• Title/Summary/Keyword: 터빈 사이클

Search Result 152, Processing Time 0.027 seconds

Waste heat recovery of recirculated MCFC using supercritical carbon dioxide power cycle (초임계 이산화탄소 사이클을 이용한 연료 재순환 MCFC의 폐열회수)

  • Lee, Jae Yoon;Ahn, Ji Ho;Kim, Tong Seop
    • Plant Journal
    • /
    • v.15 no.2
    • /
    • pp.42-45
    • /
    • 2019
  • The molten carbonate fuel cell has a high temperature of waste heat and can constitute a bottoming cycle to increase the efficiency. Previous study used a bottoming cycle as steam turbine cycle. In this study, we are going to replace the bottoming cycle with a supercritical carbon dioxide power cycle. The system power was compared to consider replacing the bottoming cycle. As a result, the power of the supercritical carbon dioxide power cycle at the present development stage is lower than that of the steam turbine cycle, but theoretically, the power can be larger than the steam turbine cycle. If the supercritical carbon dioxide power cycle improves the isentropic efficiency of the turbine by 89%, the isentropic efficiency of the compressor by 83%, and the effectiveness of the recuperator by 0.9, the power can be same to the steam turbine cycle.

역 브레이튼 사이클을 이용한 산업용 가스터빈의 성능 향상에 관한 연구

  • 공창덕;김경두;기자영;최인수;노홍석
    • Proceedings of the Korean Society of Propulsion Engineers Conference
    • /
    • 2000.11a
    • /
    • pp.18-18
    • /
    • 2000
  • 산업용 가스터빈에서 대기로 방출되는 배기열을 효과적으로 이용하기 위한 역 브레이튼 사이클 가스터빈(Reverse Brayton Cycle Gas Turbine) 엔진의 출력과 비연료 소비율 및 열효율을 기본 브레이튼 사이클 엔진, 재열사이클에 역 브레이튼 사이클을 추가한 엔진, 역 브레이튼 사이클에 중간냉각기를 추가한 엔진의 출력, 비연료 소비율 및 열효율을 비교하였다.(중략)

  • PDF

Performance Analysis of a 3 Pressured Combined Cycle Power Plant (3압 복합 발전 플랜트 사이클에 대한 성능해석)

  • Kim, S. Y.;K. S. Oh;Park, B. C.
    • Journal of the Korean Society of Propulsion Engineers
    • /
    • v.2 no.2
    • /
    • pp.74-82
    • /
    • 1998
  • Combined cycle power plant is a system where a gas turbine or a steam turbine is used to produce shaft power to drive a generator for producing electrical power and the steam from the HRSG is expanded in a steam turbine for additional shaft power. The temperature of the exhaust gases from a gas turbine ranges from $400{\sim}650^{\circ}C$, and can be used effectively in a heat recovery steam generator to produce steam. Combined cycle can be classed as a topping and bottoming cycle. The first cycle, to which most of the heat is supplied, is a Brayton gas turbine cycle. The wasted heat it produces is then utilized in a second process which operates at a lower temperature level is a steam turbine cycle. The combined gas and steam turbine power plant have been widely accepted because, first, each separate system has already proven themselves in power plants as an independent cycle, therefore, the development costs are low. Secondly, using the air as a working medium, the operation is relatively non- problematic and inexpensive and can be used in gas turbines at an elevated temperature level over $1000^{\circ}C$. The steam process uses water, which is likewise inexpensive and widely available, but better suited for the medium and low temperature ranges. It therefore, is quite reasonable to use the steam process for the bottoming cycle. Recently gas turbine attained inlet temperature that make it possible to design a highly efficient combined cycle. In the present study, performance analysis of a 3 pressured combined cycle power plant is carried out to investigate the influence of topping cycle to combined cycle performance. Present calculation is compared with acceptance performance test data from SeoInchon combined cycle power plant. Present results is expected to shed some light to design and manufacture 150~200MW class heavy duty gas turbine whose conceptual design is already being undertaken.

  • PDF

Heat and Material Balance Calculations for IGCC Steam Turbine Cycle (IGCC 스팀터빈 사이클의 열 및 물질수지 정산)

  • Kim, Dae-Gyu;Kang, Seung-Jong;Cho, Byeong-Hwa;Choi, Jeong-Tae;Park, Cheol
    • Proceedings of the Korea Society for Energy Engineering kosee Conference
    • /
    • 1993.05a
    • /
    • pp.120-125
    • /
    • 1993
  • 석탄가스화 복합사이클 발전시스템에서 스팀터빈 발전시스템은 1차 사이클인 가스터빈사이클에서 나오는 폐열을 이용하여 발생하는 증기로 구동되며, 증기의 일부는 가스화기로 들어가서 가스화 반응에 이용된다. 이와 같은 시스템의 설계나 평가를 위해서는, 주어진 시스템에 대한 열 및 물질수지 정산을 구할 수 있는 능력을 갖추는 것이 필요하다. 본 연구에서는 주어진 시스템의 성능을 평가할 수 있는 프로그램을 개발하여 IGCC(Integrated Gasification Combined Cycle)System의 증기터빈 사이클과 유사한 증기터빈기계의 열 및 물질정사고 성능 해석에 적용하였다. (중략)

  • PDF

영광1호기 원자로 냉각재 평균 온도 조정에 따른 터빈 사이클 열성능 변화 분석

  • Choi, Kwang-Hui;Hong, Seung-Yeol;Park, Bu-Seong;Kim, Yu
    • Proceedings of the Korean Nuclear Society Conference
    • /
    • 1996.05a
    • /
    • pp.532-537
    • /
    • 1996
  • 영광 1호기의 일차계통인 원자로 냉각재 평균온도( $T_{avg}$)를 적정값으로 미세조정하여 운전할 때, 2차계통 주요 운전변수인 주증기압력이 상승하고 터빈출력이 상승함을 발견하여 이에 대한 터빈사이클 열성능 변화를 발전소 전체 열평형 계산에 의해 정량적으로 파악하고, 그 원인을 열역학 2법칙에서의 엔트로피개념을 이용한 유용에너지의 최대값인 엑서지이론을 적용하여 분석하고자하였다. 분석 결과 열평형 계산에서는 전체 열량의 대부분인 63.2%가 복수기에서 손실되는 것으로 나타나는 반면, 열역학 제2법칙의 엑서지를 이용한 분석에서는 비가역손실이 주로 터빈(전체 엑서지의 12.7%)에서 일어나고 그 다음이 복수기(5.7%), 급수가열기(2.1%) 그리고 1,2단 재열기 (1.0%)의 순으로 전체 사이클에서 일어나며, 주증기 압력이 상승할 때 터빈 출력이 상승하는 주원인은 주증기의 유용성(엑서지)이 크게 증가하는 것에 비해 터빈사이클에서의 비가역손실은 적게 증가하기 때문으로 나타났다.다.

  • PDF

천연가스 복합발전 플랜트의 성능예측

  • Lee, Jin-Wook;Lee, Chan;Cho, Byeong-Hwa
    • Proceedings of the Korea Society for Energy Engineering kosee Conference
    • /
    • 1994.05a
    • /
    • pp.55-63
    • /
    • 1994
  • 국내에서 실제 운전되고 있는 천연가스 복합발전플랜트의 성능 예측에 대한 공정전산 해석을 수행하였다. 가스터빈 사이클은 압축기, 연소기, 터빈 및 터빈 날개의 냉각을 위한 냉각계통으로 구성하였으며, 중기터빈 사이클은 폐열회수보일러, 고압/중압/저압터빈, 펌프 및 부속공정으로 구성하였다. 해석결과는 실제 플랜트의 운전자료와 정성적 및 정량적으로 잘 일치하였으며, 폐열회수보일러의 적절한 설계에 의하여 전체 플랜트의 출력향상을 도모할 수 있음을 제시하였다.

  • PDF

Preliminary design and performance analysis of a radial inflow turbine (유기랭킨사이클용 반경류터빈의 예비설계 및 성능분석)

  • Kim, Do-Yeop;Kang, Ho-Keun;Kim, You-Taek
    • Journal of Advanced Marine Engineering and Technology
    • /
    • v.39 no.7
    • /
    • pp.735-743
    • /
    • 2015
  • The major component with a significant impact on the thermodynamic efficiency of the organic Rankine cycle is the turbine. Many difficulties occur in the turbine design of an organic Rankine cycle because the expansion process in an organic Rankine cycle is generally accompanied by a dramatic change in the working fluid properties. A precise preliminary design for a radial inflow turbine is hard to obtain using the classic method for selecting the loading and flow coefficients from the existing performance chart. Therefore, this study proposed a method to calculate the loading and flow coefficient based on the number of rotor vanes and thermodynamic design requirements. Preliminary design results using the proposed models were in fairly good agreement with the credible results using the commercial preliminary design software. Furthermore, a numerical analysis of the preliminary design results was carried out to verify the accuracy of the proposed preliminary design models, and most of the dependent variables, with the exception of the efficiency, were analyzed to meet the preliminary design conditions.

200kW Turbine Development for Organic Rankine Cycle System (200kW급 ORC용 터빈 개발)

  • Lim, Hyung-Soo;Choi, Bum-Seog;Park, Moo-Ryong;Park, Jun-Young;Yoo, Il-Su;Seo, Jeong-Min;Hwang, Soon-Chan;Yoon, Eui-Soo;Han, Sang-Jo
    • Transactions of the KSME C: Technology and Education
    • /
    • v.1 no.1
    • /
    • pp.107-113
    • /
    • 2013
  • This paper presents the process of turbine development for Organic Rankine Cycle(ORC) system. Development of turbine for ORC system is hot issue in the electric generation market due to the characteristic of organic refrigerant which the evaporate temperature is lower than general refrigerant. Recently, the industry have an interest about ORC turbine development in Korea, and they presented numerous research results. In developing the turbine, several processes can be considered. However, there was few document about ORC turbine development because of the trade secret. This paper can be used as a reference in developing ORC turbine.

Exergy Analysis of Regenerative Wet-Compression Gas-Turbine Cycles (습식 압축을 채용한 재생 가스터빈 사이클의 엑서지 해석)

  • Kim, Kyoung-Hoon;Kim, Se-Woong;Ko, Hyung-Jong
    • Journal of Energy Engineering
    • /
    • v.18 no.2
    • /
    • pp.93-100
    • /
    • 2009
  • An exergy analysis is carried out for the regenerative wet-compression Brayton cycle which has a potential of enhanced thermal efficiency owing to the reduced compression power consumption and the recuperation of exhaust energy. Using the analysis model, the effects of pressure ratio and water injection ratio are investigated on the exergy efficiency of system, exergy destruction ratio for each component of the system, and exergy loss ratio due to exhaust gas. The results of computation for the typical cases show that the regenerative wet-compression gas turbine cycle can make a notable enhancement of exergy efficiency. The injection of water results in a decrease of exergy loss of exhaust gas and an increase of net power output.