by retrieving the thermal energy from the thermal storage, the thermoelectric energy storage system comprising: a heat exchanger;a working fluid circuit for circulating a working fluid through the heat exchanger, the working fluid undergoing a transcritical process during heat transfer in the heat exchanger;a thermal storage medium circuit for circulating a thermal storage medium, the thermal storage medium circuit having at least one hot storage tank, an intermediate temperature storage tank and a cold storage tank connected together via the heat exchanger; andmeans for modifying a rate of flow of the thermal storage medium in the heat exchanger, the means for modifying including an internal stream splitter configured to vary an input rate of flow of the thermal storage medium to the intermediate storage tank, and to vary an output rate of flow of the thermal storage medium from the intermediate storage tank,wherein the means for modifying modifies the rate of flow of the thermal storage medium to minimize a temperature difference between the working fluid and the thermal storage medium during the charging and discharging cycles, andwherein the heat exchanger is divided into a first section and a second section, and the heat exchanger is configured for the thermal storage medium to flow through both the first section and the second section via the intermediate storage tank. 4. The system according to claim 1, comprising: at least one further intermediate storage tank connected in the thermal storage medium circuit,wherein the heat exchanger has a further internal stream splitter for each further intermediate storage tank. 5. The system according to claim 1, wherein both the charging and discharging cycle run transcritically. 6. A method for storing and retrieving energy in a thermoelectric energy storage system, the method comprising: circulating a thermal storage medium between a hot storage tank, an intermediate storage tank and a cold storage tank connected together via a heat exchanger;charging the system by heating the thermal storage medium;discharging the system by heating a working fluid in a working fluid circuit with heat from the thermal storage medium, the working fluid undergoing a transcritical process during heat transfer in the heat exchanger, and expanding the working fluid through a thermodynamic machine; andmodifying a rate of flow of the thermal storage medium through the heat exchanger by varying the input rate of flow of thermal storage medium to the intermediate storage tank, and by varying the output rate of flow of thermal storage medium from the intermediate storage tank,wherein the step of modifying the rate of flow comprises minimizing the temperature difference between the working fluid and the thermal storage medium during the charging and discharging cycles, andwherein the method comprises one of dividing and joining the stream of the thermal storage medium from the intermediate storage tank. 7. The method according to claim 6, comprising: connecting at least one further intermediate storage tank via the heat exchanger; andfurther one of dividing and joining the stream of the thermal storage medium for each further intermediate storage tank. 8. The method according to claim 6, wherein both the charging and the discharging cycle are performed transcritically. 9. The system according to claim 1, wherein: the heat exchanger is divided into a first section and a second section, and the heat exchanger is configured for the thermal storage medium to flow through both the first section and the second section; andthe stream splitter is arranged between the first section and second section of the heat exchanger. 10. The system according to claim 9, wherein both the charging and discharging cycle run transcritically. 11. The system according to claim 2, wherein both the charging and discharging cycle run transcritically. 12. The system according to claim 3, wherein both the charging and discharging cycle run transcritically. 13. The system according to claim 4, wherein both the charging and discharging cycle run transcritically. 14. A thermoelectric energy storage system having a charging cycle for providing thermal energy to a thermal storage, and a discharging cycle for generating electricity by retrieving the thermal energy from the thermal storage, the thermoelectric energy storage system comprising: a heat exchanger;a working fluid circuit for circulating a working fluid through the heat exchanger, the working fluid undergoing a transcritical process during heat transfer in the heat exchanger;a thermal storage medium circuit for circulating a thermal storage medium, the thermal storage medium circuit having at least one hot storage tank, an intermediate temperature storage tank and a cold storage tank connected together via the heat exchanger; andmeans for modifying a rate of flow of the thermal storage medium in the heat exchanger, the means for modifying including an internal stream splitter configured to vary an input rate of flow of the thermal storage medium to the intermediate storage tank, and to vary an output rate of flow of the thermal storage medium from the intermediate storage tank, andwherein the thermoelectric energy storage system comprises at least one of:a plurality of intermediate storage tanks; anda plurality of cold storage tanks. 15. The method according to claim 7, wherein both the charging and the discharging cycle are performed transcritically. 16. The system according to claim 14, wherein both the charging and discharging cycle run transcritically.
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이 특허에 인용된 특허 (1)
Krause Siegfried (Ostelsheim DEX) Lindner Friedrich (Leinfelden-Echterdingen DEX), Heat storage system with combined heat storage device.
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