• 제목/요약/키워드: 에어와셔

검색결과 16건 처리시간 0.035초

반도체 클린룸용 에어와셔 시스템의 성능개선을 위한 연구 (A Study on the Performance Improvement of the Air Washer System for Semiconductor Manufacturing Clean Rooms)

  • 박상태;유경훈;손승우
    • 대한기계학회:학술대회논문집
    • /
    • 대한기계학회 2007년도 춘계학술대회B
    • /
    • pp.3413-3417
    • /
    • 2007
  • In recent semiconductor manufacturing clean rooms, air washers are used to remove airborne gaseous contaminants such as $NH_3$, SOx and organic gases from the outdoor air introduced into clean room. In the present study, an experiment was carried out to examine the improvement of removal efficiency for the gaseous contaminants. In order to improve the gas removal efficiency, a hot water contact heat exchanger was installed upstream of the air washer to heat and humidify the incoming outdoor air before entering the air washer.

  • PDF

반도체 클린룸용 수증기 응축식 에어와셔 시스템의 성능평가 (An Experiment on Performance Evaluation of a Vapor Condensation Type Air Washer System for Semiconductor Clean Rooms)

  • 여국현;박상태;유경훈;손승우
    • 대한설비공학회:학술대회논문집
    • /
    • 대한설비공학회 2006년도 하계학술발표대회 논문집
    • /
    • pp.442-447
    • /
    • 2006
  • In semiconductor manufacturing clean rooms, it becomes important to remove airborne molecular contaminants as well as particulate contaminant in outdoor air introduced into clean rooms. One suitable control technique for these chemical contaminants is air washing by water in an outdoor air handling unit. In order to enhance the removal efficiency of chemical contaminants the effect of adding a heating and humidifying process before an air washer was examined.

  • PDF

반도체 클린룸용 직접분무식 에어와셔 시스템의 성능평가실험 (An Experiment on Performance Evaluation of a Direct Atomization Type Air Washer System for Semiconductor Clean Rooms)

  • 여국현;유경훈;태경웅
    • 대한설비공학회:학술대회논문집
    • /
    • 대한설비공학회 2006년도 하계학술발표대회 논문집
    • /
    • pp.988-992
    • /
    • 2006
  • In recent semiconductor manufacturing clean rooms, air washers are used to remove airborne gaseous contaminants such as $NH_3,\;SO_x$ and organic gases from outdoor air introduced into clean room. Meanwhile, there is a large quantity of exhaust air from clean room. It is desirable to recover heat from exhaust air and use it to reheat outdoor air. In the present study, an experiment was conducted to investigate the heat recovery and gas removal efficiencies of a direct atomization type heat recovery air washer.

  • PDF

반도체 클린룸용 배기 열회수식 에어와셔 시스템의 에너지절감에 관한 수치해석 (Numerical Analysis on Energy Reduction of an Exhaust-Air-Heat-Recovery Type Air Washer System for Semiconductor Manufacturing Clean Rooms)

  • 송근수;김형태;유경훈;손승우;신대건;김영일
    • 설비공학논문집
    • /
    • 제22권10호
    • /
    • pp.697-703
    • /
    • 2010
  • In recent semiconductor manufacturing clean rooms, air washers are used to remove airborne gaseous contaminants from the outdoor air introduced into a clean room. Meanwhile, there is a large amount of exhaust air from a clean room. From an energy conservation point of view, heat recovery is useful for reducing the outdoor air conditioning load required to maintain a clean room. Therefore it is desirable to recover heat from the exhaust air and use it to cool or heat the outdoor air. In the present study, numerical analysis was conducted to evaluate the recovered heat of an exhaust air heat recovery type air washer system, which is the key part of an energy saving outdoor air conditioning system for semiconductor clean rooms. The present numerical results showed relatively good agreement with the available experimental data.

반도체 클린룸용 배기 열회수식 에어와셔의 에너지 소비량 성능평가 실험 (An Experiment on Performance Evaluation of Energy Consumption of an Exhaust Air Heat Recovery Type Air Washer for Semiconductor Manufacturing Clean Rooms)

  • 송근수;유경훈;신대건;손승우
    • 대한설비공학회:학술대회논문집
    • /
    • 대한설비공학회 2008년도 하계학술발표대회 논문집
    • /
    • pp.844-849
    • /
    • 2008
  • In recent semiconductor manufacturing clean rooms, in order to improve clean room air quality, air washers are used to remove airborne gaseous contaminants such as $NH_3$, SOx and organic gases from outdoor air introduced into clean room. Meanwhile, there is a large quantity of exhaust air from clean room. From the energy saving point of view, heat recovery is useful for the reduction of air conditioning energy consumption for clean room. Therefore it is desirable to recover heat from the exhaust air and use it to reheat the outdoor air. However, so far there have not been sufficient studies of analyzing the comparison of the amounts of energy consumption and saving. In the present study, an experiment was conducted to investigate the energy consumption and heat recovery of a fin-coil type air washer system for semiconductor manufacturing clean rooms.

  • PDF

반도체 클린룸용 에어와셔 외기공조시스템의 에너지소비량에 관한 실험적 연구 (An Experimental Study on Energy Consumption of Air Washer Outdoor Air Conditioning Systems for Semiconductor Manufacturing Clean Rooms)

  • 김기철;김형태;송근수;유경훈;손승우;신대건;박덕준
    • 설비공학논문집
    • /
    • 제24권4호
    • /
    • pp.297-305
    • /
    • 2012
  • In recent large-scale semiconductor manufacturing clean rooms, the energy consumption of outdoor air conditioning systems to heat, humidify, cool and dehumidify incoming outdoor air represents about 45% of the total air conditioning load required to maintain a clean room environment. Therefore, the energy performance evaluation and analysis of outdoor air conditioning systems is useful for reducing the outdoor air conditioning load for a clean room. In the present study, an experiment was conducted to compare the energy consumption of outdoor air conditioning systems with a simple air washer, an exhaust air heat recovery type air washer and a DCC return water heat recovery type air washer. It was shown from the present lab-scale experiment with an outdoor air flow of 1,000 $m^3/h$ that the exhaust air heat recovery type and DCC return water heat recovery type air washer outdoor air conditioning systems were more energy-efficient for the summer and winter operations than the simple air washer outdoor air conditioning system and furthermore, the DCC return water heat recovery type one was the most energy-efficient in the winter operation.