• 제목/요약/키워드: Ventilation Performance

검색결과 617건 처리시간 0.019초

모형실과 실공간에서의 환기성능에 관한 실험적 연구 (An Experimental Study on the Ventilation performance in a Test Chamber and Office Room)

  • 윤석구;구재현;현옥천;한정균;이재근;조민철;강태욱;이감규
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2000년도 추계학술대회논문집B
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    • pp.520-525
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    • 2000
  • This research is to analyze the ventilation performance of mechanical ventilation systems for indoor air quality control and management. A ventilation performance with supply sites is evaluated in a test model chamber and office room. A $CO_2$ gas as a tracer gas is used to measure the ventilation performance. The ventilation performance is found to increase with increased the ventilation rate. The ventilation performance is analysed with 55% at the supply air of 570 lpm and with 20% at the supply air of 100 lpm in a test chamber. The ventilation performance is better than 15% comparing with natural decay at the supply of 570 lpm in office room.

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실내 유해가스 제거효율 향상을 위한 환기성능에 관한 실험적 연구 (An Experimental Study on the Ventilation Performance to Enhance Removal Efficiency of Indoor Hamful Gases)

  • 구재현
    • 한국화재소방학회논문지
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    • 제23권5호
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    • pp.117-124
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    • 2009
  • 본 연구의 목적은 실내 유해가스의 제거효율 향상을 위하여 기계 환기시스템의 환기성능을 분석하는 것이다. 환기성능은 ASTM E741-83 기준에 의거하여 체강법을 사용하여 평가하였다. 추적가스($CO_2$) 기법을 사용하여 환기율과 급기/배기구 위치에 따른 환기성능이 평가되었다. 결과적으로 $CO_2$ 농도는 환기율 증가에 따라 지수적으로 감소하며 환기농도가 증가함을 파악하였다. 2종 환기방식 시스템의 환기성능이 1종 환기방식 또는 3종 환기방식 보다 더 우수하였다. 환경공조챔버에서 자연감쇠의 경우와 비교하여 급기량 570Lpm에서 1시간 후에 재실자가 없는 경우의 환기성능은 55%까지 증가하였고 1인 재실자가 있는 경우의 환기성능은 25%까지 증가하였다. 사무실에서 급기량 570Lpm인 경우 환기성능은 자연감쇠와 비교하여 15% 이상 크게 나타났다.

패시브환기외피의 통기 및 열성능에 관한 실험적 연구 (An Experimental Study on Ventilation and Thermal Performance of Passive Ventilation Building Envelopes)

  • 윤성환;이태철;강정식
    • 설비공학논문집
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    • 제23권11호
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    • pp.711-717
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    • 2011
  • In this study, 5 types of PVS(Passive ventilation system) units are made and experimented its ventilation performance, thermal performance according to open rate and hole diameter of perforated aluminum plane. Results are as follows. 1) The ventilation performance increases approximately 50~70% according by the open rate of PVS increasing. Also, the ventilation performance increases about 2%~12% according by the hole diameter of PVS increasing. 2) In winter temperature/pressure condition(in : $20^{\circ}C$, out : $-2^{\circ}C/{\Delta}P$ : 0.2~5.0Pa) the temperature of inflow air decreases according by the open rate of PVS increasing. Heat gain performance decreases 10.1%, 25.6% when open rate increases 3) In the same condition, Heat gain performance decreases 18.3%, 18.8% according by the hole diameter of PVS increasing.

기계 환기시스템의 실내 환기성능 특성 해석에 관한 연구 (A Study on Characteristic Analysis for Indoor Ventilation Performance of Mechanical Ventilation System)

  • 구재현
    • 한국가스학회지
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    • 제16권2호
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    • pp.31-37
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    • 2012
  • 본 연구는 실내 쾌적성 제어를 위하여 룸 에어컨의 환기성능을 분석한다. 실험장치는 환경공조챔버, 룸 에어컨, 추적가스 측정시스템, 급기팬과 제어기로 구성된다. 환기성능은 ASTM Standard E741-83 기준에 근거하여 환경공조챔버 내 CO2 추적가스기법을 사용한 체강법에 의해 재실자와 급기 환기량에 따라 평가된다. 급기 환기량 증가에 따라 환기성능이 증가함을 파악하였으며 재실자가 없는 경우 CO2 가스는 빠르게 감소하며 이때의 환기성능은 55%까지 증가한다. 그리고 1명의 재실자가 있는 경우 1시간 경과후 급기량 570 lpm에서 환기성능은 자연감쇠와 비교하여 25%까지 증가한다. 실험 데이터를 사용하여 환경공조챔버 내 룸 에어컨의 환기성능 모델링을 도출하였다.

공동주택 지하주차장의 풍력환기 성능에 관한 연구 - 환기구 면적 및 주변건물의 영향 - (A Study on Ventilation Performance driven by Wind Force in Underground Parking Lots of Apartment - Influence of Opening Size and Surrounding Building -)

  • 노지웅
    • KIEAE Journal
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    • 제12권1호
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    • pp.29-34
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    • 2012
  • As a series of studies about natural ventilation driven by wind in basement parking lots of apartment, the influence of opening size and surrounding buildings on ventilation rate was analyzed. Natural ventilation in underground parking lots almost rely on wind than temperature difference. To investigate natural ventilation driven by wind, wind tunnel tests by using scale model and tracer gas method were conducted. $CO_2$-gas concentration was measured, natural ventilation rates were calculated. The experimental results showed that the natural ventilation rate is more reliable to wind direction and surrounding building than opening size and distance between buildings. It was verified that surrounding buildings play a principal role in increasing air flow rate by accelerating wind speed, and growing turbulence intensity. And it showed that ventilation performance is able to be increased by oblique wind to entrance ramp than head on wind in underground parking lots with surrounding buildings.

극저습 공조실의 환기성능에 대한 수치적 모사 (Numerical Simulation of Ventilation Performance in a Dry Room)

  • 최석호;이관수
    • 대한기계학회논문집B
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    • 제26권4호
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    • pp.594-603
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    • 2002
  • The characteristics of moisture ventilation in a dry room were studied numerically The effect of three important parameters: position of outlets, aspect ratio($\beta$) of horizontal plane and air exchange rate(N), was analyzed by using the scales of ventilation efficiency. The ventilation performance was evaluated by varying the aspect ratio and air exchange rate in the four types of outlet position. It was shown that the ventilation performance was improved by decreasing the aspect ratio in the longitudinal arrangement of outlet. The highest ventilation performance was determined when $\beta$ was 4 in the transverse arrangement of outlet. Regardless of the aspect ratio, the ceiling arrangement of outlet played more dominant effect on the ventilation efficiency than the floor arrangement. In every type and aspect ratio, the increase of air exchange rate to improve ventilation performance was appropriate up to N=60 /h.

환기시스템의 성능평가를 위한 통합 시뮬레이션 Tool의 개발 (A Development of Coupled Simulation Tool to Evaluate Performance of Ventilation System)

  • 조왕희;송두삼
    • 설비공학논문집
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    • 제18권2호
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    • pp.112-121
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    • 2006
  • To evaluate the performance of ventilation system properly, the correlations among the ventilation rate, indoor air-quality and cooling/heating load should be analysed. In this study, simulation tool to analyze the performance of ventilation system was developed. The simulation tool is based on the TRNSYS and some modules to calculate concentration of pollutants with the operation of ventilation system and to decide the signal of ventilation system were newly developed in this study. And these modules coupled with building load and heating/cooling simulation modules. To verify the validity of developed simulation tool, comparison study between simulation and field study were accomplished. As results, the simulation tool developed in this study can be used to predict the performance of ventilation system with accuracy.

Blower Door Test를 이용한 공동주택 자연환기시스템의 환기성능 분석 (Analysis on Ventilation Performance of Natural Ventilation Systems in Multi-Family Housing Using Blower Door Test)

  • 김민석;어진선;홍구표;김병선
    • KIEAE Journal
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    • 제16권6호
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    • pp.129-134
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    • 2016
  • Today, natural ventilation systems are widely applied in multi-family housing. However, studies using the wind data trend line of the blower door test are insufficient. Purpose: Through this study, we will propose a computational method about ventilation performance of natural ventilation systems by conducting blower door test. Method: First, we sealed the gaps between the main systems including the natural ventilation system and conducted the blower door test. Next, the natural ventilation system was opened, the blower door test was conducted, and the difference in air flow rate between when closed and when opened was checked. Blower door test was carried out with a pressure difference of 50 Pa. Result: Therefore, the ventilation performance of the natural ventilation system was checked by drawing a trend line using the data to calculate the air flow rate at 2 Pa of the natural ventilation equipment standard pressure difference.

패시브환기외피의 통기성능 및 열관류율에 대한 연구 (A Study on Ventilation and Heat Transfer Coefficient of Passive Ventilation Skin)

  • 이태철;손유남;윤성환
    • 설비공학논문집
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    • 제24권9호
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    • pp.679-684
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    • 2012
  • This paper aims to evaluate performances of ventilation and insulation of 6types PVS(Passive ventilation skin) by numerical simulation. The results are as follows. 1) The result of Performance of ventilation by pressure difference, it was shown that the amount of ventilation changed bigger under 1Pa and amount of ventilation increased according to increase opening area (${\alpha}A$). Although same opening area of PVS, it can predict that pressure differences cause ventilation differences. 2) In case of same opening area of PVS, however, it was changed the amount of ventilation each types of PVS that is distinguished opening area by flow coefficient. 3) Dynamic U-value that represents performance of insulation PVS was similar change upper ${\alpha}A40\;cm^2/m^2$, great change in casse of 0.1 Pa pressure difference. In case of ${\alpha}A10\;cm^2/m^2$, it was changed bigger under 0.3 Pa pressure difference, ${\alpha}A20\;cm^2/m^2$ of PVS was changed under 0.2 Pa pressure difference.

공동주택에서의 실외 급.배기구 위치에 따른 환기효율 향상 연구 (A study on the Improvement of Ventilation Performance in Apartment House According to the Location of Exterior Air-Vents)

  • 박진철;유형규;차진영
    • 한국태양에너지학회 논문집
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    • 제25권2호
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    • pp.71-79
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    • 2005
  • In this study, the ventilation performance of mechanical ventilation system in apartment House was analyzed through model test according to characteristics of air-vent. Then adequate interval of air-vent was suggested using computer simulation which will create comfort environment through improvement of ventilation performance in apartment house. The result of experiment with separation plate to prevent mixture of contaminated exhaust air with fresh supply air, the ventilation efficiency improved about 10%. The result of simulation with horizontal location of exterior air-vent, contaminated exhaust air is mixed regardless of interval variation. Consequently, mixture of the exhaust air can be prevented through locating the supply air vent on the top side and exhaust air vent on the lower side.