• 제목/요약/키워드: Waste heat water

검색결과 301건 처리시간 0.03초

Control of Water Heat Recovery Chiller Using Split Condenser Templifier Application

  • Cho, Haeng-Muk;Mahmud, Iqbal
    • 에너지공학
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    • 제18권1호
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    • pp.17-21
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    • 2009
  • By using the heat recovery of water-cooled chillers, it is possible to reduce the energy operating costs positively and at the same time it could fulfill the heating re-heat air conditioning system as well as the hot water requirements. Basically templifiers are designed to economically to turn the waste heat into useful heat. Waste heat is extracted from a fluid stream by cooling it in the evaporator, the compressor amplifies the temperature of the heat and the condenser delivers the heat to heating loads such as space heating, kitchens and domestic hot water. Design of higher water temperature requirements and split condenser heat recovery chiller system (using of templifiers) produced hotter condenser water approximately up to $60^{\circ}C$ and control the entire heat recovery system.

Study on Energy Saving Properties by using City- Water as a Heat Source for Dwellings

  • Chung, Yong-Hyun;Mizuno, Minoro;Simoda, Yoshiyuki;Kum, Jong-Soo;Choi, Kwang-Hwan
    • International Journal of Air-Conditioning and Refrigeration
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    • 제6권
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    • pp.168-176
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    • 1998
  • A simulation study was conducted to use city-water which is thermally regulated by unused energy as a heat source for urban dwellings. This study utilized multiple heat pump system using the city-water as a heat source and suggested a method of reducing the heat load of hot water supply. The simulation was done to calculate the energy savings at a dwelling for a year. The relation between the controlled temperature of city-water. and electric energy in all seasons was also investigated. Furthermore, it has been found that the controlled water system can lead to considerable energy savings and decrease environmental load such as sensible waste heat which otherwise would form heat islands.

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톱니형휜이 부착된 2중 열교환관을 이용한 엔진 배열회수기에 관한 실험적 연구 (An Experimental Study on the Heat Exchanger for the Engine Waste Heat Recovery Using Serrated Fins and Bayonet Tube)

  • 양태진;김종수;임용빈
    • Journal of Advanced Marine Engineering and Technology
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    • 제29권6호
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    • pp.685-691
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    • 2005
  • In this study, high performance waste heat recovery heat exchanger was developed using the bayonet tube with spiral serrated fins. Especially, heat exchanger of the bayonet tube type was operated well because of double water passes mechanism and characteristics. A cooling water Passes down inner tubes to thimble-form tubes, then flows back up as it boils. The heat exchanger of bayonet tube type was composed of steel tube with 7channels$(I.D_1\;14mm.\;I.D_2\;31.6mm)$ and spiral serrated fins. The performance tests were conducted under the following conditions A cooling water flow rate was 273kg/h and engine l·pm was varied from 750rpm to 3500 rpm. From the experimental result. waste heat recovery was 9.21kW when engine rpm was 3500. and pressure drop was $15\~260mmHg/m^3$ The effectiveness of heat exchanger was about /$0.7\~0.9$. The performance of heat exchanger was evaluated by using the $\varepsilon-NTU$ method. In the study the NTU of the heat exchanger was $1.57\~2.33$.

저온폐열 활용을 위한 암모니아-물 혼합물을 작업유체로 하는 랭킨사이클에 관한 연구 (Study on the Rankine Cycle using Ammonia-Water Mixture as Working Fluid for Use of Low-Temperature Waste Heat)

  • 김경훈;김세웅;고형종
    • 한국수소및신에너지학회논문집
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    • 제21권6호
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    • pp.570-579
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    • 2010
  • Since the temperature of waste heat source is relatively low, it is difficult to maintain high level of efficiency in power generation when the waste heat recovery is employed in the system. In an effort to improve the thermal efficiency and power output, use of ammonia-water mixture as a working fluid in the power cycle becomes a viable option. In this work, the performance of ammonia-water mixture based Rankine cycle is thoroughly investigated in order to maximize the power generation from the low temperature waste heat. In analyzing the power cycle, several key system parameters such as mass fraction of ammonia in the mixture and turbine inlet pressure are studied to examine their effects on the system performance. The results of the cycle analysis find a substantial increase both in power output and thermal efficiency if the fraction of ammonia increases in the working fluid.

배열 이용형 흡수식 사이클 특성평가 (Characteristics Evaluation of Absorption Cycles using the Waste Heat)

  • 윤정인;권오경;문춘근
    • 태양에너지
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    • 제18권4호
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    • pp.23-32
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    • 1998
  • Fuel cells supply electric power and heat at work, and their exhaust gas is comparatively clear. So they are in the limelight as one of the co-generation systems which behave friendly with the environment. Fuel cells discharge both steam and hot water. Accordingly, if we combine absorption heat pump driven by waste heat with fuel cells, we can construct an advanced energy conserving system. The purpose of this study is the objective for evaluating the possibilities of effectively utilizing waste heat of fuel cells as a heat source for the single and double effect absorption systems. Simulation studies on single and double effect absorption have been performed for water/lithium-bromide pair. The effectiveness of introducing a waste heat source of fuel cells is demonstrated. The result of this study showed that total efficiency was about 85% at rated operation and about 75% at 75% load operation. Absorption cycle moved to more strong concentration when fuel cell operated at 75% load.

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Study on the Capillary Limitation in Copper-Water Heat Pipes with Screen Wicks

  • Park, Ki-Ho;Lee, Ki-Woo;Noh, Seung-Yong;Rhi, Seok-Ho;Yoo, Seong-Yeon
    • International Journal of Air-Conditioning and Refrigeration
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    • 제12권1호
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    • pp.21-29
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    • 2004
  • This paper is to study the heat transfer performance of the copper-water heat pipe with screen wicks. Recently, the semiconductor capacity of an electronic unit becomes larger, but its size becomes much smaller. As a result, a high- performance cooling system is needed. Experimental variables are inclination angles, temperatures of cooling waters and the mesh number of screen wicks. The distilled water was used as a working fluid. Based on the experimental results, when the copper-water heat pipe of 6mm diameter is used at the top heat mode, the heat transfer performance of 100 mesh 2 layers heat pipe is better than that of 150 and 200 mesh. The thermal resistance of the two layers with the 100-mesh screen was 0.7-$0.8^{\circ}C$/W.

해수 온도차를 이용한 선박의 ORC 발전 시스템 최적화 (A Optimization of the ORC for Ship's Power Generation System)

  • 오철;송영욱
    • Journal of Advanced Marine Engineering and Technology
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    • 제36권5호
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    • pp.595-602
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    • 2012
  • 본 논문에서는 선박에서 배출되는 $CO_2$ 배출을 최소화하기 위한 노력의 일환으로 선박으로부터 배출되는 열에너지를 회수하고 재활용하는 방안으로 유기랭킨사이클 발전장치를 구동함으로써 선박의 에너지 효율을 높이고 온실가스 배출을 최소화할 수 있는 방안을 연구하였다. 선박에서 배출되는 배기가스와 냉각 시스템에서 배출되는 열에너지를 회수하여 터빈 발전기를 구동하는 ORC 발전시스템을 설계하고 시뮬레이션 하였다. 다양한 친환경 유기냉매를 이용하여 냉매를 적용하여 온도와 유량변화에 따른 열 해석을 실시하였고 냉각수 열원 예열기, 배기가스 가열기로 시스템을 구성하여 2,400kW급의 발전 출력을 얻을 수 있었다.

스택 폐열을 이용한 연료전지 자동차용 열펌프 시스템의 성능 특성에 관한 연구 (A Study on the Performance Characteristics of a Heat Pump System using Stack Wast Heat in Fuel Cell Vehicles)

  • 전병용;고원빈;박윤철
    • 설비공학논문집
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    • 제28권8호
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    • pp.325-330
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    • 2016
  • This study was conducted to develop a heating system for a fuel cell-driven electric vehicle. The system consists of a compressor, an expansion device and three heat exchangers. A conventional air source heat exchanger is used as primary heat exchanger of the system, and an additional water source heat exchanger is used as a pre-heater to supply heat to the upstream air of the primary heat exchanger. On the other hand, the third heat exchanger consists of a water-to-refrigerant heat exchanger. The heat source of the pre-heater and the water-refrigerant heat exchanger is the waste heat from the fuel cell's stack. In the experiment, the indoor and the outdoor air temperature were fixed, and the compressor speed, EEV opening and waste heat temperature were varied. The results indicate that the $COP_h$ of the proposed system is 3.01 when the system is operating at a 1,200 rpm compressor speed, 50% EEV opening, and $50^{\circ}C$ waste heat source temperature in air pre-heater operation. However, when the system uses a water-refrigerant heat exchanger, the $COP_h$ increases to up to 9.42 at the same compressor speed and waste heat source temperature with 75% EEV openings.

저온 폐열 활용을 위한 2중 효용 2단 흡수식 히트펌프 시뮬레이션 (Simulation of a Double Effect Double Stage Absorption Heat Pump for Usage of a Low Temperature Waste Heat)

  • 김내현
    • 한국산학기술학회논문지
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    • 제16권11호
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    • pp.7736-7744
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    • 2015
  • 막대한 산업용 에너지가 폐열로 버려지는 상황에서 폐열, 특히 저온 폐열의 효과적인 이용은 매우 중요하다. 본 연구에서는 $160^{\circ}C$의 고온 열원과 $17^{\circ}C$ 저온 하수열을 사용하여 $50^{\circ}C$의 온수를 $70^{\circ}C$로 승온시키며 성적계수는 1.6을 만족하는 2중 효용 2단 흡수식 히트펌프 사이클을 고안하였다. 제 1 재생기에서 증발한 냉매 증기는 제 1 응축기에서 응축하면서 제 2 재생기에서 다시 냉매를 발생시킨다. 이 냉매는 제 2 응축기를 거쳐 제 2 증발기에 모아진다. 이 냉매의 일부는 제 1 증발기로 이동하여 저온 열원을 받아들이고 제 1 흡수기를 거쳐 제 2 증발기에 공급된다. 제 2 증발기를 나온 냉매는 제 2 흡수기에서 용액에 흡수된다. 이 때 온수의 온도는 제 2 응축기와 제 2 흡수기에서 승온된다. 시행착오를 통하여 승온 $20^{\circ}C$, 성적계수 1.6을 만족시키는 유량과 열교환기의 UA 값을 도출하였다. 성적계수는 고온수의 온도가 증가할수록, 온수의 온도가 감소하고 유량이 증가할수록, 폐온수의 온도와 유량이 증가할수록, 용액 순환량이 감소할수록 증가한다. 반면 온수의 승온온도는 고온수의 온도가 증가할수록, 온수의 온도가 증가하고 유량이 감소할수록, 폐온수의 온도와 유량이 증가할수록, 용액 순환량이 증가할수록 증가한다. 또한, 열교환기의 UA 값이 증가할수록 성적계수 및 온수 승온 온도도 증가한다.

화력발전용 복수기 폐열 회수를 위한 유기랭킨사이클 시스템 열교환 특성 해석 (A Heat Exchanging Characteristics of Organic Rankine Cycle for Waste Heat Recovery of Coal Fired Power Plant)

  • 정진희;임석연;김범주;유상석
    • 한국수소및신에너지학회논문집
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    • 제26권1호
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    • pp.64-70
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    • 2015
  • Organic Rankine cycle (ORC) is an useful cycle for power generation system with low temperature heat sources ($80{\sim}400^{\circ}C$). Since the boiling point of operating fluid is low, the system is used to recover the low temperature heat source of waste heat energy. In this study, a ORC with R134a is applied to recover the waste energy of condenser of coal fired power plant. A system model is developed via Thermolib$^{(R)}$ under Simulink/MATLAB environment. The model is composed of a refrigerant heat exchanger for heat recovery from coal fired condenser, a drum, turbine, heat exchanger for ORC heat rejection, storage tank, water recirculation pump and water drip pump. System analysis parameters were heat recovery capacity, type of refrigerants, and types of turbines. The simulation model is used to analyze the heat recovery capacity of ORC power system. As a result, increasing the overall heat transfer coefficient to become the largest of turbine power is the most economical.