• 제목/요약/키워드: Gas Turbine-Generator

검색결과 207건 처리시간 0.027초

터보 발전기 시스템을 위한 정 출력 제어 방식 시동기 구현 (Implementation of Constant Power Controlled Starter for A Turbo Generator System)

  • 권정혁;양현섭;노민식;차영범
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2003년도 제21회 추계학술대회 논문집
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    • pp.219-222
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    • 2003
  • Turbo generator system need starter for gas turbine engine. Turbo generator has high rate gearbox for reduce rotating speed. Because a conventional generator could not operate same speed of gas turbine engine. But Recently turbo generator system is directly connected a gas turbine engine with a super high-speed generator. In this paper, starter driver are implemented direct coupled turbo generator system, Which is directly connected 100kW, 60,000rpm gas turbine engine and 25kW 60,000rpm super high speed generator.

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터빈 매니폴드 모사장치를 이용한 액체로켓엔진 가스발생기 연소시험 (Hot Firing Tests of a Gas Generator for Liquid Rocket Engine using a Turbine Manifold Simulator)

  • 임병직;김문기;김종규;최환석
    • 한국추진공학회지
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    • 제19권5호
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    • pp.22-30
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    • 2015
  • 개방형 사이클의 액체로켓엔진에서는 추진제 중 일부를 연소시켜 터빈 구동용 가스를 생성시키는 가스발생기가 사용되며, 개방형 사이클 액체로켓엔진의 주요 구성품으로서 가스발생기 자체의 연소성능 및 특성을 파악하기 위한 연소시험이 요구된다. 하지만, 가스발생기에서 생성된 연소가스는 터빈 매니폴드의 터빈 노즐에서 질식이 이루어지기 때문에 가스발생기뿐만 아니라 터빈 매니폴드 내부 부피를 고려해야만 가스발생기의 연소 성능 및 특성, 그리고 음향 특성을 정확히 파악할 수 있다. 따라서, 본 논문에서는 터빈 매니폴드 모사장치를 이용한 가스발생기 연소시험 결과를 기술하고 가스발생기 단독 연소시험 결과를 이용한 특성 예측을 설명한다.

과산화수소 가스발생기 설계와 터보차저를 이용한 동력 측정 방법 검토 (Hydrogen Peroxide Gas Generator Design and Investigation of Power Measurement Method Utilizing Turbocharger)

  • 박대종;안성용;권세진
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2008년도 제31회 추계학술대회논문집
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    • pp.41-44
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    • 2008
  • 터빈 제너레이터 구동을 위한 과산화수소 촉매분해반응을 이용한 가스발생기를 설계하였다. 90 wt%의 rocket grade 과산화수소 가스발생기는 이산화망간을 촉매로 사용하였으며 온도와 압력조절이 용이하여 다양한 조건으로 터빈을 작동시키는데 적합하여 선정되었다. 가스발생기를 이용한 터빈 제너레이터에 대해 조사를 하고 소형 터빈 제너레이터를 개발하는데 앞서 차량용 터보차저를 이용하는 선행연구를 기획하였다.

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30톤급 실물형 가스발생기 연소 특성 (Combustion Characteristics of Full-scale Gas Generator for 30 ton Class Liquid Rocket Engine)

  • 안규복;서성현;임병직;김종규;이광진;한영민;최환석
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2008년도 제30회 춘계학술대회논문집
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    • pp.129-132
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    • 2008
  • 30톤급 액체로켓엔진 가스발생기의 연소 특성에 대한 연구를 수행하였다. 개발 초기 가스발생기는 터빈 매니폴드 출구를 모사하는 노즐을 후단에 장착한 상태에서 연소시험을 진행하였다. 이후 가스발생기와 터빈부의 공진모드를 모사하는 연장배관을 가스발생기와 노즐 사이에 추가하여 시험이 이루어졌으며, 최종적으로 터보펌프의 터빈부를 연결한 상태에서 연소시험을 수행하였다. 본 논문에서는 이와 관련된 온도 분포, 압력섭동 결과들을 분석하였다.

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Optimal Design and Test of Fuel-Rich Gas Generator

  • Lee, Changjin;Kwon, Sun-Tak
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2004년도 제22회 춘계학술대회논문집
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    • pp.560-564
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    • 2004
  • The optimal design and combustion analysis of the gas generator for Liquid Rocket Engine (LRE) were performed. A fuel-rich gas generator in open cycle turbopump system was designed for 10ton$_{f}$ in thrust with RP-1/Lox propellant. The optimal design was done for maximizing specific impulse of main combustion chamber with constraints of combustion temperature and power matching required by turbopump system. Design variables were selected as total mass flow rate to gas generator, O/F ratio in gas generator, turbine injection angle, partial admission ratio, and turbine rotational speed. Results of optimal design show the dimension of length, diameter, and contraction ratio of gas generator. Also, the combustion test was conducted to evaluate the performance of injector and combustion chamber. And the effect of the turbulence ring was investigated on the mixing enhancement in the chamber.r.

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발전방식별 여러 가지 터빈의 속도제어 비교 (A comparison of speed control of various turbines according to power plant types)

  • 최인규;정창기
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2001년도 하계학술대회 논문집 D
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    • pp.2314-2316
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    • 2001
  • The steam gererator which produces thermal energy from coal or gas is a very important device in power plants, including the turbine driving synchronous generator which transforms kinetic energy into electrical energy. The turbine and the generator are driven by many kinds of media according to the types of which power plants are classified into steam turbine generator, gas turbine generator, water turbine generator and so on. This paper introduces the overspeed protection as well as the various speed and load control methods of some types of turbines.

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원자력 발전소 터빈-발전기 고진동 저감에 대한 고찰 (Analysis of High Vibration in Nuclear Turbine-Generator)

  • 이우광;고우식;김계연;구재량
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2007년도 춘계학술대회논문집
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    • pp.46-50
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    • 2007
  • The nuclear power plant's turbine-generator system had been suffered form some problems, such as high shaft vibration, generator casing crack, stator coil water leakage, high $H_2$ gas consumption rate. Those kinds of problems were related to high vibration. So nuclear plant decided to replace generator in order to reduce rotor high vibration and high thermal sensitivity. A series of effort to reduce turbine-generator vibration was carried out as followings, first of all, replacement of generator, analysis of turbine-generator vibration, LP B rotor shop balancing, improvement of LP B/Gen coupling run-out, improvement of Generator basement and field balancing. Finally the nuclear turbine-generator's shaft vibration was reduced below $60{\mu}m$ from over $200{\mu}m$ which is very excellent vibration in nuclear turbine-generator in Korea.

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하이브리드 타입 초소형 가스터빈엔진 개발 및 초도 시운전 (Preliminary Study of Hybrid Micro Gas Turbine Engine)

  • 서준혁;최주찬;권길성;백제현
    • 한국유체기계학회 논문집
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    • 제19권1호
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    • pp.24-30
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    • 2016
  • In this study, a 2W micro-gas turbine engine was designed using micro-electro-mechanical systems (MEMS) technology, and experimental investigations of its potential under actual combustion conditions were performed. A micro-gas turbine (MGT) contains a turbo-charger, combustor, and generator. Compressor and turbine blades, and generator coil were manufactured using MEMS technology. The shaft was supported by a precision computer numerical control (CNC) machined static air bearing, and a permanent magnet was attached to the end of the shaft for generation. A heat transfer analysis found that the cooling effect of the air bearing and compressor was sufficient to cover the combustor's high temperature, which was verified in an actual experiment. The generator performance test showed that it can generate 2W at design rotational speed. Prototype micro-gas turbine generated maximum 1 mW electric power and lasted up to 15 minutes.

가스터빈 열 회수 증기 발생기의 난류연소 해석과 배기가스 예측 및 검증 (Numerical Analysis of Turbulent Combustion and Emissions in an HRSG System)

  • 장지훈;한가람;박호영;이욱륜;허강열
    • KEPCO Journal on Electric Power and Energy
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    • 제5권2호
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    • pp.103-111
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    • 2019
  • The combined cycle plant is an integration of gas turbine and steam turbine, combining the advantages of both cycles. It recovers the heat energy from gas turbine exhaust to use it to generate steam. The heat recovery steam generator plays a crucial role in combined cycle plants, providing the link between the gas turbine and the steam turbine. Simulation of the performance of the HRSG is required to study its effect on the entire cycle and system. Computational fluid dynamics has potential to become a useful to validate the performance of the HRSG. In this study a solver has been implemented in the open source code, OpenFOAM, for combustion simulation in the heat recovery steam generator. The solver is based on the steady laminar flamelet model to simulate detailed chemical reaction mechanism. Thereafter, the solver is used for simulation of HRSG system. Three cases with varying fuel injections and gas turbine exhaust gas flow rates were simulated and the results were compared with measurements at the system outlet. Predicted temperature and emissions and those from measurements showed the same trend and in quantitative agreement.

500W급 마이크로 가스터빈 발전기 회전체-베어링부의 단열 및 냉각 성능에 대한 실험적 연구 (Experimental Study on Thermal Insulation and Cooling for Rotor/Bearing Area in 500W Class Micro Gas Turbine Generator)

  • 박철훈;최상규;함상용
    • 한국유체기계학회 논문집
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    • 제17권3호
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    • pp.19-24
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    • 2014
  • Development of long-term mobile energy sources for mobile robots or small-sized unmanned vehicles are actively increasing. The micro gas turbine generator (MTG) is a good candidate for this purpose because it has both of high energy density and high power density, and 500W class MTG is under development. The designed MTG can be divided into 2 main parts. One part consists of motor/ generator and compressor, and the other one consists of combustor, recuperator and turbine. 500W class MTG is designed to operate at ultra-high speed of 400,000 rpm in high turbine temperature over $700^{\circ}C$ to improve the efficiency. Because the magnetism of NdFeB permanent magnet for the motor/generator could be degraded if the temperature is over $150-200^{\circ}C$, MTG needs the thermal insulation to block the heat transfer from combustor/turbine side to motor/generator side. Moreover, the motor/generator is allocated to get the cooling effect from the rapid air flow by the compressor. This study presents the experimental results to verify whether the thermal insulator and air flow are effective enough to keep the motor/generator part in the low temperature less than $100^{\circ}C$. From the motoring test by using the high temperature test rig, it was confirmed that the motor/generator part could maintain the temperature less than $50^{\circ}C$ under the condition of 1.0 bar compressed air.