Combined cycle power plant
09677430 · 2017-06-13
Assignee
Inventors
- Hans-Juergen Sackmann (Görwihl, DE)
- Christian Joachim Bohtz (Zurich, CH)
- Giovanni Leone (Hausen, CH)
- Henrik Nielsen (Baden, CH)
Cpc classification
F01K23/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K17/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K23/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E20/14
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E20/16
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F01K23/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01K23/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K23/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A combined cycle power plant with a gas and steam turbine system arranged on a single shaft and integrated with a cogeneration plant having a heat consumer such as a district heating system or industrial plant, including one or more steam extractions at an intermediate-pressure steam turbine that are arranged at the upper casing half-shell of the turbine and extraction steam lines that lead the extracted steam to heat exchangers of the cogeneration plant. The steam extraction outlets are arranged either singly at or near the uppermost point of the casing or in pairs to either side of the uppermost point of the casing. The specific arrangement of the extractions allows a floor-mounting of the single-shaft combined cycle power plant and as such a cost and space efficient realization of the power plant.
Claims
1. A combined cycle power plant comprising: a gas turbine system and a steam turbine system arranged on a single shaft and a single generator, where the steam turbine system comprises at least a high-pressure turbine, an intermediate-pressure turbine, and a low-pressure turbine, where the power plant is integrated with a cogeneration plant, district heating system, or industrial plant comprising a heat consumer by means of a plurality of steam extraction lines leading from the intermediate-pressure steam turbine to at least one heat exchanger coupled to the cogeneration plant, district heating system, or industrial plant, the power plant being arranged with base plates, which are directly arranged on the ground of the combined cycle power plant, and onto which the gas turbine system, the steam turbine system and the single generator are directly mounted, and in that the intermediate-pressure steam turbine including one or more steam extractions, which are arranged at an upper half shell of a casing of the intermediate-pressure steam turbine, the steam extraction lines being coupled to the steam extractions, with flow control valves arranged in the steam extraction lines to allow a control of a steam extraction flow from the intermediate-pressure steam turbine, wherein the steam extraction lines, as well as the flow control valves are arranged higher than the rotational axis of the single shaft to allow for the mounting of the turbo machinery on the base plates; the steam extractions further comprising at least two pairs of steam extractions, a first pair being arranged through the casing at a final stage of the intermediate-pressure steam turbine including one each of the first pair of steam extractions being disposed on either side of an axis of the single shaft, and a second pair being arranged through the casing at an intermediate stage of the intermediate-pressure steam turbine including one each of the second pair of steam extractions being disposed on either side of the axis of the single shaft.
2. The combined cycle power plant according to claim 1 wherein the one or more steam extractions at the intermediate-pressure steam turbine are configured and arranged to extract any part of steam flow of the intermediate-pressure turbine up to all of the steam flow of the intermediate-pressure turbine and the steam extraction lines lead to one or more heat exchangers arranged to heat a heat exchange medium of the cogeneration plant, district heating system, or industrial plant by means of the extracted steam.
3. The combined cycle power plant according to claim 2 wherein the steam extractions at the intermediate-pressure steam turbine are arranged in pairs at the upper half-shell of the turbine casing at a given stage of the intermediate-pressure steam turbine and where the two individual extractions of a pair of extractions are positioned to either side of the uppermost point of the casing of the intermediate-pressure steam turbine.
4. The combined cycle power plant according to claim 2 further comprising one steam extraction arranged at a given stage of the intermediate-pressure steam turbine, where that extraction is positioned at the uppermost point or near the uppermost point of the upper half-shell of the turbine casing.
5. The combined cycle power plant according to claim 2 wherein the intermediate-pressure steam turbine is a double-flow steam turbine and one or more steam extractions are arranged on both flows of the turbine, where in each flow either a single steam extraction or a pair of steam extractions are arranged in the upper half-shell of the casings.
6. The combined cycle power plant according to claim 1, further comprising a water-cooled steam condenser arranged in a lateral configuration relative to the low-pressure steam turbine.
7. The combined cycle power plant according to claim 1, further comprising a water-cooled steam condenser arranged on the same level above on the ground as the low-pressure steam turbine.
8. The combined cycle power plant according to claim 1 wherein the extraction lines from the intermediate-pressure steam turbine comprise butterfly valves and/or non-return valves.
9. The combined cycle power plant according to claim 1 wherein the gas turbine system and the steam turbine system drive a single generator.
10. The combined cycle power plant according to claim 1, further comprising a non-return valve arranged in a steam extraction line at an elevated location above the rotational axis of the single shaft.
11. The combined cycle power plant according to claim 1, further comprising a drainage system for the flow control valve and/or the non-return valve arranged at an elevated location above the rotational axis of the single shaft.
12. The combined cycle power plant according to claim 1, further comprising a by-pass line provided to by-pass the total steam mass flow produced by the heat recovery steam generator to the first heat exchanger and/or second heat exchanger in case the steam turbine is not operating, allowing independent operation of the gas turbine system.
13. The combined cycle power plant according to claim 1, further comprising wherein the at least one heat exchanger is mounted to the ground of the combined cycle power plant and/or a base plate arranged thereon.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6) Same numerals in different figures indicate same elements.
DETAILED DESCRIPTION
(7)
(8) The gas turbine system GT includes for example a compressor 3, combustion chamber 4, and expansion turbine 5, from where the exhaust gases are directed to a (not illustrated) heat recovery steam generator H. The steam turbine system ST, which is driven by steam generated in the steam generator H comprises a high-pressure steam turbine 6, an intermediate-pressure steam turbine 7, and a double-flow low-pressure steam turbine 8.
(9) Steam expanded and exhausted by the low-pressure steam turbine is directed to a condenser C, from where the condensate and feedwater is recirculated to the steam generator H thereby completing the water-steam-cycle of the power plant.
(10) The intermediate-pressure steam turbine 7 is driven by steam reheated in the steam generator H and directed to the turbine by means of line 9, optionally also by line 10.
(11) Pairs of steam extractions are arranged at the intermediate-pressure steam turbine 7, for example steam extractions 12a and 12b arranged at an intermediate stage of that steam turbine 7, and steam extractions 11a and 11b arranged at the last stage of the intermediate-pressure turbine 7. A heating medium of the cogeneration plant 100 is directed from a heat consumer 30 via line 30 to be reheated in first and second heat exchangers 31 and 32 respectively, which are arranged in series. The steam is then directed via line 30 to the heat consumer 30. The extracted steam from extractions 11a, b at the last stage of turbine 7 are led to the first heat exchanger 31, where the steam from extractions 12a and b at the intermediate stage of turbine 7 is led to the second heat exchanger 32.
(12) The steam flow through extraction lines 11a and b is controlled in each line by a butterfly valve 11, where the pressure of the steam flow is controlled in accordance with the operational specifications of the heat exchanger 31, for example steam pressures of about 1 bar. A butterfly valve 11 is arranged in a line 11c branching off of the extraction line 11a,b to the inlet to the low-pressure steam turbine 8, where this valve 11 can increase the steam pressures up to 2 bar.
(13) Similarly, the steam flow through the extraction line 12a, b is controlled by means of a butterfly valve 12 in accordance with the specifications of heat exchanger 32.
(14) The valves 11, 11, 12 are operated to control the steam flow to the heat exchangers 31 and 32 and the low-pressure steam turbine depending on the needs of thermal energy in the cogeneration plant 100 and the load of the power plant. In case of a full steam extraction, the low-pressure turbine is operated with a minimum steam flow sufficient to enable cooling of the turbine only.
(15) The valves allow control of the degree of extraction ranging from zero percent extraction and full operation of the low-pressure steam turbine up to an operation of the power plant with full steam extraction from the intermediate-pressure steam turbine to operate the cogeneration plant. In such case, the low-pressure turbine is operated only in a cooling minimum load.
(16) The power plant 1 according to the invention, as shown in
(17) In the exemplary embodiment shown in
(18) Further, steam extraction drain systems 13, 13 are arranged at the flow control valves 11, 12 and non-return valve 14. Preferably the drain systems 13, 13 are also arranged above the shaft 2.
(19) The exemplary embodiment shows two pairs of steam extractions at different stages of the intermediate-pressure steam turbine. An embodiment with only one pair of extractions is also possible, depending on the needs of the cogeneration plant. In a variant of the invention, the steam extraction can be realized by means of only extraction line, instead of a pair of extractions, at least for the extraction at an intermediate stage of the turbine, where steam flow volume may be accommodated by a single piping.
(20)
(21) They are both arranged symmetrically in relation of the uppermost point of the casing half-shell.
(22)
(23) Similarly,