• 제목/요약/키워드: Thermal-Fluid Analysis

검색결과 808건 처리시간 0.029초

하이드라진 아크 추력기의 열화학적 성능해석 (Thermochemical Performance Analysis of Hydrazine Arc Thruster)

  • 신재렬;오세종;최정열
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2005년도 제24회 춘계학술대회논문집
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    • pp.35-38
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    • 2005
  • 하이드라진을 추진제로 쓰는 아크젯 추력기 내의 열화학적 유동장을 전산유체를 이용해 해석하였다. Ohm가열 및 Lorentz힘을 고려하기 위하여 Maxwell 방정식과 연계된 RANS 방정식을 이용하였으며, 매우 빠른 반응 및 광학적으로 두꺼운 매질을 가정하여 하이드라진의 화학 반응과 열복사를 해석에 포함하였다. 아크젯 추력기 내부 유동의 열-물리적 이해와 더불어, 해석의 결과는 0.6 kW의 가열에 의하여 성능지표인 추력과 비추력이 각각 $20\%와 200\%$가 향상됨을 보여준다.

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온실 난방을 위한 평판형 태양집열기의 열적성능 분석 (Analysis on the Thermal Performance of Flat-plate Solar Collector for Greenhouse Heating(I))

  • 서원명;윤용철;이승환;이석건
    • 한국농공학회지
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    • 제40권6호
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    • pp.46-56
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    • 1998
  • This study was performed to investigate thermal performances of two different types of flat-plate solar collector systems; natural circulation system and forced circulation system. Conclusions obtained from this study are summarized as follows; 1) In the natural circulation system, the total heat amounts retrieved by starting recovery soon after sunrise were ranged from 10.28 to 17.20MJ/m$^2$, while the total heat amounts retrieved by starting recovery after sunset were ranged from 5.31 to 10.77MJ/m$^2$. 2) The collector efficiency in natural circulation system were ranged from 51.1% to 54.1% when the collected heat was retrieved after sunrise and were 65.8~78.0% when the collected heat was retrieved soon after sunset. 3) According to the regression analysis between fluid flow rates and fluid temperature difference at inlet and outlet of collector pipe, there was high regressive corelations with regression coefficient, r, of 0.982. 4) The collector efficiencies estimated for forced circulation system were 73.1~88.6%, and 78.4~94.8%, and 64.2%~74.5%, respectively when fluid circulation rates were 4.2 l/min, and 7.0 l/min, respectively.

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Sensitive analysis of design factor for the optimum design of PVT system

  • Jeong, Yong-Dae;Nam, Yujin
    • KIEAE Journal
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    • 제15권4호
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    • pp.5-11
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    • 2015
  • Purpose: Recently, renewable energy system has been widely used to reduce the energy consumption and CO2 emission of building. A photovoltaic/thermal(PVT) system is a kind of efficient energy uses, which is combined with photovoltaic module and solar thermal collector. PVT system removes heat from PV module by through thermal fluid to raise the performance efficiency of the PV system. However, though PVT system has the merit of the improved efficiency in theoretical approach, there have been few performance analysis for PVT system using the dynamic energy simulation. In this study, in order to establish the optimum design method of this system, simulation was conducted by using individual system modules. Method: For the dynamic simulation, TRNSYS17 was used and local weather data was utilized. Furthermore, the system performance in various installation condition was calculated by case studies. Result: As a result, the amount of electric generation and heat production in each case was found by the simulation. The gap of system performance was also evident according to the installation condition.

터빈 추기를 이용한 재생 유기랭킨사이클의 열역학적 성능 해석 (Thermodynamic Performance Analysis of Regenerative Organic Rankine Cycle using Turbine Bleeding)

  • 김경훈;황선;김만회
    • 한국수소및신에너지학회논문집
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    • 제26권4호
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    • pp.377-385
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    • 2015
  • This paper presents a thermodynamic performance analysis of regenerative organic Rankine cycle (ORC) using turbine bleeding to utilize low-grade finite thermal energy. Refrigerant R245fa was selected as the working fluid. Special attention is paid to the effects of the turbine bleeding pressure and the turbine bleed fraction on the thermodynamic performance of the system such as net power production and thermal efficiency. Results show that the thermal efficiency has an optimum value with respect to the turbine bleeding pressure and the net power production is lower than the basic ORC while the thermal efficiency is higher.

Analysis of Thermal Control Characteristics of VCHP by the Charging Mass of Non-Condensible Gas

  • Suh, Jeong-Se;Park, Young-Sik;Chung, Kyung-Taek;Kim, Byoung-Gi
    • International Journal of Air-Conditioning and Refrigeration
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    • 제14권4호
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    • pp.125-130
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    • 2006
  • This study has been performed to investigate the thermal performance of variable conductance heat pipe (VCHP) with screen meshed wick. The active length of condenser section in a VCHP is varied by non-condensible gas, which controls the operating temperature, and the heat capacity of VCHP is controlled by the operating temperature. In this study, numerical analysis of the VCHP based on the diffusion model of non-condensible gas is done for the thermal control performance of VCHP. Water is used as a working fluid and nitrogen as a control non-condensible gas in the copper tube. As a result, the thermal conductance of VCHP has been compared with that of constant conductance heat pipe (CCHP) corresponding to the variation of operating temperature.

CFD 해석을 통한 하이브리드 공조시스템의 인체 온열감의 불균일성에 관한 연구 (Study on Non-uniform Thermal Comfort in Hybrid Air-Conditioning System with CFD Analysis)

  • 남유진;성민기;송두삼
    • 설비공학논문집
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    • 제23권3호
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    • pp.216-222
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    • 2011
  • Recently, hybrid air-conditioning system has been proposed and applied to achieve building energy saving. One example is a system combining radiation panel with natural wind-induced cross-ventilation. However, few research works have been conducted on the non-uniformity of thermal comfort in such hybrid air-conditioning system. In this paper, both thermal environment and non-uniform thermal comfort of human thermal model under various air-conditioning system, including hybrid system, were evaluated in a typical office room using coupled simulation of computation fluid dynamics, radiation model and a human thermal model. The non-uniformity of thermal comfort was evaluated from the deviation of surface temperature of human thermal model. Flow fields and temperature distribution in each case were represented.

Structural Stability of High-temperature Butterfly Valve Using Interaction Analysis

  • Lee, Moon-Hee;Son, In-Soo
    • 한국산업융합학회 논문집
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    • 제23권6_1호
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    • pp.881-888
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    • 2020
  • A butterfly valve is a valve that adjusts flow rate by rotating a disc for about 90° with respect to the axis that is perpendicular to the flow path from the center of its body. This valve can be manufactured for low-temperature, high-temperature and high-pressure conditions because there are few restrictions on the used materials. However, the development of valves that can be used in a 600℃ environment is subject to many constraints. In this study, the butterfly valve's stability was evaluated by a fluid-structured interaction analysis, thermal-structure interaction analysis, and seismic analysis for the development of valves that can be used in high-temperature environments. When the reverse-pressure was applied to the valve in the structural analysis, the stress was low in the body and seat compared to the normal pressure. Compared with the allowable strength of the material for the parts of the valve system, the minimum safety factor was approximately 1.4, so the valve was stable. As a result of applying the design pressures of 0.5 MPa and 600℃ under the load conditions in the thermal-structural analysis, the safety factor in the valve body was about 3.4 when the normal pressure was applied and about 2.7 when the reverse pressure was applied. The stability of the fluid-structure interaction analysis was determined to be stable compared to the 600℃ yield strength of the material, and about 2.2 for the 40° open-angle disc for the valve body. In seismic analysis, the maximum value of the valve's stress value was about 9% to 11% when the seismic load was applied compared to the general structural analysis. Based on the results of this study, the structural stability and design feasibility of high-temperature valves that can be used in cogeneration plants and other power plants are presented.

열에너지 저장을 위한 지하 암반공동 내 열성층화 거동에 대한 수치해석적 연구 (Numerical Study on the Thermal Stratification Behavior in Underground Rock Cavern for Thermal Energy Storage (TES))

  • 박도현;김형목;류동우;최병희;선우춘;한공창
    • 터널과지하공간
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    • 제22권3호
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    • pp.188-195
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    • 2012
  • 본 연구에서는 전산유체역학 코드인 FLUENT를 이용하여 열에너지 지하 저장을 위한 최초의 대규모 암반공동인 스웨덴 Lyckebo 저장소의 열성층화 거동을 분석하였다. 열에너지의 반복적인 저장 및 생산으로 인한 주변 암반의 히팅이 열성층화와 열손실에 미치는 영향을 분석하기 위해 암반의 온도조건을 달리하여 열전달 해석을 수행하였으며, 성층화 지수를 토대로 열에너지 저장 후 시간경과에 따른 열성층화의 변화를 정량적으로 분석하였다. 분석결과, 주변 암반이 히팅되지 않은 저장공동의 초기 운영단계에서는 시간경과에 따라 저장된 열에너지의 성층화가 빠르게 저하되는것으로 나타났으며, 저장공동의 운영기간이 늘어남에 따라 주변 암반의 히팅으로 인해 열성층화의 변화 및 열손실이 줄어드는 것을 확인하였다.

증기 개질기의 반응 및 열변형 특성에 미치는 공정가스와 버너가스 온도의 영향 (Effect of Process Gas and Burner Gas Temperature on Reaction and Thermal Deformation Characteristics in a Steam Reformer)

  • 한준희;김지윤;이정희;이성혁
    • 한국산학기술학회논문지
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    • 제17권9호
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    • pp.126-132
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    • 2016
  • 본 연구는 전산유체역학 기법을 이용하여 수소 생산 플랜트의 개질 튜브 공정가스와 버너 가스 온도에 따른 화학반응과 열변형 특성을 분석한다. 개질로 내부의 온도는 약 800 K 내지 1000 K 이상으로 고온으로 유지되기 때문에 튜브의 열변형 문제가 심각하게 발생할 수 있다. 따라서 개질로의 구조건전성을 평가하고 안정된 생산력을 가진 장비를 운영하기 위해서 반응과 열변형 특성에 대한 이해는 필수적이다. 본 연구는 상용 전산해석 코드(ANSYS Fluent/Mechanical V.13.0)를 사용하여, 대류, 전도 및 복사 열전달을 포함한 복합 열전달과 난류유동을 3차원적으로 해석하였다. 특히, 열유동 특성에 따른 연성해석(Fluid-Solid Interaction: FSI)를 수행하였으며 고온 버너가스와 공정가스 운전조건에 따른 반응 특성과 열변형 변화를 분석하였다. 수치해석 결과, 개질 공정가스와 버너 가스의 주입온도가 각각 200 K 감소하면, 수소생성량은 최대 약 4 배, 최소 약 2 배 감소한다. 또한, 공정가스와 버너 가스의 주입온도에 따라 열변형은 최대 약 20%, 최소 약 15% 감소한다.

비평형 습증기 모델을 적용한 증기 응축 유동 해석 (ANALYSIS ON STEAM CONDENSING FLOW USING NON-EQUILIBRIUM WET-STEAM MODEL)

  • 김창현;박재현;고동건;김동일;김영상;백제현
    • 한국전산유체공학회지
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    • 제20권3호
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    • pp.1-7
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    • 2015
  • When the steam is used as working fluid in fluid machinery, different from other gases as air, phase transition (steam condensation) can occur and it affects not only the flow fields, but also machine performance & efficiency. Therefore, considering phase transition phenomena in CFD calculation is required to achieve accurate prediction of steam flow and non-equilibrium wet-steam model is needed to simulate realistic steam condensing flow. In this research, non-equilibrium wet-steam model is implemented on in-house code(T-Flow), the flow fields including phase transition phenomena in convergent-divergent nozzle are studied and compared to results of advance researches.