• Title/Summary/Keyword: 냉방성능계수

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Characteristic Analysis of Hybrid Desiccant Cooling System for District Heating in Residential Environment (지역난방에 연계된 하이브리드 제습냉방시스템의 주거환경에서의 성능 분석)

  • Ahn, Joon;Kim, Jaeyool;Kang, Byung Ha
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.38 no.7
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    • pp.571-579
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    • 2014
  • A series of field tests on hybrid desiccant cooling systems were conducted in July-August, 2013. The temperature and humidity of the supply and return air, power, and heat consumption were monitored and transferred in real time through the Internet. The performance parameters of the cooling system, namely, cooling capacity and COP (coefficient of performance), were evaluated from the measured data and their variations under outdoor conditions was analyzed. It was found that with increase in the outdoor temperature, the total energy decreases and cooling capacity increases whereas the latter decreases with increase in the outdoor humidity. The COP was also found to increase with the increase in outdoor temperature.

A Study on Cooling Performance and Exergy Analysis of Desiccant Cooling System in Various Regeneration Temperature and Outdoor Air Conditions (재생온도와 외기조건 변화에 따른 제습 냉방시스템의 냉방 성능 및 엑서지 해석에 관한 연구)

  • Lee, Jang Il;Hong, Seok Min;Byun, Jae Ki;Choi, Young Don;Lee, Dae Young
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.38 no.5
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    • pp.413-421
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    • 2014
  • Desiccant cooling system is an air conditioning system that uses evaporative cooler to cool air and it can perform cooling by using heat energy only without electrically charged cooler. Thus, it can solve many problems of present cooling system including the destruction of ozone layer due to the use of CFC[chloro fluoro carbon] affiliated refrigerants and increase of peak power during summer season. In this study, cooling performance and exergy analysis was conducted in order to increase efficiency of desiccant cooling system. Especially, using exergy analysis based on the second law of thermodynamics can resolve the issue related to system efficiency in a more fundamental way by analyzing the cause of exergy destruction both in whole system and each component. The purpose of this study is to evaluate COP[coefficient of performance], cooling capacity and exergy performance of desiccant cooling system incorporating a regenerative evaporative cooler in various regeneration temperature and outdoor air conditions.

Thermodynamic Performance Analysis of Heat Pump Using Thermoelectric Semiconductor (열전반도체를 이용한 열펌프의 열역학적 성능 해석)

  • 박영무
    • Journal of Energy Engineering
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    • v.2 no.1
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    • pp.95-103
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    • 1993
  • A conceptual thermoelectric heat pump(cooling mode) of small capacity is designed. Its performance is investigated through parametric analysis. COP and cooling capacity decease as the ambient temperature increases with ${\mu}$, J, T$\sub$wi/, fixed. To design a system of fixed capacity comes to calculate ${\mu}$ and J when T$\sub$wi/, and T$\sub$a/ are given. As v is fixed by semi-conductor manufacturers, optimum combination of n and I should be searched for ν. Optimum current could be calculated using ${\mu}$-J curve and optimum value of ${\mu}$. COR$\sub$R/ increases as water flow rate increases and T$\sub$a/ decreases. The effect of heat transfer coefficient at hot(heat releasing) side is more significant than that at cold(heat absorbing) side.

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Cooling Performance of Geothermal Heat Pump using Alluvium Aquifer (충적대수층을 이용한 지열히트펌프시스템의 냉방성능)

  • Kang, Byung-Chan;Park, Jun-Un;Lee, Chol-Woo;Song, Yoon-Ho
    • 한국신재생에너지학회:학술대회논문집
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    • 2009.11a
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    • pp.561-566
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    • 2009
  • Alluvium is sedimentary stratum and composed of gravel, sand, silt, clay. Permeability of alluvium is the higher. If alluvium have lots of aquifer, will be of great use heat source and heat sink of heat pump. Alluvium aquifer contain the thermal energy of surrounding ground. Also geothermal heat pump using alluvium aquifer reduce expenses than general geothermal heat pump, because geothermal heat pump using alluvium aquifer make use of single well. In this study geothermal heat pump using alluvium aquifer was installed and tested for a building. The heat pump capacity is 30USRT. Temperature of ground water is in $12{\sim}17^{\circ}C$ annually and the quality of the water is as good as living water. The heat pump cooling COP is 4.4 ~ 4.7. The system cooling COP is 3.25 ~ 3.6. This performance is as good as BHE type ground source heat pump.

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Cooling Performance Characteristics of High-Performance Heat Pump with VI Cycle Using Re-Cooler (재냉기를 이용한 고성능 VI(Vapor Injection)사이클 열펌프의 냉방 성능특성에 관한 연구)

  • Lee, Jin-Kook;Choi, Kwang-Hwan
    • Journal of Advanced Marine Engineering and Technology
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    • v.39 no.6
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    • pp.592-598
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    • 2015
  • In this study, we experimentally investigate the performance characteristics of a high-performance summer-cooling heat pump for an R410A by applying an air-cooled-type vapor-injection (VI) cycle. The devices used for the experiment consist of a VI compressor, condenser, oil separator, plate-type heat-exchanger, economizer, evaporator, and re-cooler. The experimental conditions employed for the cooling performance were divided into three cycles. First, in Cycle A, we apply a VI cycle and with no heat exchange between the evaporator outlet refrigerant and the VI cycle suction refrigerant in the re-cooler. For Cycle B, there is heat exchange, and for Cycle C, there is neither a VI cycle nor heat exchange between the evaporator outlet refrigerant and the VI cycle suction refrigerant. From the analysis results, we observe that the performance was highest in the VI cycle with heat exchange between the evaporator outlet refrigerant and the VI cycle suction refrigerant (Cycle B), while it was lowest in Cycle C without application of the VI cycle. Moreover, the cooling coefficient of Performance ($COP_C$) averaged 3.5 in Cycle B, which was 8.6% higher than the corresponding value in Cycle A, and 33% higher than that in Cycle C.

Construction of the Heat Pump System Using Thermal Effluents for Greenhouse Facilities in Jeju and Evaluation of Cooling Performance (제주 시설온실 냉난방을 위한 발전소 온배수 활용 열펌프 시스템 구축 및 냉방성능 평가)

  • Lee, Yeon-Gun;Heo, Jaehyeok;Lee, Dong-Won;Hyun, Myung-Taek
    • Journal of Energy Engineering
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    • v.27 no.4
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    • pp.70-79
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    • 2018
  • A heat pump system using the thermal effluent from the Jeju thermal power plant of KOMIPO was constructed with the capacity of 300 RT to supply cool or hot water to greenhouse facilities located 3 km from the power station. The way of transporting heat from the thermal effluent to greenhouses at a long distance was optimized, and a monitoring system to measure the water temperature and detect a leakage in a pipe conduit was also installed. This paper presents the system configuration of the constructed heat pump system for air conditioning and heating of greenhouse facilities in Jeju, and the characteristics of major components deployed in the system. The preoperational tests of the heat pump system were conducted during the summer season in 2018 for evaluation of its cooling performance. The operational stability and cooling performance of the heat pump system were confirmed by investigating the measured fluid temperature and flow rate, and COP of the heat pump in a cooling mode.

Computational Design of a 50 kW Chemical Heat Pump System for Air-Conditioning (50 kW 냉방용 화학열펌프 시스템의 전산설계)

  • 서정원;김성준;이태희
    • Journal of Energy Engineering
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    • v.4 no.1
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    • pp.67-75
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    • 1995
  • 50 kW 냉방용 화학열펌프에 관한 전산설계를 하기 위하여 반응기 모사용 부프로그램을 작성하였으며 전체 시스템을 위하여 상용모사기인 ASPEN PLUS를 이용하였다. 반응물로 각각 SrCl2-8/1 NH3 그리고 MnCl2-6/2 NH3를 사용하는 두 시스템에 대하여 비교 연구하였으며, 조작조건에 따라 시스템 설계치의 변화를 관찰하였다. 이로부터 향후 실용화될 화학열펌프 시스템에 대한 기본 설계자료를 제시할 수 있었다. SrCl2-8/1 NH3를 반응물로 한 경우 반응기의 UA는 6,868.2 J/(s·K), 출력은 95.2 kW이었고, 제한 성능 계수는 0.40이었다. MnCl2-6/2 NH3의 경우 UA는 1,569.7 J/(s·K), 출력은 109.0 kW이었으며 제한 성능계수는 0.34이었다. 이로부터 SrCl2-8/1 NH3을 반응물로 한 시스템이 MnCl2-6/2 NH3를 사용한 시스템보다 유리함을 알 수 있었다.

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Performance Analysis of Heat Pump System for Greenhouse Cooling (온실 냉방을 위한 히트펌프의 성능 분석)

  • 윤용철;서원명;이석건
    • Magazine of the Korean Society of Agricultural Engineers
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    • v.43 no.6
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    • pp.120-126
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    • 2001
  • This experiment was carried out to analyse on the cooling and dehumidifying effects of greenhouse by air-to-water heat pump system employing the air as cooling source. following results were obtained ; 1. The coefficients of performance (COP) of heat pump itself and total heat pump system were approximately 2.71~2.88 and 1.99~2.22, respectively. 2. The night-time cooling load of experimental greenhouse was 64.9 MJ/h, and the heat absorbed (cooling load) from heat pump system was 816.3~1,004.6 MJ/day. 3. The dehumidified moisture amount from experimental greenhouse was 7.0~15.0 kg/h. 4. The night time temperature of experimental greenhouse cooled by heat pump system could be maintained 4~6$^{\circ}C$ lower than that of control greenhouse which was almost equal to outside air temperature.

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Capacity Modulation of a Ground Source Multi-Heat Pump in the Part Load Condtions (축열형 지열원 냉난방 시스템의 단기 성능 특성 연구)

  • Kim, Namtae;Cho, Chanyong;Choi, Jong Min
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.11a
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    • pp.119-119
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    • 2010
  • 무한 지속 가능한 지열 에너지를 활용한 공조시스템인 지열원 냉난방 시스템은 기존의 공조 시스템보다 열원이 안정적이기 때문에 높은 효율과 우수한 성능을 가지므로, 기후변화협약 대응의 주요수단으로서 기술개발과 보급이 증대되고 있다. 본 연구에서는 대수층 축열 지열원 열펌프 시스템에 대한 실증 연구를 통하여 대수층 축열 지열원 열펌프 시스템의 하절기 냉방 성능을 분석하였다. 대수층 축열 냉난방 시스템은 주입정과 양수정의 2개의 우물공이 설치되어 있으며, 겨울 난방 운전 중에 한 개의 우물공으로부터 지하수를 열펌프로 유입한 후 낮은 온도의 지하수를 타 우물공에 축열하고, 하절기에 겨울에 저온으로 축열된 우물공으로부터 지하수를 열펌프로 유입하여 온도가 증가된 지하수를 타 우물공에 주입한다. 즉, 계절별로 열펌프에서 생성된 냉수와 온수의 대수층 축열을 위하여 계절별로 주입정과 양수정이 바뀌게 된다. 본 연구의 대수층 축열 지열원 열펌프 시스템의 2009년 8월의 주요일자별 시스템 운전 중의 평균 냉방 열펌프 유닛 COP와 냉방 시스템 COP는 각각 4.7과 3.4이상의 우수한 성능을 나타냈다. 또한, 모든 일자에 대하여 외기온도가 $31.6^{\circ}C$$22^{\circ}C$까지 변화가 크게 나타났지만 열펌프 유닛 COP와 시스템 COP의 변화는 미소하였다. 이는 양수정으로부터의 지중 순환수가 운전기간 중에 $17.5^{\circ}C$로 일정하게 유지되었기 때문이다. 양수정과 주입정 사이에 5개의 관측공을 설치하였으며, 양수정 측에 인접한 관측공의 온도는 거의 변화가 없었으며, 단기간이지만 널리 사용되고 있는 수직밀폐형 시스템과 달리 지속적인 냉방운전 중의 양수 온도의 증가는 발생하지 않아 안정적인 성능을 나타냈다. 주입정에 인접한 모니터링 홀의 온도는 심도가 깊은 곳의 온도가 낮은 곳보다 높게 나타났다. 이는 냉방 운전 시 열펌프 유닛의 실외열교환기에서 지중 순환수가 냉매로부터 열을 취득하여 온도가 상승하면서 주입정측에 온열이 축열이 진행되었기 때문으로 분석되며, 하절기의 냉방 운전 시간이 증가할 경우 축열 효과는 더욱 증가할 것으로 예상된다. 양수정과 주입정 중간의 모니터링 홀의 온도는 2009년 8월 가동 중에 온도변화는 없었는데, 이는 양수정과 주입정 사이의 열간섭이 발생하지 않았기 때문으로 분석된다. 일자별로 운전 중의 열펌프 유닛 COP는 차이가 없었지만, 운전 및 정지 시간을 모두 포함한 시스템 소비전력과 냉방용량을 모두 합산하여 산정한 일일 평균 냉방 열펌프 유닛 COP와 냉방 시스템 COP는 일자별로 다소 차이가 발생하였는데, 이는 각 일자별로 열펌프 유닛 가동율의 차이로 인하여 열펌프 유닛 가동 전에 먼저 작동되는 지중순환펌프의 운전 소비전력의 차이와 열펌프의 단속운전 시의 열손실과 추거 소비전력의 차이 때문이다.

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Performance and heat transfer of an air conditioning system filled with hydrocarbon refrigerants (탄화수소 냉매를 사용한 냉방시스템의 성능 및 열전달 특성)

  • Jang, Yeong-Su;Kim, Min-Su;No, Seung-Tak
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.21 no.5
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    • pp.713-723
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    • 1997
  • Performance and heat transfer characteristics of an air conditioning system filled with hydro- carbon refrigerants are experimentally investigated. Single component hydrocarbon refrigerants (propane, isobutane, butane and propylene) and binary mixtures of propane/isobutane and propane/butane are considered as working fluids in the air conditioning system. Performances of each refrigerant are obtained at several compressor speeds and temperature levels of secondary heat transfer fluids. The cooling capacity and the coefficient of performance are obtained as test results. Heat transfer data of selected refrigerants are achieved from overall conductance measurement. Average heat transfer coefficients at different mass fluxes are shown and they are also displayed for different heat capacities of the system. Experimental results show that some hydrocarbon refrigerants have better characteristics than R22.