• Title/Summary/Keyword: 현열부하

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The Performance Analysis of a Return Air Bypass Air Conditioning System by a Simulator Experiment (실물실험에 의한 순환공기 바이패스 공조시스템의 성능분석)

  • 신현준;김보철;김정엽
    • Journal of Energy Engineering
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    • v.11 no.2
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    • pp.130-135
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    • 2002
  • Bypass air conditioning systems are divided into three types; outdoor air bypass, mixed air bypass and return air bypass system. Among bypass air conditioning systems, a return air bypass system is more effective than other two systems because it doesn't induce unconditioned outdoor air into conditioned room. The numerical study on the bypass air conditioning system shows this system can maintain indoor RH(Relative Humidity) less than a conventional CAV (Constant Air Volume) air conditioning system by adjusting face and bypass dampers at part load. A simulator was built to compare results of a numerical experiment and those of a simulator experiment. The results of the simulator experiment was nearly same as those of the numerical experiment; when a design sensible load (the ratio of sensible load to total sensible load) was 70 percent (at this time, RSHF=0.7), indoor relative humidity (in case of both numerical experiments and simulator experiments) was maintained below 60% specified by ASHRAE STANDARD 62-1999. The bypass air conditioning system is expected to be applied to many buildings where the Percentage of latent loads or air change tate is high.

A Study on Estimation of Cooling Load for Effective Control of Ice Thermal Storage System (빙축열 시스템의 효율적인 제어를 위한 냉방부하 예측에 관한 연구)

  • Yoo, Seong-Yeon;Han, Kyu-Hyun;Lee, Je-Myo;Han, Seung-Ho
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.20 no.2
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    • pp.128-136
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    • 2008
  • It is necessary to estimate the cooling load of the next day for effective control of ice thermal storage system. In this paper, new methodology is proposed to estimate the cooling load using design parameters of building and predicted weather data. Only six input parameters such as sensible heat coefficient and constant, latent heat coefficient and constant, maximum and minimum temperature are necessary to obtain hourly distribution of cooling load for the next day. Two benchmarking buildings(hospital and research institute) are selected to validate the performance of the proposed method, and the estimated cooling loads in hourly and daily bases are calculated and compared with the measured data for E hospital. The estimated results show fairly good agreement with the measured data for both buildings.

Storage of Heat Energy (熱에너지의 貯藏)

  • 노승탁
    • Journal of the KSME
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    • v.18 no.4
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    • pp.27-34
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    • 1978
  • 열에너지의 저장시스템은 축열채조, 열전달기기와 용기 및 보온재의 3개 주요부로 이루어진다. 축열재료는 현열계의 경우 온도가 상승하거나 잠열이용의 경우 상변화가 생기는 재료를 말한다. 열전달기기는 열에너지를 열원으로부터 축열재로 건열시키거나 축열재로부터 열부하측으로 열에 너지를 전달시키는 역할을 한다. 보온이 된 용기는 축열재를 외부로부터 열차단이 되도록 하여 외부로의 에너지 손실이 없도록한다. 열에너지저장시스템의 주성능득성은 용량, 에너지전달원, 저장온도에 의하여 주어진다. 여기서 용량은 축열재가 저장할 수 있는 에너지의 양을 뜻하고 열 전달율은 에너지원으로부터 축열재료로 또는 반대로 축열재료로부터 에너지부하측으로 전달시킬 수 있는율을 의미한다. 축열온도는 현열계에서는 축열재의 온도가 된다. 이 해설에서는 최근 발간 된 수 개의 자료를 발췌하여 간략히 그 내용을 알리고자 한다.

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A study on the performance enhancement for combined cycle using cold heat of LNG (LNG 냉열을 이용한 복합사이클 발전시스템의 성능개선연구)

  • 김용희;김병일
    • Proceedings of the Korea Society for Energy Engineering kosee Conference
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    • 1996.10b
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    • pp.77-80
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    • 1996
  • 우리나라에서 피크부하용으로 사용하는 복합발전이 하계시에서 외기온도가 상승함에 따라 실제로는 정격출력을 내지 못하고 있다. 따라서 본 연구에서는 연료(LNG)의 냉열을 이용하여 가스터빈의 연소용공기를 냉각시킬 경우, 복합발전 시스템의 성능변화를 분석하기 위하여 시뮬레이션을 수행하였다. 그 결과 LNG의 냉열을 이용하여 연소용공기를 원하는 온도까지 냉각시킬 수 있음을 확인할 수 있었다. 또한 연소기로 연료를 투입하기전에 설계온도까지 예열시키는 열교환기를 통해 배기가스에 함유된 현열을 더욱 많이 회수하면서, 가스터빈 투입연료의 온도를 상승시킬 수 있어, 시스템효율이 더욱 상승함을 알 수 있었다. 결론적으로 외기온도가 변하는 경우에, 본 시스템의 도입을 위해서는 경제성분석과 더불어 열교환기 시스템의 최적합성이 추후 진행되어야 할 것이며, 이를 통해 최적의 발전시스템을 구성할 수 있으리라 생각된다.

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An Experimental Study on Minimization of Storage Tank for Solar Thermal Energy (태양열 저장을 위한 축열조 소형화 실험적 연구)

  • Yang, Yoon-S.;Sohn, Chang-W.;Lenotre, C.;Kanari, K.
    • Solar Energy
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    • v.18 no.1
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    • pp.45-55
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    • 1998
  • 태양열이나 심야전력과 같이 에너지의 공급과 수요가 시차적으로 다를 경우 축열저장이 필수적이다. 축열조는 부하에 따라 그 부피가 커지게 되고 부피는 곧 경제성과 밀접한 관계를 갖고 있다. 따라서 이 연구는 축열조의 소형화에 관한 연구로 이번 실험에서 수행된 Nodule S-64(PCM-NaOH)인 구형 볼타잎을 사용하였고, 260Lit 용량의 축열조를 설계 제작하여 수학적 모델링과 실험을 병행하였다. 실험에 사용한 S-64는 이번 실험을 위해 제작한 것으로 축열 결과 현열인 물의 경우보다 축열량이 두배로 증가하였다. 따라서 기존 축열조 부피를 절반정도 축소가 가능하며, 운전조건에 따라 더이상 줄일 수도 있어 태양열이나 심야전력용 축열조로 매우 적합함을 알 수 있었다.

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Heat Storage Material by Using Phase Change Materials to Control Buildings Thermal Environment Characteristics (건축물 열환경 특성제어를 위한 상변화 축열재)

  • Yun, Huy-Kwan;Han, Seong-Kuk;Shim, Myeong-Jin;Ahn, Dae-Hyun;Lee, Woong-Mok;Park, Jong-Soon;Kim, Jae-Yong
    • Applied Chemistry for Engineering
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    • v.21 no.5
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    • pp.522-526
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    • 2010
  • Heat storage application techniques can be categorized into the sensible heat storage and the latent heat storage according to the method of heat storage. Heat storage is the way of saving remaining heat when heating and cooling loads are light, and then using it when the heating and cooling loads are heavy. Latent heat storage is defined as the method of saving heat by using substances which have high potential heat when phase change is in the range of a certain temperature and when heat storage space is small, compared to those of sensible heat storage and it is possible that absorption and emission of heat at a certain temperature. This study is conducted to save energy when either air-conditioning or heating is operated in a building. We have tried to find out the essential properties of matter and the optimum mixing rate about cement and gypsum for building materials, which have been widely used for proper phase change materials (PCM), when thermal environment property is applied. So we obtained the result of the cooling delay effect about 19% with heat storage mortar containing 3 wt% of PCM.

Development of Summer Leaf Vegetable Crop Energy Model for Rooftop Greenhouse (옥상온실에서의 여름철 엽채류 작물에너지 교환 모델 개발)

  • Cho, Jeong-Hwa;Lee, In-Bok;Lee, Sang-Yeon;Kim, Jun-Gyu;Decano, Cristina;Choi, Young-Bae;Lee, Min-Hyung;Jeong, Hyo-Hyeog;Jeong, Deuk-Young
    • Journal of Bio-Environment Control
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    • v.31 no.3
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    • pp.246-254
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    • 2022
  • Domestic facility agriculture grows rapidly, such as modernization and large-scale. And the production scale increases significantly compared to the area, accounting for about 60% of the total agricultural production. Greenhouses require energy input to create an appropriate environment for stable mass production throughout the year, but the energy load per unit area is large because of low insulation properties. Through the rooftop greenhouse, one of the types of urban agriculture, energy that is not discarded or utilized in the building can be used in the rooftop greenhouse. And the cooling and heating load of the building can be reduced through optimal greenhouse operation. Dynamic energy analysis for various environmental conditions should be preceded for efficient operation of rooftop greenhouses, and about 40% of the solar energy introduced in the greenhouse is energy exchange for crops, so it should be considered essential. A major analysis is needed for each sensible heat and latent heat load by leaf surface temperature and evapotranspiration, dominant in energy flow. Therefore, an experiment was conducted in a rooftop greenhouse located at the Korea Institute of Machinery and Materials to analyze the energy exchange according to the growth stage of crops. A micro-meteorological and nutrient solution environment and growth survey were conducted around the crops. Finally, a regression model of leaf temperature and evapotranspiration according to the growth stage of leafy vegetables was developed, and using this, the dynamic energy model of the rooftop greenhouse considering heat transfer between crops and the surrounding air can be analyzed.