[미국특허]
Steam power plant with high-temperature heat reservoir
원문보기
IPC분류정보
국가/구분
United States(US) Patent
등록
국제특허분류(IPC7판)
F01K-013/02
F01K-023/10
F01K-025/08
F01K-007/22
F01K-013/00
F01K-007/40
F02C-006/18
F24J-002/07
F24J-002/42
F03G-006/06
F22B-001/00
F22B-001/18
F01K-007/42
F01K-007/44
F01K-003/00
F03G-007/04
F01K-003/16
출원번호
US-0668222
(2012-11-03)
등록번호
US-9677429
(2017-06-13)
우선권정보
EP-11187636 (2011-11-03)
발명자
/ 주소
Kitzmann, Ewald
Schüle, Volker
Heintz, Julia
Ewert, Angie
출원인 / 주소
GENERAL ELECTRIC TECHNOLOGY GMBH
대리인 / 주소
Vivenzio, Marc A.
인용정보
피인용 횟수 :
0인용 특허 :
9
초록▼
A steam power plant is suggested having, parallel to the high-pressure preheater passage (VW4 to VW6), a heat reservoir (A) which is loaded with preheated condensate in weak-load times. This preheated condensate is taken from the heat reservoir (A) for generating peak-load and inserted downstream of
A steam power plant is suggested having, parallel to the high-pressure preheater passage (VW4 to VW6), a heat reservoir (A) which is loaded with preheated condensate in weak-load times. This preheated condensate is taken from the heat reservoir (A) for generating peak-load and inserted downstream of the high-pressure preheater passage (VW4 to VW6) into the condensate line (19.2) resp. the feed water container (8). Thus it is possible to quickly control the power generation of the power plant in a wide range without significantly having to change the heating output of the boiler of the steam generator (1). A steam power plant equipped according to the invention can thus be operated with bigger load modifications and also provide more control energy.
대표청구항▼
1. A steam power plant comprising: a steam generator to produce steam,a turbine powered by the steam,a condenser to cool steam from the turbine to produce feed water,a feed water container receiving the feed water,at least one high-pressure preheater to heat the feed water from the feed water contai
1. A steam power plant comprising: a steam generator to produce steam,a turbine powered by the steam,a condenser to cool steam from the turbine to produce feed water,a feed water container receiving the feed water,at least one high-pressure preheater to heat the feed water from the feed water container,a first condensate line circulating the feed water from the feed water container through the at least one high-pressure preheater to the steam generator,a second condensate line disposed fluidly in parallel with the at least one high-pressure preheater to bypass at least a portion of the feed water around the at least one high-pressure preheater, the second condensate line including a first heat exchanger to heat a fluid, anda heat reservoir fluidly coupled in series with the first heat exchanger to store the fluid heated by the first heat exchanger,wherein the first heat exchanger is thermally coupled to the second condensate line to heat the at least a portion of the feed water passing through the second condensate line; andwherein the first heat exchanger is supplied with live steam from the steam generator and the live steam from the steam generator is extracted upstream of the turbine. 2. The steam power plant according to claim 1, wherein the first heat exchanger is fluidly coupled to the steam generator to provide steam directly to the first heat exchanger to heat the fluid passing through the first heat exchanger. 3. The steam power plant according to claim 2, wherein the first heat exchanger is fluidly coupled to the feed water container, wherein the first heat exchanger cools the steam provided from the steam generator to the feed water container. 4. The steam power plant according to according to claim 1, further comprising a third condensate line fluidly disposed in parallel to the at least one high-pressure preheater. 5. The steam power plant according to claim 1, further comprising a pump fluidly coupled to the second condensate line. 6. The steam power plant according to claim 1, further comprising a first bypass line fluidly coupled in parallel to the heat reservoir and the first heat exchanger and fluidly coupled to the second condensate line. 7. The steam power plant according to claim 6, further comprising a second bypass line fluidly coupled in parallel to the heat reservoir, fluidly coupled in series to the first heat exchanger, and fluidly coupled to the second condensate line. 8. The steam power plant according to claim 7, further comprising: a flow control valve fluidly coupled in one or more of the following configurations: between the feed water container and the first heat exchanger,between the first heat exchanger and the heat reservoir,between the heat reservoir and the steam generator,in the first bypass-line,in the second bypass-line, andin a third condensate line fluidly disposed in parallel to the at least one high-pressure preheater. 9. The steam power plant according to claim 1, wherein the heat reservoir is pressureless and uses solid materials to store thermal energy therein. 10. The steam power plant according to claim 1, wherein the heat reservoir is a concrete reservoir. 11. The steam power plant according to claim 1, wherein the operating temperature of the heat reservoir is higher than a temperature of the feed water from the feed water container. 12. The steam power plant according to claim 1, wherein the first heat exchanger is a condensation heat exchanger with a desuperheater and a subcooler. 13. The steam power plant according to claim 12, wherein the desuperheater is supplied with the live steam. 14. The steam power plant according to claim 12, wherein the subcooler is connected to the feed water container through a pump.
Gilli Paul V. (Obere Teichstrasse 21/i 8010 Graz ATX) Beckmann Georg (Vienna ATX), Method and apparatus for peak-load coverage and stop-gap reserve in steam power plants.
Yamada Akira (Hitachi JPX) Hori Yoshinari (Hitachi JPX) Koseki Yasuo (Hitachioota JPX) Kaji Ryuichi (Tokyo JPX), Rankine cycle power generation system and a method for operating the same.
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