• 제목/요약/키워드: Turbine-based Combined Cycle

검색결과 62건 처리시간 0.022초

발전용 가스터빈 성능해석 기술 분석 (Review on Performance Analysis Technology of Power Generation Gas Turbine)

  • 김수용;박무룡;최범석
    • 유체기계공업학회:학술대회논문집
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    • 유체기계공업학회 1998년도 유체기계 연구개발 발표회 논문집
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    • pp.198-208
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    • 1998
  • For the development of a gas turbine engine, repetitive calculation process to determine design point and off-design performance based on basic design requirements resulted from the market survey is necessary Due attention then, must be given that design process must be carried out within the mechanical limits satisfying conservation laws of mass, work as well as speed equilibrium between the components for maximum performance. It is the purpose of the present study to deal with technical particulars during design point and off-design process of gas turbine engine performance analysis for simple cycle as well as combined cycle.

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LNG 냉열을 이용하는 암모니아-물 복합 재생 동력 사이클의 성능 특성 (Performance Characteristics of a Combined Regenerative Ammonia-Water Based Power Generation Cycle Using LNG Cold Energy)

  • 김경훈;오재형;정영관
    • 한국수소및신에너지학회논문집
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    • 제24권6호
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    • pp.510-517
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    • 2013
  • The ammonia-water based power generation cycle utilizing liquefied natural gas (LNG) as its heat sink has attracted much attention, since the ammonia-water cycle has many thermodynamic advantages in conversion of low-grade heat source in the form of sensible energy and LNG has a great cold energy. In this paper, we carry out thermodynamic performance analysis of a combined power generation cycle which is consisted of an ammonia-water regenerative Rankine cycle and LNG power generation cycle. LNG is able to condense the ammonia-water mixture at a very low condensing temperature in a heat exchanger, which leads to an increased power output. Based on the thermodynamic models, the effects of the key parameters such as source temperature, ammonia concentration and turbine inlet pressure on the characteristics of system are throughly investigated. The results show that the thermodynamic performance of the ammonia-water power generation cycle can be improved by the LNG cold energy and there exist an optimum ammonia concentration to reach the maximum system net work production.

산업용 가스터빈을 위한 정비지원 시스템 개발에 관한 연구 (A Development of EMAS (Easy Maintenance Assistance Solution) for Industrial Gas Turbine)

  • 강명철;기자영
    • 한국추진공학회지
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    • 제21권3호
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    • pp.91-100
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    • 2017
  • 복합화력 발전소의 가스터빈 정비 의사 결정을 지원하기 위한 솔루션을 개발하였다. 대상 엔진은 군산 복합화력 발전소에서 사용하고 있는 MHI 501G 가스터빈이다. 개발된 솔루션은 다음과 같은 모듈들을 통해 최적의 정비주기 계산 결과를 제공해주며, 각 모듈에는 실시간 성능 감시, 모델기반 성능진단, 성능 경향분석, 최적 오버홀 정비주기 예측, 압축기 최적 세정주기 관리, BPT (Blade Path Temperature) 분석 기능이 포함되어 있다. 모델 기반 성능진단은 실시간으로 계측되는 성능 파라미터 데이터와 가스터빈 시뮬레이션 결과를 비교하여 그 차이를 분석하여 진단을 수행한다. 압축기 세정주기 분석은 압축기 성능과 정비비용 사이의 최적 점을 제시한다.

저온 열원의 활용을 위한 칼리나/흡수냉동 복합사이클의 성능 해석 (Performance Analysis of a Combined Cycle of Kalina and Absorption Refrigeration for Recovery of Low-Temperature Heat Source)

  • 김경훈;고형종;정영관
    • 한국수소및신에너지학회논문집
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    • 제29권5호
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    • pp.490-496
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    • 2018
  • Recently, the power and refrigeration cogeneration based on Kalina cycle has attracted much attention for more efficient utilization of low-grade energy. This study presents a thermodynamic performance analysis of a cogeneration cycle of power and absorption refrigeration based on Kalina cycle. The cycle combines Kalina cycle (KCS-11) and absorption cycles by adding a condenser and an evaporator between turbine and absorber. The effects of ammonia mass fraction and separation pressure were investigated on the system performance of the system. Results showed that the energy utilization of the system could be greatly improved compared to the basic Kalina cycle.

복합사이클 발전플랜트 폐열회수 보일러의 구성요소 크기비의 최적화 (Ratio Optimization Between Sizes of Components of Heat Recovery Steam Generator in Combined Cycle Gas Turbine Power Plants)

  • 인종수;이상용
    • 대한기계학회논문집B
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    • 제33권6호
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    • pp.403-410
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    • 2009
  • This paper proposes a new approach to find the optimum ratios between sizes of the heat exchangers of the heat recovery steam generator (HRSG) system with limited size to maximize the efficiency of the steam turbine (bottom) cycle of combined cycle power plants (CCPP), but without performing the bottom cycle analysis. This could be achieved by minimizing the unavailable exergy (the sum of the destroyed and the lost exergies) resulted from the heat transfer process of the HRSG system. The present approach is relatively simple and straightforward because the process of the trial-and-error method, typical in performing the bottom cycle analysis for the system optimization, could be avoided. To demonstrate the usefulness of the present method, a single-stage HRSG system was chosen and the optimum evaporation temperature was obtained corresponding to the condition of the maximum useful work. The results show that the optimum evaporation temperature based on the present exergy analysis appears similar to that based on the bottom cycle analysis. Also shown is the dependency of size (NTU) ratios between the heat exchangers on the inlet gas temperature, which is another important factor in determining the optimum condition once overall size of the heat recovery steam generator is given. The present approach turned out to be a useful tool for optimization of the singlestage HRSG systems and can easily be extended to multi-stage systems.

가스터빈과 순산소 연소를 적용한 발전시스템의 성능해석 (Performance Analysis on Gas Turbine based Oxy-fuel Combustion Power Plants)

  • 이영덕;이상민;박준홍;유상석;안국영
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2008년도 추계학술대회B
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    • pp.3169-3174
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    • 2008
  • Future power plants will be required to adopt some type of carbon capture and storage (CCS) technologies to reduce their CO2 emissions. One of distinguished CCS techniques expected to resolve the green house effect is to apply the oxy-fuel combustion technique to power plant, and a lot of research/demonstration programs have been going on in the world. In this paper, CO2-capturing power plants based on gas turbine and oxy-fuel combustion are investigated over several types of configurations. As a prior step, simulation model for 500 MW-class combined cycle power plant was set and was used as a reference case. The efficiencies of several power plants was compared and the advantages and disadvanteges was investigated.

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복합계통 개조를 위한 가스화 폴리제너레이션 시뮬레이션 연구 (Numerical Study on a Poly-Generation Based on Gasification for Retrofit of a Natural Gas Combined Cycle)

  • 서동균;주용진;홍진표;김경래;이정박
    • KEPCO Journal on Electric Power and Energy
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    • 제3권2호
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    • pp.141-146
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    • 2017
  • In this work, a simulation study on net 500 MW class of Poly-Generation was conducted for the retrofit of an aged natural gas combined cycle. An entrained gasifier which has a capacity of maximum $260,000Nm^3/h$, 50 MW class of a Polymer Electrolyte Membrane Fuel Cell, and H-class Gas Turbine were selected as key processes. After unit design for those employed processes was set up and combined, the simulation was carried out with Gate-Cycle software (Ver. 6.0) for two cases. The selected cases are a retrofit type (Poly-Gen 1) and a new type (Poly-Gen 2). It was found that the efficiency of the retrofit case is 2.7% lower than that of the new case.

석탄가스를 사용하는 복합발전 플랜트의 열성능 해석 -정상상태 성능해석 모델 개발- (Thermal Performance Analysis of Combined Power Plant Using Coal Gas - Development of the Steady-state Model -)

  • 김종진;박명호;안달홍;김남호;송규소;김종영
    • 에너지공학
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    • 제5권1호
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    • pp.8-18
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    • 1996
  • 석탄가스화 복합발전(IGCC) 시스템의 공정 시뮬레이션의 일환으로서 석탄가스용 복합발전 플랜트의 성능해석을 하였다. Texaco 가스화기와 저온가스 정제공정에서 생성된 가스를 연료로 하는 가스터빈/증기터빈/폐열회수보일러로 구성된 복합사이클발전시스템을 구성한 후, ASPEN(Advanced System for Process Engineering) Code를 이용하여 정상상태 성능해석을 수행하였다. 가스터빈 사이클(GE MS 7001FA)은 공기분리 공정과의 연계성(Integration)이 고려되었고, 증기사이클은 가스화공정과 가스정제 공정과의 연계성(Integration)을 고려하여 구성하였다. 공정해석결과 가스터빈출력(MWe)은 천연가스를 사용하는 경우에 비하여 동일 입열량(연소기 입구기준)기준으로 약 20%의 증가를 가져왔다. 본 연구의 결과를 Bechtel Canada Inc.에서 Nova Scotia 발전소를 대상으로 1991년에 수행한 연구결과와 비교하였을때 잘 일치하였으며, 이를 통하여 본 연구에서 사용된 해석방법이 상용화 공정의 시뮬레이션에 적정하게 이용될 수 있음을 확인하였다.

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복합화력발전의 가스연료 공급계통에 대한 위험도 평가 기법 연구 (II) : 배관 시스템 응력 해석을 이용한 위험도 평가 (Risk Assessment Technique for Gas Fuel Supply System of Combined Cycle Power Plants (II) : Based on Piping System Stress Analysis)

  • 유종민;송정수;정태민;럭 완노;윤기봉
    • 에너지공학
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    • 제27권2호
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    • pp.14-25
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    • 2018
  • 복합화력발전 플랜트는 천연가스와 같은 연료로 가스 터빈을 작동시킨 후 잔류 열로 증기를 생산하는 사이클을 가지고 있다. 연료가스는 압축기 및 열교환기를 통해 4~5 MPa, $200^{\circ}C$ 수준의 상태로 가스터빈에 공급된다. 본 연구에서는 가스 연료공급 배관계통의 안전 운영 및 건전성 확보를 위해 배관 시스템 응력을 고려한 위험도 평가 기법 연구를 수행하였다. 위험도 평가 기법으로 잘 알려진 API 580/581 RBI 코드에서는 위험도에 배관 응력의 영향을 반영이 제한적이다. 따라서 배관 해석을 이용하여 배관의 시스템적 응력을 위험도의 파손확률로써 인자화하는 접근법을 제시하였다. 해석은 가상 발전 플랜트의 가스연료 공급 배관의 설계 데이터에 근거하여 배관 시스템 응력 해석을 수행하였다. API 코드에 의해서 평가된 파손확률 등급과 배관해석을 이용한 응력비 평가 결과를 비교하였다.

복합열병합발전소에 적용된 유기랭킨사이클의 성능 및 경제성 평가 (Evaluation of Performance and Economics of Organic Rankine Cycle Integrated into Combined Cycle Cogeneration Plant)

  • 김인섭;김창민;김동섭;이종준
    • 한국유체기계학회 논문집
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    • 제20권1호
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    • pp.41-47
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    • 2017
  • This study aimed to analyze organic Rankine cycle(ORC) which recovers discarded heat from a gas turbine based combined cycle cogeneration(CC-cogen) plant in terms of both performance and economics. The nominal electric power of the CC-cogen plant is around $120MW_e$, and heat for district heating is $153MW_{th}$. The major purpose of this study is to compare various options in selecting heat source of the ORC. Three heat sources were compared. Case 1 uses the exhaust gas from the HRSG, which is purely wasted to environment in normal plant operation without ORC. Case 2 also uses the exhaust gas from the HRSG. On the other hand, in this case, the DH economizer, which is located at the end of the HRSG, does not operate. Case 3 generates power using some of the district heating water which is supplied to consumers. The estimated ORC power generation ranges between 0.3 to 2.3% of the power generation capacity of the CC-cogen plant. Overall, Case 3 is evaluated to be better than other two options in terms of system design flexibility and power generation capacity.