• 제목/요약/키워드: heat storage rate

검색결과 322건 처리시간 0.031초

슬래브축열의 최적축열시간 산정 : 구배법 알고리즘에 의한 해석 (An Analysis of the Optimal Thermal Storage Time of Air-Conditioning System with Slab Thermal Storage : An Analysis by the Gradient Method Algorithm)

  • 정재훈
    • 설비공학논문집
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    • 제20권10호
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    • pp.702-709
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    • 2008
  • In this paper, the optimal thermal storage time of an air-conditioning system with slab thermal storage in office building was analyzed on the basis of the gradient method algorithm. The sum of room temperature deviation and heat extraction rate was set to the criterion function. It was calculated that four hours is the optimal thermal storage time under the standard evaluation criterion. Furthermore, some case studies were executed by controlling ratio of weight functions of room temperature deviation and heat extraction rate in criterion function. It is possible to design many kinds of optimal operation of an air-conditioning system with slab thermal storage by controlling ratio of the weight functions in criterion function.

플라스틱 온실(溫室)의 열저장(熱貯藏) 시스템 개발(開發)에 관(關)한 연구(硏究)(I) -수막식(水膜式) 열교환(熱交換) 시스템의 개발(開發)- (Development of Thermal Storage System in Plastic Greenhouse (I) -Development of Air-Water Heat Exchange System-)

  • 김용현;고학균;김문기
    • Journal of Biosystems Engineering
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    • 제15권1호
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    • pp.14-22
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    • 1990
  • For efficient use of solar energy in plastic greenhouse, thermal storage system was developed. The system was constructed with the counter-flow type air-water heat exchanger using a thin polyethylene film as a medium of heat exchange parts. Experiments were carried out to investigate the heat exchange rate, optimum water flow rate, overall heat transfer coefficient, and the effectiveness of the counter-flow type air-water heat exchanger with polyethylene film bags. Mathematical model to predict air temperature leaving heat exchanger was developed. The results obtained in the present study are summarized as follows. 1. Heat exchange rate in the counter-flow type air-water heat exchanger with polyethylene film bags was compared to that of polyethylene film. Heat exchange rate was almost identical at air velocity of 0.5m/s on polyethylene film surface. But, heat exchange rate of heat exchanger with polyethylene film bag was $32{\sim}55KJ/m^2$ hr higher than that of polyethylene film at air velocity of 1.0m/s. 2. Considering the formation of uniform water film and the sufficient heat exchange rate of polyethylene film bags, optimum water flow rate in polyethylene film bags was $3.0{\sim}6.0{\ell}/m^2$ min. 3. The overall heat transfer coefficient of polyethylene film bags was found to be $35.0{\sim}130.0KJ/m^2\;hr\;^{\circ}C$ corresponding to the air velocity ranging 0.5 to 4.0 m/s on polyethylene film surface. And the overall heat transfer coefficient showed almost linearly increasing tendency to the variation of air velocity. 4. Mathematical model to predict air temperature leaving the heat exchanger was developed, resulting in a good agreement between the experimental and predicted values. But, the experimental results were a little lower than predicted. 5. Effectiveness of heat exchanger for the experiment was found to be 0.40~0.81 corresponding to the number of transfer units due to the variation of air velocity ranging 0.6 to 1.7 m/s.

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축냉 시스템이 차 실내 열 쾌적성에 미치는 영향에 관한 실험적 연구 (Experimental Study of the Effect on Cabin Thermal Comfort for Cold Storage Systems in Vehicles)

  • 이대웅
    • 한국자동차공학회논문집
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    • 제23권4호
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    • pp.428-435
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    • 2015
  • This paper presents the experimental study of cabin thermal comfort using a cold storage heat exchanger in a vehicle air-conditioning system. Recent vehicle-applied ISG functions for fuel economy and emission, but when vehicles stop, compressors in the air-conditioning system stop, and the cabin temperature sharply increases, making passengers feel thermal discomfort. This study conducts thermal comfort evaluation in the vehicle, which is applied to a cold storage system for the climate control wind tunnel test and the vehicle fleet road test with various airflow volume rates and ambient temperatures blowing to the cold storage heat exchanger. The experimental results, in the cold storage system, air discharge temperature is $3.1-4.2^{\circ}C$ lower than current air-conditioning system when the compressor stops and provides cold air for at least 38 extra seconds. In addition, the blowing airflow volume to the cold storage heat exchanger with various ambient temperature was examined for the control logic of the cold storage system, and in the results, the airflow volume rate is dominant over the outside temperature. For this study, a cold storage system is economically useful to keep the cabin at a thermally comfortable level during the short period when the engine stops in ISG vehicles.

극저온 액체수소 저장탱크 지지시스템의 열응력 해석 (Thermal Stress Analysis of the Support System in Cryogenic Liquid Hydrogen Storage Tank)

  • 박동훈;윤상국;이정환;조원일;백영순
    • 한국마린엔지니어링학회:학술대회논문집
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    • 한국마린엔지니어링학회 2005년도 전기학술대회논문집
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    • pp.239-245
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    • 2005
  • The reduction of heat transfer rate to the stored liquid hydrogen from outside condition is extremely important to keep the liquid hydrogen longer. In this paper the highly efficient support system for the liquid hydrogen storage vessel was newly developed and analysed. The support system was composed of a spherical ball in the center of supporter to reduce the heat transfer area, with its above and below supporting blocks which are the SUS and PTFE blocks inserted in the SUS tube. The heat transfer rate and temperature distribution of the support system were evaluated by FLUENT, and the thermal stress and strain were estimated by ANSYS software. The results showed that the heat transfer rate from outer vessel to inner one was extremely decreased compared with the common method which is simply SUS tubes inserted between inner and outer tanks. The thermal stress and strain were obtained well below the limited values. As a result, it was the most efficient support system of storage vessel for liquid hydrogen and most cryogenic fluids.

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액체수소 저장탱크용 고효율 지지 시스템 개발 및 해석 (Development and Analysis of the Highly Efficient Support System in a Liquid Hydrogen Vessel)

  • 윤상국;박동훈
    • Journal of Advanced Marine Engineering and Technology
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    • 제31권4호
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    • pp.363-369
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    • 2007
  • Probably the most significant heat transfer in the cryogenic liquid hydrogen storage tank from the atmosphere may occur through its support system. In this paper the efficient support system for the cryogenic storage vessel was newly developed and analysed. The support system was composed of a spherical ball as a supporter to reduce the contact area. which is located between two supporting SUS tubes inserted SUS and PTFE blocks. Numerical analyses for temperature distribution, and the thermal stress and strain of the support system were performed by the commercial codes FLUENT and ANSYS. The heat transfer rate of the supporter was evaluated by the thermal boundary potential method which can consider the variation of thermal conductivity with temperature. The results showed that the heat transfer rate through the developed supporter compared with the common SUS tube supporter was significantly reduced. The thermal stress and strain were obtained well below the limited values. It was found that the developed supporter can be one of the most efficient support systems for cryogenic liquid storage vessel.

암반공동 열에너지저장과 지상식 열에너지저장의 열손실 비교 분석 (A Comparative Study on Heat Loss in Rock Cavern Type and Above-Ground Type Thermal Energy Storages)

  • 박정욱;류동우;박도현;최병희;신중호;선우춘
    • 터널과지하공간
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    • 제23권5호
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    • pp.442-453
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    • 2013
  • 본 연구에서는 FLAC3D를 이용해 대용량 고온 열에너지저장소가 암반공동과 지상에 위치하는 경우를 각각 모델링하고 운영기간 5년 동안의 비정상상태해석을 수행하여 저장소 외벽을 통한 열손실을 비교 분석하였다. 두 저장모델의 운영 조건 및 입력물성은 모두 동일하나, 암반공동 열에너지저장소는 주변 암반의 전도 열전달에 의해서만 열손실이 발생하고, 지상 저장소는 대기의 대류 열전달에 의해서 열손실이 발생하는 것으로 가정하였다. 열에너지의 반복적인 주입과 토출에 따른 저장온도의 변화를 고려하여 수치해석모델을 작성하였으며, 단열재 두께에 따른 열손실 특성을 함께 검토하였다. 해석 결과, 지상식 저장시설은 운영 기간이 경과하더라도 일정한 열손실률을 보이는 반면 암반공동 저장시설의 열손실률은 운영 초기 단계에서 급격히 감소하여 일정한 값으로 수렴하는 경향을 보였다. 이러한 열손실의 감소는 시간 경과에 따라 주변 암반의 온도가 상승함으로써 저장소외벽에서의 열유속이 감소하기 때문으로 판단할 수 있다. 운영 후 5년 경과 시 암반공동 열에너지저장소의 누적열손실량은 지상저장소에 비해 약 72.7%로 나타났으며, 암반공동 저장시설의 열손실 특성은 주변 암반의 히팅 효과로 인해 지상식 저장시설에 비해 단열재 두께에 대한 민감도 및 의존도가 상대적으로 낮은 것으로 분석되었다.

이중 축열조를 갖는 축열식 지열원 히트펌프시스템의 노인공동주택 적용 분석연구 (Application analysis to a shared apartment house of heat storage type GSHP system with dual storage tank)

  • 박종우;이상훈;조성환
    • 대한설비공학회:학술대회논문집
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    • 대한설비공학회 2008년도 동계학술발표대회 논문집
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    • pp.27-32
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    • 2008
  • The present study has been conducted economic analysis of heat storage type ground source heat pump system(HSGSHP) and normal ground source heat pump (GSHP) which are installed at the same building in the shared an apartment house. Cost items, such as initial cost, annual energy cost and maintenance cost of each system are considered to analyze life cycle cost (LCC) and simple payback period (SPP) with initial cost different are compared. The initial cost is a rule to the Government basic unit cost of production. LCC applied present value method is used to assess economical profit of both of them. Variables used to LCC analysis are prices escalation rate and interest rate mean values of during latest 10 years. The LCC result shows that HSGSHP (1,050,910,000won) is more profitable than GSHP by 68.9% initial cost. And SPP appeared 3.0 year overcome the different initial cost by different annual energy cost.

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원통형 용기에서의 잠열 축열에 관한 실험적 연구 (An Experimental Study on the Latent Heat Storage Using Phase Change Material Within Cylindrical Can)

  • 고득용;최헌오;김효봉
    • 한국기계연구소 소보
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    • 통권19호
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    • pp.23-30
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    • 1989
  • Heat transfer phenomena of solidification process of the phase change material within cylindrical can is studied experimentally. N-Eicosane paraffin wax is used for phase change material and its melting temperature is 309.8 K. In order to achieve higher heat transfer rate of latent heat storage apparatus, fins in made of copper are used in the cylindrical can. If there are fins in cylindrical can, we can know that the inward latent heat energy in paraffin can be effectively transfered to cooling water than if finless.

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Liquid Based Solar Thermal Storage를 위한 열교환성능(熱交換性能)에 관한 연구(硏究) (A Study on the Heat Exchange Performance for the Liquid Based Solar Thermal Storage)

  • 김병철;정현채
    • 태양에너지
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    • 제5권2호
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    • pp.35-45
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    • 1985
  • A solar hot water storage tank was designed and constructed to examine the heat exchange performances on load side for the solar thermal storage in a single loop solar water heating system. In the tank helically coiled tube was immersed. The hot water was circulated from either top or bottom. The circulation flow rate was varied from 500 ml/min to 20,000 ml/min. The effect of flow rate was observed. The thermal performances according to the flow rate and flow direction were examined. The temperature distributions in the tank and inside of the tubes were plotted along the process of cooling.

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냉각탑을 이용한 축열식 히트펌프시스템의 성능측정에 관한 연구 (A study on performance test of water heat storage type heat-pump system using cooling tower heat source)

  • 이상훈;박효식;한우용;김욱중
    • 대한설비공학회:학술대회논문집
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    • 대한설비공학회 2008년도 하계학술발표대회 논문집
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    • pp.1099-1104
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    • 2008
  • Recent year, mean energy consumptions of a people are higher than other country. And international oil price became over 120 dollar. This energy environment as well as energy war. Maybe, the Meteorological Administration is going to enforce scorching heatwave special report system from that come summer. Besides, 2008 summer, maximum demand power is expected by 64,240,000kW. The electric power equipment reserve rate appeared in to keep 12.5% level. Chilled water storage system witch is one of electric load administration system. Heat pump system used cooling tower heat recovery is advantage that use is possible to summer in small a public bath building. In this paper, we suggest that heat pump system by heat recovery using cooling tower when it is heating operation of ambient air temperature. To apply cooling tower heat recovery heat pump to chilled water heat storage type and achieved performance evaluation about operation. As a result, performance of heat pump system that about 121% in cooling mode, 138% in heating mode higher than KEPCO standard. And heating operation possible to ambient air temperature about $23^{\circ}C$, which of appear cooling tower outlet temperature about $13^{\circ}C$.

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