• Title/Summary/Keyword: Micro Particle

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Electron Temperature, Plasma Density and Luminous Efficiency in accordance with Discharge Time in coplanar AC PDPs

  • Jeong, S.H.;Moon, M.W.;Oh, P.Y.;Jeong, J.M.;Ko, B.D.;Park, W.B.;Lee, J.H.;Lim, J.E.;Lee, H.J.;Han, Y.G.;Son, C.G.;Lee, S.B.;Yoo, N.L.;Choi, E.H.
    • 한국정보디스플레이학회:학술대회논문집
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    • 2005.07b
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    • pp.1203-1206
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    • 2005
  • Electron temperature and plasma density in coplanar alternating-current plasma display panels (AC-PDP's) have been experimentally investigated in accordance with discharge time by a micro-probe in this experiment. The resolution of a step mortor to move in micro-Langmuir probe is 10um.[1-3] The used gas in this experiment is He-Ne-Xe (4%) mixure gas. And sustain voltage is 320V which is above of firing voltage for degradation. The electron temperature and plasma density can be obtained from current-voltage (I-V) characteristics of micro Langmuir probe, in which negative to positive bias voltage was applied to the probe. And Efficiency is calculated by formula related discharge power and light emission. Those experiments operated as various discharge time ($0{\sim}72$ Hours). As a result of this experiment, Electron Temperature was increased from 2eV to 5eV after discharge running time of 20 hours and saturates beyond 20 hours. The plasma density is inversely proportional to the square root of electron temperature. So the plasma density was decreased from $1.8{\times}10^{12}cm^{-3}$ to $8{\times}10^{11}cm^{-3}$ at above discharge running time. And the Efficiency was reduced to 70% at 60hours of discharge running time.

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Generation of sheath-free particle beam: application to micro-flow cytometry (외피유체 없이 입자 빔의 발생: 유세포 분류기 응용)

  • Kim, Young-Won;Yoo, Jung-Yul
    • 한국전산유체공학회:학술대회논문집
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    • 2008.03b
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    • pp.581-584
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    • 2008
  • A generation of a particle beam is the key technique in a flow cytometry that measures the fluorescence and light scattering of individual cell and other particulate or molecular analytes in biomedical research. Recent methods performing this function require a laborious and time-consuming assembly. In the present work, we propose a novel device for the generation of an axisymmetrical focusing beam of microparticles (3-D focusing) in a single capillary without sheath flows. This work uses the concept that the particles migrate toward the centerline of the channel when they lag behind the parabolic velocity profile. Particle focusing of spherical particles was successfully made with a beam diameter of about 10 ${\mu}$m. Proposed device provides crucial solutions for simple and innovative 3-D particle focusing method for the applications to the MEMS-based micro-flow cytometry. We believe that this device can be utilized in a wide variety of applications, such as biomedical/ biochemical engineering.

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Effect of Particle Migration of the Characteristics of Microchannel Flow

  • Kim Y. W.;Jin S. W.;Kim S. W.;Yoo J. Y.
    • 한국가시화정보학회:학술대회논문집
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    • 2004.12a
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    • pp.119-124
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    • 2004
  • Experimental study was conducted to characterize the flow effect of particle migration in a microchannel which can be used to deliver small amount of liquids, drugs, biological agents and particles in microfluidic devices. Fluorescent particles of $1\{mu}m$ diameter were used to obtain velocity profiles of the fluid in which large particles of $10\{mu}m$ diameter were suspended at different volume fraction of 0.6 and $0.8\%$. Measurements were obtained by using micro-PIV system which contains a Nd:YAG laser with a light of 532-nm wavelength, an inverted epi-fluorescent microscope and a cooled CCD camera to record particle images. The volume fraction of $\phi$ and the particle Reynolds number $Re_p$Rep were used as a parameter to assess the influence of the velocity profile of the suspensions. To expect the slip velocity between the particle and fluids, experiments were carried out at low volume fraction. It was shown that the velocity profile was not influenced by Rep but influenced by the volume fraction, which is in similar trend with the previous study.

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Surface-shape Processing Characteristics and Conditions during Trajectory-driven Fine-particle injection Processing (궤적 구동 미세입자 분사가공 시 표면 형상 가공 특성 및 가공 조건)

  • Lee, Hyoung-Tae;Hwang, Chul-Woong;Lee, Sea-Han;Wang, Duck Hyun
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.20 no.10
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    • pp.19-26
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    • 2021
  • In fine-particle injection processing, hard fine particles, such as silicon carbide or aluminum oxide, are injected - using high-pressure air, and a small amount of material is removed by applying an impact to the workpiece by spraying at high speeds. In this study, a two-axis stage device capable of sequence control was developed to spray various shapes, such as circles and squares, on the surface during the micro-particle jetting process to understand the surface-shape micro-particle-processing characteristics. In the experimental device, two stepper motors were used for the linear movement of the two degree-of-freedom mechanism. The signal output from the microcontroller is - converted into a signal with a current sufficient to drive the stepper motor. The stepper motor rotates precisely in synchronization with the pulse-signal input from the outside, eliminating the need for a separate rotation-angle sensor. The major factors of the processing conditions are fine particles (silicon carbide, aluminum oxide), injection pressure, nozzle diameter, feed rate, and number of injection cycles. They were identified using the ANOVA technique on the design of the experimental method. Based on this, the surface roughness of the spraying surface, surface depth of the spraying surface, and radius of the corner of the spraying surface were measured, and depending on the characteristics, the required spraying conditions were studied.

Particle Image Velocimetry of the Blood Flow in a Micro-channel Using the Confocal Laser Scanning Microscope

  • Kim, Wi-Han;Kim, Chan-Il;Lee, Sang-Won;Lim, Soo-Hee;Park, Cheol-Woo;Lee, Ho;Park, Min-Kyu
    • Journal of the Optical Society of Korea
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    • v.14 no.1
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    • pp.42-48
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    • 2010
  • We used video-rate Confocal Laser Scanning Microscopy (CLSM) to observe the motion of blood cells in a micro-channel. Video-rate CLSM allowed us to acquire images at the rate of 30 frames per second. The acquired images were used to perform Particle Image Velocimetry (PIV), thus providing the velocity profile of the blood in a micro-channel. While previous confocal microscopy-assisted PIV required exogenous micro/nano particles as the tracing particles, we employed blood cells as tracing particles for the CLSM in the reflection mode, which uses light back-scattered from the sample. The blood flow at various depths of the micro-channel was observed by adjusting the image plane of the microscope. The velocity profile at different depths of the channel was measured. The confocal micro-PIV technique used in the study was able to measure blood velocity up to a few hundreds ${\mu}m/sec$, equivalent to the blood velocity in the capillaries of a live animal. It is expected that the technique presented can be applied for in vivo blood flow measurement in the capillaries of live animals.

Small Angle X-ray Scattering Studies on Deformation Behavior of Rubber Toughened Polycarbonate (소각 X-선 산란을 이용한 고무입자로 강인화된 폴리카보네이트의 변형에 관한 연구)

  • Cho, Kilwon;Choi, Jaeseung;Yang, Jaeho;Kang, Byoung Il
    • Journal of Adhesion and Interface
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    • v.3 no.4
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    • pp.19-26
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    • 2002
  • In order to study the toughening mechanism of rubber modified polycarbonate, the sequence of development of micro-voids was investigated by real-time small angle X-ray scattering with Synchrotron radiation (SR-SAXS). The used test method was wedge test. The scattering intensity increases with increasing penetration depth of wedge, i.e. applied strain. The increase is due to the micro-void formation during deformation. This micro-void was uniformly developed in matrix and was different from large-void due to internal cavitation of rubber particle and/or debonding between rubber particle and polycarbonate matrix. The micro-void was developed at the critical strain and the radius of micro-void is around $600{\AA}$. Above the critical strain the size of micro-void remains almost constant with increasing applied strain. However, the population of micro-void increased with applied strain.

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Particle Spacing Analysis of Frozen Sand Specimens with Various Fine Contents by Micro X-ray Computed Tomography Scanning (Micro X-ray CT 촬영을 통한 동결 사질토 시료의 세립분 함유량에 따른 입자간 거리 분석)

  • Chae, Deokho;Lee, Jangguen;Kim, Kwang-Yeom;Cho, Wanjei
    • Journal of the Korean GEO-environmental Society
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    • v.18 no.1
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    • pp.31-35
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    • 2017
  • The mechanical characteristics of frozen sand greatly depend on the frozen temperature and the fine contents according to the previous study by Chae et al. (2015). There are two hypotheses to explain this experimental results; one is the unfrozen water contents greatly affected by the fine contents and frozen temperature and the other is the sand particle spacing greatly affected by the pore-ice. To evaluate the latter hypothesis, the micro X-ray CT scan was performed. The micro X-ray CT scanning, one of the actively performed interdisciplinary research area, has a high resolution with micrometer unit allows to investigate internal structure of soils. In this study, X-ray CT technique was applied to investigate the effect of the frozen temperature and fine contents on the sand particle minimum and average spacing with the developed image processing techniques. Based on the spacing analysis, the frozen temperature and fine contents have little influence on the sand particle spacing in the frozen sand specimens.

표면 Texture 및 나노 Particle 공정에 의한 III-V 태양전지의 효율 변화

  • Sin, Hyeon-Uk;O, Si-Deok;Lee, Se-Won;Choe, Jeong-U;Sin, Jae-Cheol;Kim, Hyo-Jin
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.02a
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    • pp.320-320
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    • 2012
  • III-V 화합물 태양전지는 실리콘, CdTe, CIGS, 염료, 및 유기 등 다른 태양전지에 비해 1sun 상 30% 이상의 고효율을 갖고 있고 앞으로도 계속 증가할 수 있는 가능성을 갖고 있다. 그 이유는 직접천이형 밴드갭, 높은 이동도 등의 고성능 물질특성과 더불어 3족과 5족의 비율을 조절함으로써 같은 결정구조를 갖고 에너지 밴드갭이 다른 물질들을 만들기에 용의하여, 태양전지 스펙트럼의 넓은 영역을 흡수할 수 있는 장점이 있기 때문이다. 그러나, 셀자체의 물질이 실리콘에 비하여 고가이므로, 고성능이 요구되는 우주 인공위성등에 적용이 되었지만, 2000년대 이후로 집광에 적용가능한 태양전지의 연구를 거듭하여 2005년부터는 값싼 프레넬 렌즈를 이용하여 1sun에 비해 500배 해당하는 빛을 셀에 집광하여 보다 효율을 증가시킴으로써 지상발전용에도 적용가능한 셀을 형성하게 되었다. 더불어 태양전지의 효율을 증가시키기 위한 개선된 구조적 변화의 시도도 많이 이루어지고 있다. 최근 보고에 의하면 실리콘 태양전지의 표면에 texture 또는 나노 구조를 주어 높은 흡수율과 낮은 반사율을 갖게 함으로써 효율을 증가시키는 사례가 많아지고, III-V 화합물 태양전지도 texturing에 의해 증가된 효율을 발표한바 있다. 본 연구에서는 태양전지의 효율을 증가시키기 위하여 III-V 화합물 태양전지 표면에 micro-hole array texture 구조를 형성한 후 나노 particle을 이용한 나노 texture 구조를 형성하였다. Photo-lithography와 chemical wet etching으로 micro-hole array texture 구조를 형성하였으며 micro-hole의 직경은 $5{\sim}20{\mu}m$, hole과 hole의 간격은 $3{\sim}15{\mu}m$로 다양하게 변화를 주었다. 형성된 micro-hole array texture 구조위에 수십 nm 크기의 particle을 만들어 chemical wet etching으로 나노 texture 구조를 형성하였다. 태양전지 표면에 texture 구조가 있는 경우와 없는 경우에 각각 효율을 측정, 비교 분석하였다.

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Studies on Particle Size Control and Stability of Lead Chromate Pigment Particles (크롬산납 무기안료 입자 제어 및 안정성에 관한 연구)

  • Park, Chan Kyu;Jung, Dae Yoon;Chang, Sang Mok;Lee, Sang Rok
    • Applied Chemistry for Engineering
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    • v.19 no.3
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    • pp.264-269
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    • 2008
  • For the synthesis of lead chromate pigments, we investigated the characteristics of particle growth with reacting conditions in the synthetic process, the effect of additives, and its micro-capsulation. The more tiny and uniform dispersion particles could be obtained at a lower pH and diluter intial concentration. The variation range of average pigment size was increased with the agitating speed. The pigment size could be controlled by adding aluminum sulfate as an additive, which maintained the optimum particle dispersion. It was found that the optimum micro-capsulation conditions were pH 9~10 and above $90^{\circ}C$ during the micro-capsulation of lead chromate pigment, and below 0.5% humidity after micro-capsulation.