Method and device for cooling steam turbine generating facility
원문보기
IPC분류정보
국가/구분
United States(US) Patent
등록
국제특허분류(IPC7판)
F01B-031/08
F01K-019/04
F02C-007/12
F01D-025/12
F01D-005/08
F01D-025/24
F01K-007/04
F01K-007/22
F01K-013/00
출원번호
US-0715933
(2015-05-19)
등록번호
US-9759091
(2017-09-12)
우선권정보
JP-2009-043231 (2009-02-25)
발명자
/ 주소
Ishiguro, Junichi
Fujikawa, Tatsuaki
Tanaka, Yoshinori
Tochitani, Naoto
Nishimoto, Shin
출원인 / 주소
MITSUBISHI HITACHI POWER SYSTEMS, LTD.
대리인 / 주소
Wenderoth, Lind & Ponack, L.L.P.
인용정보
피인용 횟수 :
0인용 특허 :
4
초록▼
A steam turbine of an opposed-current single-casing type has a high pressure turbine part and an intermediate-pressure turbine part housed in a single casing. A dummy ring partitions the high-pressure turbine part and the intermediate-pressure part, and a cooling steam supply path and a cooling stea
A steam turbine of an opposed-current single-casing type has a high pressure turbine part and an intermediate-pressure turbine part housed in a single casing. A dummy ring partitions the high-pressure turbine part and the intermediate-pressure part, and a cooling steam supply path and a cooling steam discharge path are formed in the dummy ring in the radial direction. Extraction steam or discharge steam of the high-pressure turbine part, whose temperature is not less than that of the steam having passed through a first-stage stator blade, is supplied to the cooling steam supply path. The cooling steam is fed throughout the clearance to improve the cooling effect of the dummy ring and a turbine rotor. The cooling steam is then discharged through a cooling steam discharge path to a discharge steam pipe which supplies the steam to a subsequent steam turbine.
대표청구항▼
1. A cooling method for a steam turbine generating facility comprising an opposed-flow single casing steam turbine which is arranged on a higher pressure side of a low pressure turbine and in which a plurality of turbine parts are housed in a single casing and a dummy seal isolates the plurality of
1. A cooling method for a steam turbine generating facility comprising an opposed-flow single casing steam turbine which is arranged on a higher pressure side of a low pressure turbine and in which a plurality of turbine parts are housed in a single casing and a dummy seal isolates the plurality of turbine parts from one another, the steam turbine generating facility cooling the dummy seal and a rotor shaft arranged on an inner side of the dummy seal, the method comprising: supplying cooling steam generated in the steam turbine generating facility to a cooling steam supply path formed in the dummy seal, the cooling steam having a temperature lower than a temperature of working steam which has been supplied to each of the plurality of turbine parts of the opposed-flow single casing steam turbine and has passed through a first-stage stator blade, the cooling steam having a pressure which is not less than a pressure of the working steam which has passed through the first-stage stator blade, andcooling the dummy seal and the rotor shaft by introducing the cooling steam to a plurality of clearances formed between the dummy seal and the rotor shaft via the cooling steam supply path and streaming the cooling steam in the clearances against the steam from an exit of the first-stage stator blade, wherein:the opposed-flow single casing steam turbine includes a first turbine part and a second turbine part which are provided symmetrically in the single casing and are driven by the same working steam;the cooling steam supply path is arranged between a steam inlet part of the first turbine part and a steam inlet part of the second turbine part;in said cooling the dummy seal and the rotor shaft, the cooling steam supplied via the cooling steam supply path is configured to branch off, the cooling steam branched off being configured to stream into each of a pair of the clearances arranged symmetrically;the steam turbine generating facility comprises a very-high-pressure turbine, a high pressure turbine which is driven by high pressure steam obtained by reheating discharge steam of the very-high-pressure turbine, an intermediate pressure turbine which is driven by intermediate pressure steam obtained by reheating discharge steam of the high pressure turbine, and the low pressure turbine which is driven by discharge steam of the intermediate pressure turbine;the high pressure turbine is formed as the opposed-flow single casing steam turbine and includes a first high pressure turbine part and a second high pressure turbine part which are provided symmetrically in the single casing;the cooling steam supply path of the high pressure turbine is arranged between a steam inlet part of the first high pressure turbine part and a steam inlet part of the second high pressure turbine part;in said supplying the cooling steam, the discharge steam of the very-high-pressure turbine is configured to be supplied to the cooling steam supply path of the high pressure turbine as the cooling steam; andin said cooling the dummy seal and the rotor shaft, the discharge steam of the very-high-pressure turbine supplied via the cooling steam supply path as the cooling steam is configured to branch off, the discharge steam of the very-high-pressure turbine branched off being configured to stream into each of the pair of the clearances of the high pressure turbine. 2. The cooling method according to claim 1, wherein the rotor shaft is formed by joining split members which are made of different materials, andwherein a joint section at which the split members are joined to form the rotor shaft is formed facing the clearances, the joint section being cooled by the cooling steam. 3. The cooling method according to claim 1, wherein: the intermediate pressure turbine is formed as the opposed-flow single casing steam turbine and includes a first intermediate pressure turbine part and a second intermediate pressure turbine part which are provided symmetrically in the single casing;the cooling steam supply path of the intermediate pressure turbine is arranged between a steam inlet part of the first intermediate pressure turbine part and a steam inlet part of the second intermediate pressure turbine part;in said supplying the cooling steam, the discharge steam of the high pressure turbine is configured to be supplied to the cooling steam supply path of the intermediate pressure turbine as the cooling steam; andin said cooling the dummy seal and the rotor shaft, the discharge steam of the high pressure turbine supplied via the cooling steam supply path as the cooling steam is configured to branch off, the discharge steam of the high pressure turbine branched off being configured to stream into each of the pair of the clearances of the intermediate pressure turbine. 4. A cooling device for a steam turbine generating facility comprising an opposed-flow single casing steam turbine which is arranged on a higher pressure side of a low pressure turbine and in which a plurality of turbine parts are housed in a single casing and a dummy seal isolates the plurality of turbine parts from one another, the steam turbine generating facility cooling the dummy seal and a rotor shaft arranged on an inner side of the dummy seal, the device comprising: a cooling steam supply path formed in the dummy seal and configured to open to a plurality of clearances between the dummy seal and the rotor shaft; anda cooling steam pipe connected to the cooling steam supply path so as to supply cooling steam generated in the steam turbine generating facility to the cooling steam supply path at a temperature lower than that of working steam which has been supplied to each of the plurality of turbine parts of the opposed-flow single casing steam turbine and has passed through a first-stage stator blade and at a pressure not less than the pressure of the working steam at an exit of the first-stage stator blade, wherein:the cooling steam is configured to stream into the clearances between the dummy seal and the rotor shaft via the cooling steam supply path to cool the dummy seal and the rotor shaft;the opposed-flow single casing steam turbine includes a first turbine part and a second turbine part which are provided symmetrically in the single casing and are driven by the same working steam;the cooling steam supply path is arranged between a steam inlet part of the first turbine part and a steam inlet part of the second turbine part;the cooling steam supplied via the cooling steam supply path branches off, the cooling steam branched off streaming into each of a pair of the clearances arranged symmetrically;the steam turbine generating facility comprises a very-high-pressure turbine, a high pressure turbine which is driven by high pressure steam obtained by reheating discharge steam of the very-high-pressure turbine, an intermediate pressure turbine which is driven by intermediate pressure steam obtained by reheating discharge steam of the high pressure turbine, and the low pressure turbine which is driven by discharge steam of the intermediate pressure turbine;the high pressure turbine is formed as the opposed-flow single casing steam turbine and includes a first high pressure turbine part and a second high pressure turbine part which are provided symmetrically in the single casing;the cooling steam supply path of the high pressure turbine is arranged between a steam inlet part of the first high pressure turbine part and a steam inlet part of the second high pressure turbine part;the discharge steam of the very-high-pressure turbine is configured to be supplied to the cooling steam supply path of the high pressure turbine as the cooling steam; andthe discharge steam of the very-high-pressure turbine supplied via the cooling steam supply path as the cooling steam is configured to branch off, the discharge steam of the very-high-pressure turbine branched off being configured to stream into each of the pair of the clearances of the high pressure turbine. 5. The cooling device according to claim 4, wherein: the intermediate pressure turbine is formed as the opposed-flow single casing steam turbine and includes a first intermediate pressure turbine part and a second intermediate pressure turbine part which are provided symmetrically in the single casing;the cooling steam supply path of the intermediate pressure turbine is arranged between a steam inlet part of the first intermediate pressure turbine part and a steam inlet part of the second intermediate pressure turbine part;the discharge steam of the high pressure turbine is configured to be supplied to the cooling steam supply path of the intermediate pressure turbine as the cooling steam; andthe discharge steam of the high pressure turbine supplied via the cooling steam supply path as the cooling steam is configured to branch off, the discharge steam of the high pressure turbine branched off being configured to stream each of the pair of the clearances of the intermediate pressure turbine. 6. The cooling device according to claim 4, further comprising a superheater disposed in a boiler to superheat steam, wherein steam extracted from the superheater is configured to be supplied to the cooling steam supply path as the cooling steam. 7. The cooling device according to claim 4, further comprising a reheater disposed in a boiler to reheat discharge steam from a steam turbine, wherein reheated steam extracted from the reheater is configured to be supplied to the cooling steam supply path as the cooling steam.
연구과제 타임라인
LOADING...
LOADING...
LOADING...
LOADING...
LOADING...
이 특허에 인용된 특허 (4)
Jason Paul Mortzheim ; Ming Zhou ; Paul Thomas Marks, Apparatus and methods for flowing a cooling or purge medium in a turbine downstream of a turbine seal.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.