• Title/Summary/Keyword: 열영동

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Thermophoretic Control of Particle Transport in a Microfluidic Channel (미세유체 채널 내에서 열영동에 의한 입자이동 제어)

  • So, Ju-Hee;Koo, Hyung-Jun
    • Korean Chemical Engineering Research
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    • v.57 no.5
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    • pp.730-734
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    • 2019
  • Thermophoresis is a transport phenomenon of particles driven by a temperature gradient of a medium. In this paper, we discuss the thermophoresis of particles in microfluidic channels. In a non-fluidic, stagnant channel, the thermophoretic transport of micro-particles was found to be larger in proportion to the voltage applied to the platinum wire heat source installed in the channel. The variation of the temperature around the platinum wire depending on the voltage was estimated, by using the Callendar-van Dusen equation. The thermophoretic behavior of nano-particles in the same system was observed, which is similar to that of the microparticles. Finally, we fabricated a Y-shaped microfluidic channel with a platinum wire heat source installed in the channel, to realize the thermophoretic phenomenon of the particles in the suspension flowing through the channel. It is shown that the flow of the suspension can be controlled based on the thermophoretic principle.

Soot Size Measurement in a Laminar Diffusion Flame Using Thermophoretic Sampling Technique (열영동 포집 방법을 이용한 층류 확산 화염내의 매연입자 크기측정)

  • 전지호;김상수
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.15 no.5
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    • pp.1697-1705
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    • 1991
  • 본 연구에서는 층류 확산화염내의 매연 분포에 관하여 좀 더 명확히 알아보고 자 화염의 높이방향 뿐만이 아니라 반경 방향으로도 매연을 열영동 포집하여 보았다. 한편, 화염 내에 삽입되는 Fig.1(a)와 같은 프로브에 매연 입자들이 열영동 현상에 의 하여 포집되려면 순간적인 돈도 구배가 필요하다. 따라서 화염내에서의 프로브 체류 시간을 조절할 수 있도록 Fig.1(b)와 같은 공압 장치(pneumatic device)를 만들어 실 험했다.

반도체 웨이퍼위의 Aerosol Nanoparticle 증착 장비 개발

  • 안강호;안진홍;이관수;임광옥;강윤호
    • Proceedings of the Korean Society Of Semiconductor Equipment Technology
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    • 2004.05a
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    • pp.207-212
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    • 2004
  • 4 ~ 20 nm 범위의 입자들이 갖는 전기적 특성을 이용하기 위하여 이들 입자를 300mm 웨이퍼 위에 균일하게 증착시키는 기술을 개발하고자 하였다. 이를 위하여 나노 임자의 증착 장비 개발에 필요한 증착 장비내 유동장 해석 및 온도 구배장 해석을 수행하였다. 증착 장비 입구의유량이 3 1pm, 4 nm인 경우, 입자의 확산력만을 고려하였을 때, 대부분의 입자들은 웨이퍼 표면이 아닌 벽면으로의 부착이 98% 정도 일어났다. 그러나 입자의 열영동 및 전기영동을 고려한 경우, 100% 웨이퍼 표면에 증착되는 것을 알 수 있었다. 따라서 입자의 확산력 이외의 외력(열영동, 전기영동)을 이용하면 웨이퍼 표면에의 증착 효율을 상승시킬 수 있을 것으로 판단된다.

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Application of Particle Charging to Enhance Deposition of Flame-Synthesized Ceramic Materials (입자대전원리의 세라믹 분말입자 부착률 증가에의 응용)

  • 황정호
    • Journal of the KSME
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    • v.34 no.4
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    • pp.239-252
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    • 1994
  • 광섬유 모재제조공정인 OVD와 VAD방식에서의 입자부착 증진을 위해서 외부에서 전기장을 가 해서 실리카입자를 대전시킨 뒤에 타겟으로 부착을 시키는 전기영동원리를 이용하는 방법을 소 개하였다. 실험에서는 디스크형 타겟을 사용하여 타겟 근방에서의 온도, 전기장분포를 측정하였고 입자부착실험을 수행했다. 그 결과 9cm 타겟에 -1.6kv가 가해\ulcorner을 때 전기영동으로 인한 부착률 증가는 열영동으로 인한 효과의 약 35%가 되었다.

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Experimental Study on Thermophoretic Particle Deposition for an Agglomerated and Non-Agglomerated Particles (입자의 형상에 따른 열영동 영향에 대한 실험적 연구)

  • Choi, Gwang-Yul;Yoon, Jin-Uk;Ahn, Kang-Ho
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.28 no.7
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    • pp.741-746
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    • 2004
  • Agglomerated and non-agglomerated SiO$_2$ particles are synthesized in a furnace by oxidation of TEOS vapor. These polydispersed particles are classified with DMA to extract particles. Then these particles are introduced into a thermal precipitator through the ESP(Electrostatic Precipitator) to investigate the themophoretic particle deposition using CNCs(Condensation Nuclei Counter). The efficiency of themophoretic particle deposition according to agglomerated and non-agglomerated particles in the thermal precipitator has been studied as a function of particle size and TEOS mole concentration using monodisperse particles classified by DMA. The results show that the particle deposition efficiency decreases as TEOS mole concentration increases and particle size increases. Thereffre, it is concluded that the thermophoretic deposition efficiency is dependent of the particle morphology.

A study of thermophoretic particle deposition in a particle laden stagnation flow including the effect of radiative heat transfer (정체점 입자유동에서 복사열전달을 고려한 열영동 입자부착 연구)

  • Jeong, Chang-Hun;Lee, Gong-Hun;Choe, Man-Su;Lee, Jun-Sik
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.20 no.5
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    • pp.1624-1638
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    • 1996
  • A study of thermophoretic particle deposition has been carried out for a particle laden stagnation flow considering the effect of radiative heat transfer. Energy, concentration and radiative transfer equations are all coupled and have been solved iteratively assuming that absorption and scattering coefficients were proportional to the local concentration of particles. Radiative heat transfer was shown to strongly affect the profiles of temperature and particle concentration. e. g., radiation increases the thickness of thermal boundary layer and wall temperature gradients significantly. As the wall temperature gradients increase, the particle concentration at the wall decreases due to thermophoretic particle transport. The deposition rate that is thermophoretic velocity times particle concentration at the wall decreases as the effects of radiation increases. The effects of optical thickness, conduction to radiation parameter and wall emissivity have been determined. The effects of anisotropic scattering are shown as insignificant.

Numerical Study on the Thermophoretic Deposition Characteristics of Soot Particles for Wall Temperature of Burner and Surrounding Air Temperature in Combustion Duct (버너의 벽면온도와 연소실내 주위공기온도에 따른 매연입자의 열영동 부착 특성에 관한 수치적 연구)

  • Choi, Jae-Hyuk;Han, Won-Hui;Yoon, Doo-Ho;Yoon, Seok-Hun;Chung, Suk-Ho
    • Journal of Advanced Marine Engineering and Technology
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    • v.32 no.1
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    • pp.57-65
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    • 2008
  • The characteristics of soot deposition on the cold wall in laminar diffusion flames have been numerically analyzed with a two-dimension with the FDS (Fire Dynamics Simulator). In particular, the effects of surrounding air temperature and wall temperature have been discussed. The fuel for the flame is an ethylene ($C_2H_4$). The surrounding oxygen concentration is 35%. Surrounding air temperatures are 300K, 600K, 900K and 1200K. Wall temperatures are 300K, 600K and 1200K. The soot deposition length defined as the relative approach distance to the wall per a given axial distance is newly introduced as a parameter to evaluate the soot deposition tendency on the wall. The result shows that soot deposition length is increased with increasing the surrounding air temperatures and with decreasing the wall temperature. And the numerical results led to the conclusion that it is essential to consider the thermophoretic effect for understanding the soot deposition on the cold wall properly.