• 제목/요약/키워드: Turbo-machinery

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설비공학 분야의 최근 연구 동향: 2011년 학회지 논문에 대한 종합적 고찰 (Recent Progress in Air-Conditioning and Refrigeration Research: A Review of Papers Published in the Korean Journal of Air-Conditioning and Refrigeration Engineering in 2011)

  • 한화택;이대영;김서영;최종민;백용규;김수민
    • 설비공학논문집
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    • 제24권6호
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    • pp.521-537
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    • 2012
  • This article reviews the papers published in the Korean Journal of Air-Conditioning and Refrigeration Engineering during 2011. It is intended to understand the status of current research in the areas of heating, cooling, ventilation, sanitation, and indoor environments of buildings and plant facilities. Conclusions are as follows. (1) Research trends of thermal and fluid engineering have been surveyed as groups of fluid machinery and fluid flow, thermodynamic cycle, and new and renewable energy. Various topics were presented in the field of fluid machinery and fluid flow. Research issues mainly focused on the rankine cycle in the field of thermodynamic cycle. In the new and renewable energy area, researches were presented on geothermal energy, fuel cell, biogas, reformer, solar water heating system, and metane hydration. (2) Research works on heat transfer area have been reviewed in the categories of heat transfer characteristics, pool boiling and condensing heat transfer, nanofluids and industrial heat exchangers. Researches on heat transfer characteristics included heat transfer above liquid helium surface in a cryostat, methane hydrate formation, heat and mass transfer in a liquid desiccant dehumidifier, thermoelectric air-cooling system, heat transfer in multiple slot impinging jet, and heat transfer enhancement by protrusion-in-dimples. In the area of pool boiling and condensing heat transfer, researches on pool boiling of water in low-fin and turbo-B surfaces, pool boiling of R245a, convective boiling two-phase flow in trapezoidal microchannels, condensing of FC-72 on pin-finned surfaces, and natural circulation vertical evaporator were actively performed. In the area of nanofluids, thermal characteristics of heat pipes using water-based MWCNT nanofluids and the thermal conductivity and viscosity were measured. In the area of industrial heat exchangers, researches on fin-tube heat exchangers for waste gas heat recovery and Chevron type plate heat exchanger were implemented. (3) Refrigeration systems with alternative refrigerants such as $CO_2$, hydrocarbons, and mixed refrigerants were studied. Heating performance improvement of heat pump systems were tried applying supplementary components such as a refrigerant heater or a solar collector. The effects of frost growth were studied on the operation characteristic of refrigeration systems and the energy performance of various defrost methods were evaluated. The current situation of the domestic cold storage facilities was analyzed and the future demand was predicted. (4) In building mechanical system fields, a variety of studies were conducted to achieve effective consumption of heat and maximize efficiency of heat in buildings. Various researches were performed to maximize performance of mechanical devices and optimize the operation of HVAC systems. (5) In the fields of architectural environment and energy, diverse purposes of studies were conducted such as indoor environment, building energy, and renewable energy. In particular, renewable energy and building energy-related researches have mainly been studied as reflecting the global interests. In addition, various researches have been performed for reducing cooling load in a building using spot exhaust air, natural ventilation and energy efficiency systems.

터보분자펌프(TMP) 배기속도 측정에 관한 고찰 (Study on the Measurement of TMP Pumping Speed)

  • 강상백;신진현;차덕준;고득용;정완섭;임종연
    • 한국진공학회지
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    • 제19권4호
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    • pp.249-255
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    • 2010
  • 터보분자펌프(TMP)의 특성평가는 ISO, PNEUROP, DIN, JIS, AVS 등 세계 여러 나라의 표준제정기구에서 제정한 국제규격에 그 근거를 두고 있다. 한국표준과학연구원에서는 이러한 국제규격에 기반을 둔 터보분자펌프의 특성평가시스템을 자체 설계/제작하여 그 신뢰성을 확인하기 위해 개발품 및 상용품의 평가에 주력하고 있다. 터보분자펌프의 배기속도 측정방법으로서 기체흐름 영역에 따른 throughput method와 orifice method를 적용하고 있으나 측정게이지, 유량계 및 orifice conductance의 불확도 등 실질적으로 정확한 배기속도를 제시하기 위한 조건들의 제약 때문에 많은 측정오차를 포함하고 있다고 볼 수 있다. 이러한 배기속도의 측정오차를 줄이기 위한 하나의 고찰로서 본 논문에서는 $10^{-1}$ Pa-L/s 영역까지의 유량 주입범위를 가지는 기 구축된 정적법을 이용한 유량주입에 기반을 둔 throughput method를 이용하여 1000 L/s TMP의 측정 능력을 검증하고자 한다. 또한 분자류 영역인 orifice method를 사용할 경우 고진공영역, 미세유량 주입영역으로 진입할수록 커질 수밖에 없는 배기속도 측정 불확도를 최소화시키기 위해 검증된 유량을 이용한 conductance 값을 제시하여, 기 언급한 두 가지 배기 속도 측정 방법의 연속성을 유지하기 위한 실험적인 방법론을 제기하고자 한다.