• 제목/요약/키워드: Combined cycle system

검색결과 315건 처리시간 0.021초

램제트/스크램제트의 기술동향과 기술분석 II. 스크램제트 및 복합엔진 (Technical Review and Analysis of Ramjet/Scramjet Technology II. Scramjet and Combined Cycle Engine)

  • 성홍계;윤현걸
    • 한국추진공학회지
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    • 제10권2호
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    • pp.115-128
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    • 2006
  • 스크램제트 추진기술에 대한 최근 개발동향과 주요기술을 분석하였다. 스크램제트엔진은 지난 10여년간 급속한 기술 발전으로 지상시험에서 비행시험 단계에 접어들고 있으며, 수년 내 실용시험을 목표로 활발하게 연구개발 중이다. 광범위한 비행 마하수를 만족하는 이중연소램제트와 이중모드램제트 형태의 엔진은 각각 군용과 민수용으로 개발되고 있으며, 복합엔진은 차세대 우주발사체의 대안으로 개발되고 있다. 엔진 작동 특성의 미케니즘에 대한 정확한 이해와 이에 상응되는 기술, 흡열연료 및 CSiC 복합재료를 사용한 내열 문제 해결, 가변 흡입구와 노즐을 이용한 안정된 추진력 구현을 목전에 두고 있다.

가스터빈-연료전지 혼합형 고효율 발전시스템 (High Efficiency Gas Turbine-Fuel Cell Hybrid Power Generation System)

  • 이진근;양수석;손정락;송락현;조형희
    • 유체기계공업학회:학술대회논문집
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    • 유체기계공업학회 2001년도 유체기계 연구개발 발표회 논문집
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    • pp.347-353
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    • 2001
  • A combined cycle, 'HYBRID', is emerging as a new power generation technology that is particularly suitable for the distributed power generation system, with high energy efficiency and low pollutant emission. Currently micro gas turbines and fuel cells are attracting a lot of attention to meet the future needs in the distributed power generation market. This hybrid system may have every advantages of both systems because a gas turbine is synergistically combined with a fuel cell into a unique combined cycle. The hybrid system is believed to become a leading runner in the distributed power generation market. This paper introduces a current plan associated with the development of the hybrid system which consists of a micro gas turbine and a solid-oxide fuel cell(SOFC).

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가스터빈 결빙방지 시스템이 복합화력발전 시스템의 성능에 미치는 영향 (Analysis of the Influence of Anti-icing System on the Performance of Combined Cycle Power Plants)

  • 문성원;김정호;김동섭
    • 한국유체기계학회 논문집
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    • 제19권6호
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    • pp.19-25
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    • 2016
  • Anti-icing is important in gas turbines because ice formation on compressor inlet components, especially inlet guide vane, can cause performance degradation and mechanical damages. In general, the compressor bleeding anti-icing system that supplies hot air extracted from the compressor discharge to the engine intake has been used. However, this scheme causes considerable performance drop of gas turbines. A new method is proposed in this study for the anti-icing in combined cycle power plants(CCPP). It is a heat exchange heating method, which utilizes heat sources from the heat recovery steam generator(HRSG). We selected several options for the heat sources such as steam, hot water and exhaust gas. Performance reductions of the CCPP by the various options as well as the usual compressor bleeding method were comparatively analyzed. The results show that the heat exchange heating system would cause a lower performance decrease than the compressor bleeding anti-icing system. Especially, the option of using low pressure hot water is expected to provide the lowest performance reduction.

냉각공기 예냉각과 연료예열에 의한 복합발전 시스템의 성능변화 (Performance Variation of a Combined Cycle Power Plant by Coolant Pre-cooling and Fuel Pre-heating)

  • 권익환;강도원;김동섭;김재환
    • 한국유체기계학회 논문집
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    • 제15권3호
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    • pp.57-63
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    • 2012
  • Effects of coolant pre-cooling and fuel pre-heating on the performance of a combined cycle using a F-class gas turbine were investigated. Coolant pre-cooling results in an increase of power output but a decrease in efficiency. Performance variation due to the fuel pre-heating depends on the location of the heat source for the pre-heating in the bottoming cycle (heat recovery steam generator). It was demonstrated that a careful selection of the heat source location would enhance efficiency with a minimal power penalty. The effect of combining the coolant pre-cooling and fuel pre-heating was also investigated. It was found that a favorable combination would yield power augmentation, while efficiency remains close to the reference value.

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.

LNG 냉열과 재생 유기 랭킨 사이클을 이용한 복합 사이클의 성능 특성 해석 (Performance Characteristics Analysis of Combined Cycle Using Regenerative Organic Rankine Cycle and LNG Cold Energy)

  • 김경훈;정영관;한철호
    • 한국수소및신에너지학회논문집
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    • 제31권2호
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    • pp.234-241
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    • 2020
  • This paper presents a thermodynamic performance analysis of a combined cycle consisting of regenerative organic Rankine cycle (ORC) and liquefied natural gas (LNG) Rankine cycle to recover low-grade heat source and the cold energy of LNG. The mathematical models are developed and the system performances are analyzed in the aspect of thermodynamics. The effects of the turbine inlet pressure and the working fluid on the system performance such as the mass flow rates, heat transfers at heat exchangers, power productions at turbines, and thermal efficiency are systematically investigated. The results show that the thermodynamic performance of ORC such as net power production and thermal efficiency can be significantly improved by the regenerative ORC and the LNG cold energy.

심혈관 연속 시스템 모델의 DEVS/CS혼합 모델링 (DEVS/CS ( Discrete Event Specification System/continuous System) Combined Modeling of Cardiovascular Continuous System Model)

  • 전계록
    • 대한의용생체공학회:의공학회지
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    • 제16권4호
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    • pp.415-424
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    • 1995
  • Combined models, specified by two or more modeling formalisms, can represent a wide variety of complex systems. This paper describes a methodology for the development of combined models in two model types of discrete event and continuous process. The methodology is based on transformation of continuous state space into discrete one to homomorphically represent dynamics of continuous processes in discrete events. This paper proposes a formal structure which can combine model of the DES and the CS within a framework. The structure employs the DEVS formalism for the DES models and differential or polynomial equations for the CS models. To employ the proposed structure to specify a DEVS/CS combined model, a modeler needs to take the following steps. First, a modeler should identify events in the CS and transform the states of the CS into the DES. Second, a modular employs the formalism to specify the system as the DES. Finally, a moduler developes sub-models for the CS and continguos states of the DES and establishs one-to-one correspondence between the sub-models and such states. The proposed formal structre has been applied to develop a DEVS/CS combined model for the human cardiovascular system. For this, the cardiac cycle is partitioned into a set of phases based on events identified through observation. For each phase, a CS model has been developed and associated with the phase. To validate the DEVS/CS combined model developed, then simulate the model in the DEVSIM + + environment, which is a model simulation results with the results obtained from the CS model simulation using SPICE. The comparison shows that the DEVS/CS combined model adequately represents dynamics of the human heart system at each phase of cardiac cycle.

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큰 후향 계단이 있는 이중 모드 램젯 엔진의 설계 연구 (Design Study of a Dual-Mode Ramjet Engine with Large Backward-Facing Step)

  • 양인영;이양지;이경재
    • 한국추진공학회지
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    • 제19권6호
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    • pp.33-41
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    • 2015
  • 로켓 기반 복합 사이클 엔진의 구성 요소로서 큰 후향 계단을 가진 이중 모드 램젯 엔진의 축소 모델을 설계하였다. 로켓 기반 복합 사이클 엔진에 적용하기 위해 설계 단계에서 고려하여야 하는 인자를 도출하였고 이 설계 인자에 대한 설계 방법을 정립하였다. 이러한 방법을 통하여 설계한 모델에 대하여 전산유체해석과 공력 시험을 수행함으로써 설계 검증을 일부 수행하고 큰 후향 계단을 가진 이중 모드 램젯 엔진의 유동 특성을 파악하였으며 이 연구에서 정립한 주요 설계 인자에 대한 설계 방법이 타당함을 확인할 수 있었다.

차량용 CO2 에어컨 사이클 성능 향상을 위한 일체형 팽창기-압축기 성능 해석 (An Analysis of the Performance of a Combined Expander-Compressor Unit for a CO2 Automotive Air Conditioning Cycle)

  • 최재웅;임정택;김현진
    • 설비공학논문집
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    • 제30권3호
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    • pp.107-115
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    • 2018
  • A design combining the use of a compressor and expander was introduced in order to improve the cycle performance of a $CO_2$ automotive air conditioning system. Both the compressor and expander used were of rotary vane type and were designed to share a common shaft in a housing. Numerical simulation was carried out to evaluate the merit of the combined unit. In a typical automotive air conditioning operating conditions, the COP of the system was improved by 8.7% by the application of the combined unit. The compressor input was reduced by 5.2% through use of the expander output. In addition, about 3.06% increase in the cooling capacity was obtained through isentropic expansion in the expander. Our study noted that, as the pressure difference between the gas cooler and the evaporator becomes larger, the COP of the system improved increases unless the mass flow rate in the expander exceeds that in the compressor.

유기랭킨사이클을 이용한 병렬 열병합 발전시스템의 열역학적 이론 성능 특성 (Theoretical Characteristics of Thermodynamic Performance of Combined Heat and Power Generation with Parallel Circuit using Organic Rankine Cycle)

  • 김경훈
    • 한국태양에너지학회 논문집
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    • 제31권6호
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    • pp.49-56
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    • 2011
  • In this study a novel cogeneration system driven by low-temperature sources at a temperature level below $190^{\circ}C$ is investigated by first and second laws of thermodynamics. The system consists of Organic Rankine Cycle(ORC) and an additional heat generation as a parallel circuit. Seven working fluids of R143a, R22, R134a, R152a, $iC_4H_{10}$(isobutane), $C_4H_{10}$(butane), and R123a are considered in this work. Maximum mass flow rate of a working fluid relative to that of the source fluid and optimum turbine inlet pressure are considered to extract maximum power from the source. Results show that due to a combined heat and power generation, both the efficiencies by first and second laws can be significantly increased in comparison to a power generation, however, the second law efficiency is more resonable in the investigation of cogeneration systems. Results also show that the working fluid for the maximum system efficiency depends on the source temperature.