• Title/Summary/Keyword: 제습기

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Development of a Thermoelectric Dehumidifier (열전식 제습기 개발)

  • 주해호;이재원;이화조;권도중
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 1996.04a
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    • pp.753-757
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    • 1996
  • 연전식 제습기는 제습판과 발열판, 열전식 열펌프, 팬과 모타, 직류 전원공급 장치로구성되어 있으며, 열전식 열펌프에 직류전원을 공급하면 고온면과 저온면이 발생하는 데 저온면의 온도룰 로점온도 이하로 냉각하여 공기중에 있는 수분을 제거하는 원리를 이용한 것이다. 초기 단계로 개발된 열전식 열펌프를 이용한 열전식 제습기(TED-92)는 기계식 제습기에 비하 여 제습효율이 너무 낮기 때문에, 본 연구에서는 여러 문제점을 개선하는 방법으로 열전식 열펌 프의 선정, 핀 설계, 제습기의 설계 등을 중점적으로 개선하여열전식 제습기 (TED-95)를 개발하 였다. 여러가지 방법으로 실험한 결과, 열전식 열펌프 CP1.4-127-045L 2개를 사용하여 발열판의 크기를 300 mm로 하여 단열재를 사용하지 않고 입력 전류를 4A를 입력하였을 때 단위전력당 제 습량이 가장 많았다. 열전식 제습기와 기계식 제습기를 비교실험 해본 결과, 열전식 제습기가 기 계식 제습기에 비해 약 21%의 제습효율을 나타 내었다. 그러므로 초기의 열전식 제습기 (TED-92) 보다 약 2배의 제습효율을 높였다.

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Experimental Study on Influence of Flow Rate Ratio in a Dehumidifier with a Solar Desiccant Apparatus (태양열제습장치 중 제습기에서의 유량비 영향에 관한 실험적 연구)

  • Choi, Kwang-Hwan;Rokhman, Fatkhur
    • Journal of the Korean Solar Energy Society
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    • v.31 no.2
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    • pp.8-15
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    • 2011
  • 제습기의 역할은 태양열제습냉방시스템 요소 중에서도 매우 중요하다. 본 논문은 이러한 특성에 맞추어 제작된 장치를 갖고서 제습능력에 영향을 미치는 유량비를 바꾸어 실험한 결과이다. 실험은 크기가 $40m^3$인 항온항습실을 대상으로 이루어졌으며, 향류형 제습기의 수직 높이는 0.4m로 고정되었다. 또한 충진층은 액체흡수제와의 접촉면을 넓게하기 위하여 플라스틱 충진재로 채워져 있으며, 흡수제의 온도는 빠른 변화를 보기 위하여 $15^{\circ}C$로, 농도는 40%로 고정하였다. 액체흡수제의 유량과 습도가 높은 공기의 유량을 각각 3단계로 바꾸어 실험한 결과, 풍량이 높을수록 제습기 효과는 낮아졌으나, 전체적인 제습량에서는 많아졌다. 한편, 제습기에서 액체흡수제 유량이 많을수록 제습되는 수분량이 많아졌으나, 시간의 변화에 따라 제습되는 속도는 현저하게 낮아졌다. 따라서, 향후 실험에서는 유량의 변화 폭을 더욱 확대해서 많은 실험 결과를 확보하고, 이를 모델링화 하여 높은 정확도를 예측할 필요가 있다.

Improving Efficiency of Dehumidifiers via Nature-Inspired Technology (제습기의 에너지 효율증가를 위한 자연모사기술의 제안)

  • Yun, Seongjin;Song, Kyungjun;Park, Byung Kil;Kim, Wandoo;Kang, Sanghyeon;Lee, Sun Yong;Lim, Hyuneui
    • Transactions of the KSME C: Technology and Education
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    • v.1 no.2
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    • pp.211-219
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    • 2013
  • Even though global warming and humid climate have resulted in an increase of use of dehumidifiers, they are not becoming more common because of high energy consumption. Furthermore, conventional dehumidifier technology finally reaches the limit to increase energy efficiency of water collection. As an alternative, nature-inspired technology may lead to a major breakthrough in the dehumidification performance. In order to improve the efficiency of dehumidifiers, we first analyze the energy consumption of commercial dehumidifiers and then study bioinspired water collection methods adopted by Namib beetles and grass.

A Study on Heat and Mass Transfer with the Different Flows in a Solar Desiccant Cooling System (태양열제습냉방시스템에서의 유량에 따른 열전달 및 물질전달에 관한 연구)

  • Eflita, Yohana;Choi, Kwang-Hwan
    • Journal of the Korean Solar Energy Society
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    • v.30 no.5
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    • pp.17-24
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    • 2010
  • 태양열 제습냉방은 액체흡수제를 이용한 냉각효과로 기존의 전기에너지를 가능케 하는 해결책중 하나이다. 따라서 태양열을 거의 활용하지 않는 여름에 가열온수를 열원으로 활용하여 쾌적조건을 구현하는 본 연구의 대상인 태양열냉방시스템은 제습기와 재생기로 크게 이루어져 있다. 본 논문은 제습기의 유량 변화에 따른 열전달 및 물질전달의 변화를 실험과 이론적 해석으로 규명하고 있는데, 흐름의 양상은 병렬형과 대향류형을 대상으로 하고 있다. 실험결과와 이론해석이 비교적 잘 일치하였으며, 대향류형이 병렬형보다도 물질전달 면에서 유리하게 나타났으며, 입 출구의 엔탈피 차이에서도 크서 열전달에서도 우수한 것으로 나타났다. 또한 그 차이를 본 논문에서는 나타내었으며, 일정한 높이나 길이 이상에서는 항상 일정함을 알 수 있었다. 따라서 본 논문의 결과들은 제습기의 유동흐름을 통한 태양열냉방시스템 중 제습기의 설계 및 성능 향상에 도움을 줄 것이다.

Improvement of Cooling Efficiency in Greenhouse Fog System Using the Dehumidifier (제습기를 이용한 온실 포그냉방시스템의 효율향상)

  • Nam Sang Woon;Kim Kee Sung;Giacomelli Gene A.
    • Journal of Bio-Environment Control
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    • v.14 no.1
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    • pp.29-37
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    • 2005
  • In order to provide fundamental data on utilization of dehumidifier in greenhouses, a condensing type dehumidifier using ground water as a coolant was developed and tested dehumidification performance. The developed dehumidifier was applied to greenhouse with fog cooling system and effect of dehumidification on improvement of evaporative cooling efficiency was analyzed. Results of the dehumidifier performance test showed that dehumidification using ground water as a coolant was sufficiently possible in fog cooling greenhouse. When the set point temperature of greenhouse cooling was $32^{\circ}C$ and as temperatures of ground water rose from $15^{\circ}C\;to\;18^{\circ}C,\;21^{\circ}C\;and\;24^{\circ}C$, dehumidification rates decreased by $17.7\%,\;35.4\%\;and\;52.8\%$, respectively. As flow rates of ground water reduced to $75\%\;and\;50\%$, dehumidification rates decreased by $12.1\%\;and\;30.5\%$, respectively. Cooling efficiency of greenhouse equipped with fog system was distinctly improved by artificial dehumidification. When the ventilation rate was 0.7 air exchanges per minute, dehumidification rates of the fog cooling greenhouse caused by natural ventilation were 53.9%-74.4% and they rose up to 75.4%-95.9% by operating the dehumidifier. In case of using the ground water of $18^{\circ}C$ and flow rate of design condition, it was analyzed that whole fog spraying water can be dehumidified even if the ventilation rate is 0.36 exchanges per minute. As a utilization of dehumidifier, it is possible to improve cooling efficiency of fog system in naturally ventilated greenhouses.

Study on the Performance Characteristics with the Height of a Regenerator and Dehumidifier for Liquid Desiccant Dehumidification System (액체식 제습시스템을 위한 재생기와 제습기의 높이에 따른 성능특성에 관한 연구)

  • 이수동;박문수;정진은;최영석
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.16 no.7
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    • pp.630-638
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    • 2004
  • Liquid desiccant dehumidification systems have the ability to provide efficient humidity and temperature control while saving the electrical energy requirement for air conditioning as compared to a conventional system. The dehumidifier and the regenerator form the heart of this system. The latent part of the cooling load is overcome using liquid desiccant. The model regenerator has been designed to study the absorption characteristic of the aqueous triethylene glycol (TEG) solution which is in the flow range from 20 to 50 LPM. Also, this system designed that was able to change the height of the regenerator and dehumidifier. Because the effect of performance have different result according the height. The effect of performance factors of the regenerator with inlet solution flow rate, air flow rate, solution concentration, solution temperature, brine temperature, air temperature and inlet air relative humidity have been analyzed. Data obtained are useful for design guidance and performance analysis of the hybrid air conditioning system.

The Analysis of the Effects of Design Parameters on the Energy Efficiency and Performance of TEM Dehumidifiers (열전모듈 제습기의 에너지 효율과 성능에 미치는 설계 인자의 영향 분석)

  • Lee, Tae-Hee
    • Journal of the Korean Society for Geothermal and Hydrothermal Energy
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    • v.16 no.3
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    • pp.1-7
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    • 2020
  • To provide a design direction for high efficiency thermoelectric module(TEM) dehumidifiers, the effects of design factors of TEM dehumidifiers on dehumidification energy efficiency and performance were numerically investigated. The design factors considered in this study are the TEM capacity, the performance of heat exchangers on the heating and cooling surfaces of the TEM. The higher capacity of the TEM results the higher dehumidification energy efficiency and performance at some operating voltage. The enhanced performance of the heat exchanger on heating surface increased the dehumidification energy efficiency and performance at all the operating voltage. The enhanced performance of the heat exchanger on cooling surface decreased the dehumidification energy efficiency and performance at all operating voltage.

Experimental Investigation on the Performance of Small-Sized Dehumidification Rotor for Residential Use (가정용 소형 제습로터의 성능에 대한 실험적 연구)

  • Han, Ji-Chao;Kim, Nae-Hyun
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.16 no.4
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    • pp.2344-2349
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    • 2015
  • In Korea, summer is hot and humid, and air-conditioners consume too much electricity due to large amount of latent heat. Simultaneous usage of dehumidifier may reduce the latent heat and save the electricity. In this study, dehumidification performance was measured in a constant temperature and humidity chamber for a small-sized dehumdification rotor made of inorganic fiber impregnated with metallic silicate. Variables were rotor speed, room temperature, regeneration temperature, room relative humidity and frontal velocity to the rotor. Results showed that there existed optimum rotor speed (1.0 rpm), and optimum regeneration temperature ($100^{\circ}C$). Above the optimum rotor speed, incomplete regeneration is responsible for reduced dehumidification. Above the optimum regeneration temperature, increased temperature difference between regeneration and dehumidification process is responsible for reduced dehumidification. The amount of dehumidification also increases with the increase of relative humidity, dehumidification temperature and flow velocity into the rotor.

Development of High Efficiency Dehumidifiers in low temperature (저온에서 고효율 제습기 개발)

  • Kim, Jong-Ryeol
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.17 no.9
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    • pp.206-211
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    • 2016
  • Various applications require dry air at low temperature, such automation equipment, semiconductor manufacturing, chemical production lines, and coating processes for the shipbuilding industry. Four evaporators for low temperature (below $0^{\circ}C$) were installed for a dehumidification system. Moist air is cooled sequentially over three evaporators. The first evaporator has an evaporation temperature of $13^{\circ}C$, that of the second evaporator is $5^{\circ}C$, and that of the third evaporator is maintained at $-1.3^{\circ}C$. In the fourth evaporator implantation thereby the moisture contained in the moisture air. A pressure regulator (CPCE 12) is used at this point and is defrosted when the vapor pressure is below a set value. The non-implantation moisture of the air is a heating system that uses the waste heat of a condenser with high temperature. It develops the cooling type's dehumidifier, which is important equipment that prevents the destruction of protein and measures the temperature and humidity at each interval by changing the front air velocity from 1.0 m/s to 4.0 m/s. The cooling capacity was also calculated. The greatest cooling capacity was 1.77 kcal/h for a front air velocity of 2.0 m/s