• Title/Summary/Keyword: Vortex Tube

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Experimental Study on the Energy Separation of the Vortex Tube for EGR Cooler (EGR Cooler 대체용 Vortex Tube의 에너지 분리 현상에 관한 실험적 연구)

  • Kim, Chang-Su;Park, Sung-Young
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.11 no.1
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    • pp.55-60
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    • 2010
  • Vortex tube is the device that can separate small particles from the compressed gas, as well as compressed gas into hot and cold flow. Due to energy separation ability, a vortex tube can substitute for an EGR cooler of the automotive engine. In this study, experimental approach has been performed to analyze the energy separation characteristics of the vortex tube. Energy separation characteristics of the vortex tube has been tested for supply pressure, cold-out pressure, and hot-out pressure. As increasing supply pressure, energy separation effect increased. Maximum temperature exists about 0.85 of the cold-out-flow-ratio, and minimum exists about 0.35. Hot-out temperature of the vortex tube is affected by the hot-out and cold-out pressure. However, for the given conditions, cold-out temperature is independent of exit pressure change. The results from this study can be used for the basic design parameter of the EGR cooler substitute of an automotive engine.

An Experimental Study on the Energy Separation of the $100Nm^3$/hr Vortex Tube for $CO_2$ Absorption ($CO_2$ 흡수용 $100Nm^3$/hr급 Vortex Tube의 에너지분리 특성에 관한 실험적 연구)

  • Kim, Chang-Su;Han, Keun-Hee;Park, Sung-Young
    • Clean Technology
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    • v.16 no.3
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    • pp.213-219
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    • 2010
  • Vortex tube is the device that can separate small particles from the compressed gas, as well as compressed gas into hot and cold gas. Due to energy and particle separation ability, a vortex tube can be used as the main component of the $CO_2$ absorption device. In this study, experimental approach has been performed to analyze the energy separation characteristics of the vortex tube. To obtain the preliminary design data, energy separation characteristics of the vortex tube has been tested for orifice diameter, nozzle area ratio, and tube length. As a result, the orifice diameter is the major factor of the vortex tube design. The nozzle area ratio and tube length have a minor effect on the energy separation performance. For Dc=0.6D, AR=0.14~0.16, and L=16D, maximum energy separation has been occurred. The result from this study can be used as the basic design data of the $100Nm^3$/hr class vortex tube applied to the $CO_2$ absorption device. Compared with the $CO_2$ absorption process containing an absorption tower, the process with a vortex tube is expected to have a huge advantage of saving the installation space and the operating cost.

공기공급 시스템에 적용되는 Vortex Tube의 에너지 분리특성에 관한 연구( I ) -저온출구 orifice의 직경변화에 의한 영향-

  • 추홍록;상희선;김순재
    • Proceedings of the Korean Institute of Industrial Safety Conference
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    • 1998.05a
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    • pp.13-18
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    • 1998
  • vortex tube는 간단한 구조의 관을 이용하여 어떠한 화학작용이나 연소작용 없이 압축유체를 저온 및 고온부분으로 분리하는 에너지 분리장치이다. 금속학자 Georges Joseph Ranque에 의해 vortex tube의 에너지분리 현상이 발견된 후 vortex tube는 공작기계에 의한 금속가공에 있어서 가공물의 열변형을 막기 위한 국소냉각, 금형제품의 급속냉각 또는 냉각복(air cooling jacket)에 사용하거나 공기공급식 호흡보호구의 공기공급시스템에 많이 활용되고 있다. vortex tube를 이용한 냉각복 및 호흡보호구는 소형, 경량으로서 근로자의 직접적인 조작이 간단하고, 열기가 신체에 직접적으로 닿지 않아 안전하고, 냉각효율이 높을 뿐만 아니라 매우 경제적이어서 그 이용률이 점차 확대될 전망이다. (중략)

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A Study for Energy Separation of Vortex Tube using Air Supply System (I) - the effect of diameter of cold end orifice - (공기공급 시스템에 적용되는 Vortex Tube의 에너지 분리특성에 관한 연구(I) -저온출구 orifice의 직경변화에 의한 영향-)

  • 이병화;추홍록;상희선
    • Journal of the Korean Society of Safety
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    • v.13 no.4
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    • pp.9-18
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    • 1998
  • The vortex tube is a simple device for separating a compressed gaseous fluid stream into two flows of high and low temperature without any chemical reactions. Recently, vortex tube is widely used to local cooler of industrial equipments and air supply system. The phenomena of energy separation through the vortex tube was investigated experimentally. This study is focused on the effect of the diameter of cold end orifice diameter on the energy separation. The experiment was carried out with various cold end orifice diameter ratio from 0.22 to 0.78 for different input pressure and cold air flow ratio. The experimental results were indicated that there are an optimum diameter of cold end orifice for the best cooling performance. The maximum cold air temperature difference was appeared when the diameter ratio of the cold end orifice was 0.5. The maximum cooling capacity was obtained when the diameter ratio of the cold end orifice was 0.6 and cold air flow ratio was 0.7.

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The Influence of Ranque-Hilsch Effect and Joule-Thomson Effect to Energy Separation in a Vortex Tube (보텍스튜브에서 랭퀴-힐쉬효과와 줄-톰슨효과가 에너지분리에 미치는 영향)

  • 유갑종;방창훈;김병하
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.12 no.8
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    • pp.703-710
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    • 2000
  • Energy separation characteristic occurring in a counterflow vortex tube was studied experimentally, where air, $C_2$, and R22 were used as working fluids. The experiments were carried out with pressure ratio from 3 to 8 and cold mass fraction(y) from 0.1 to 0.9. As results, Ranque-Hilsch effect showed different results from adiabatic expansion process. Temperature difference in vortex tube outlet was affected by Joule-Thomson effect as well as Ranque-Hilsch effect. The more effective the energy separation was, the more increased the entropy in the cold oulet of vortex tube was.

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Effects of the partial admission rate and cold flow inlet-outlet ratio on energy separation of Vortex Tube (Vortex Tube의 부분유입율과 저온 입.출구비가 에너지분리 특성에 미치는 영향)

  • 김정수;추홍록;상희선
    • Journal of the Korean Society of Safety
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    • v.13 no.3
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    • pp.51-59
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    • 1998
  • The vortex tube is a simple device for separating a compressed fluid stream into two flows of high and low temperature without any chemical reactions. Recently, vortex tube is widely used to local cooler of industrial equipments and air conditioner for special purpose. The phenomena of energy separation through the vortex tube were investigated to see the effects of cold flow inlet-outlet ratios and partial admission rates on the energy separation experimentally. The experiment was carried out with various cold flow inlet-outlet ratios from 0.28 to 10.56 and partial admission rates from 0.176 to 0.956 by varying input pressure and cold air flow ratio. To find best use in a given cold flow inlet-outlet ratio and partial admission rate, the maximum temperature difference of cold air was presented. The experimental results were indicated that there are an optimum range of cold flow inlet-outlet ratio for each partial admission rate and available partial admission rate.

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Effects of Tube Materials and Cooling Media on the Energy Separation in Vortex Tubes

  • Riu, Kap-Jong;Kim, Hyun-Woo;Park, In-Su;Kim, Byung-Ha
    • International Journal of Air-Conditioning and Refrigeration
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    • v.10 no.3
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    • pp.138-146
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    • 2002
  • The phenomena of energy separation in vortex tubes was investigated experimentally to see the subsidiary effect of the conductivity of tube material and cooling conditions around the outer surface of the tube. The experiment was carried out with pyrex, stainless steel and copper tubes, and the heat transfer conditions of the tubes were with insulation, without in-sulation and water cooling modes respectively The results were obtained that the hot exit fluid temperature was highly affected by a change of conductivity of a tube when the outer surface was cooled by the water, while the working fluid through the tubes was air. How-ever, the cold exit temperature was little affected by the heat transfer modes on the outer surface of the vortex tube.

An Experimental Study on Characteristics of Temperature Separation in a Vortex Tube for Diesel Engine Exhaust Gas (Vortex Tube의 승용 디젤기관 배기가스 온도 분리특성에 관한 연구)

  • Jung, Young-Chul;Choi, Doo-Seuk;Im, Seok-Yeon;Kim, Hong-Ju;Ryu, Jeong-In
    • Transactions of the Korean Society of Automotive Engineers
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    • v.18 no.1
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    • pp.93-98
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    • 2010
  • An object of this study is to confirm the opening amount of the throttle valve that is begun the temperature separation of vortex tube for various engine speed and load condition in a common rail diesel engine. The vortex tube located at downstream of the exhaust manifold is a device separating the incoming exhaust gas to hot and cold stream. To find optimum separation efficiency of vortex tube, the opening amount of throttle valve has been investigated for various engine speed and load conditions. Engine speed was found that the influence of engine speed was dominant compared with that of engine load. As engine speed was increased, the throttle opening amount starting temperature separation was reduced.

Energy Separation of Incompressible Fluid Using Vortex Tube (보텍스 튜브를 이용한 비압축성 유체의 에너지 분리)

  • Yu, Gap-Jong;Choe, Byeong-Cheol;Lee, Byeong-Hwa
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.25 no.1
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    • pp.108-116
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    • 2001
  • The vortex tube is a simple device which separates fluid stream into a cold stream and a hot stream without any chemical reaction. The process of energy separation in the vortex tube has caused a great deal of interest. Although many studies on energy separation in the vortex tube using air as the working fluid have been made so far, few experimental studies treated energy separation for incompressible fluid. So, an experimental study for the energy separation in the vortex tube using the water which is essentially an incompressible fluid is presented. When working fluid is the water, the best geometric values of nozzle area ratio and number of nozzle holes are 0.155, 6 respectively. These geometric values are showed by the similar values which are presented by compressible fluid as working fluid. But hot side mass fraction of which maximum temperature drop is happened are different from compressible fluid.

An Experimental Study on Flame Propagation along Non-premixed Vortex Tube (비예혼합 선형 와환에서의 화염 전파 특성에 관한 실험적 연구)

  • Yang, Seung-Yeon;Roh, Yoon-Jong;Chung, Suk-Ho
    • Proceedings of the KSME Conference
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    • 2001.06d
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    • pp.864-870
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    • 2001
  • Flame propagation along vortex tube was experimentally investigated. The vortex tube was generated by the ejection of propane from a nozzle through a single stroke motion of a speaker and the ignition was induced from a single pulse laser. Non-reactive flow fields were visualized using shadow technique. From these images, vortex ring size and translational velocity were measured in order to determine the ignition time and position. Flame structure and flame speed were measured using high speed CCD camera. Flame speed was accelerated during the initial stage of flame kernel growth, and reached near constant value during steady propagation period. Near the completion of propagation, flame speed was decelerated and then extinguished. Flame speed along the non-premixed vortex tube was found to be linearly proportional to circulation, which was similar to that of the flame propagation along premixed vortex ring. Ignition position minimally affects the propagation characteristics. These imply that flame is propagating along the maximum speed locus expected to be along stoichiometric contour and also support the existence of tribrachial flames.

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