• Title/Summary/Keyword: 미세유체소자

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Microfluidic Device for Ultrasound Image Analysis based on 3D Printing (초음파 영상 분석을 위한 3D 프린팅 기반 미세유체소자)

  • Kang, Dongkuk;Hong, Hyeonji;Yeom, Eunseop
    • Journal of the Korean Society of Visualization
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    • v.16 no.1
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    • pp.15-20
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    • 2018
  • For the measurement of biophysical properties related with cardiovascular diseases (CVD), various microfluidic devices were proposed. However, many devices were monitored by optical equipment. Ultrasound measurement to quantify the biophysical properties can provide new insights to understand the cardiovascular diseases. This study aims to check feasibility of microfluidic device for ultrasound image analysis based on 3D printer. To facilitate acoustic transmission, agarose solution is poured around 3D mold connected with holes of the acrylic box. By applying speckle image velocimetry(SIV) technique, flow information in the bifurcated channel was estimated. Considering that ultrasound signal amplitude is determined by red blood cell (RBC) aggregation, RBC aggregation in the bifurcated channel can be estimated through the analysis of ultrasound signal. As examples of microfluidic device which mimic the CVD model, velocity fields in microfluidic devices with stenosis and aneurysm were introduced.

Integrated microfluidic device with polymer-based micropump and microvalve for $\mu$-TAS devices (마이크로 펌프, 밸브가 집적된 폴리머 기반의 미세 유체제어 시스템의 기계적 특성 강화)

  • Ra, Gyu-Sik;Jha, Sandeep Kumar;Yoon, Tae-Sik;Lee, Hyun-Ho;Kim, Yong-Sang
    • Proceedings of the KIEE Conference
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    • 2008.07a
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    • pp.1458-1459
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    • 2008
  • 미세 유체 제어 시스템 (마이크로 펌프, 마이크로 밸브, 마이크로 채널, 마이크로 믹서 등)의 집적은 화학 및 바이오 유체를 제어하는 Lab-on-a-chip 의 일부분으로서 사용되며 이러한 시스템의 집적은 Lab-on-a-chip 개발을 위해 필수적으로 요구된다. 본 논문에서는 이러한 microchip을 구현하기 위해서 초미세 유체 제어 소자인 마이크로 펌프와 마이크로 밸브를 같은 기판 위에 Polydimethylsiloxane (PDMS)와 indium tin oxade (ITO)를 사용하여 집적하였다. 그리고 밸브의 반복 작동 시 계속적인 유량의 감소를 줄이기 위해 PDMS 의 혼합비를 달리하여 PDMS membrane 의 기계적 특성을 강화시켰다.

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Disposable Power Generator with Tubular PEMFC and H2 Generator for the Power Source of Microfluidic Devices (튜브형 고분자전해질 연료전지와 일회용 수소발생소자를 결합한 미세유체소자용 전원공급소자)

  • Kim, Kwang-Ho;Seo, Young-Ho;Kim, Byeong-Hee
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.34 no.7
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    • pp.829-835
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    • 2010
  • This paper presents a disposable power generator for microfluidic devices; the power generator has a tubular PEMFC and a $H_2$ generator. The tubular PEMFC has a tubular MEA (diameter: 1.52 mm) that is supported by a spiral wire electrode. The $H_2$ generator supplied $H_2$ to the tubular PEMFC; $H_2$ was generated via the reaction of Al foil (27 mg) and 5 M NaOH (0.12 ml). The open circuit voltage and power density of a unit cell of the tubular PEMFC were 0.81 V and $16.4\;mW/cm^2$ (0.35 V), respectively. The $H_2$ generator generated 11.6 ml $H_2$ for 15min. The power generator was continuously operated for 15 min at 0.64 mW (0.71 V) and for 10 min at 1.06 mW (0.46 V). We experimentally verified that it is feasible to use the proposed power generator as a power source for microfluidic devices; in the experiment, an LED (2.5 mW; 1.8 V) was lit for 10 min by using three serially connected TPEMFCs and one $H_2$ generator.

Design of Fluorescence Multi-cancer Diagnostic Sensor Platform based on Microfluidics (미세 유체 기반의 형광 다중 암 진단 센서 플랫폼 설계)

  • Lee, B.K.;Khaliq, A.;Jeong, M.Y.
    • Journal of the Microelectronics and Packaging Society
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    • v.29 no.4
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    • pp.55-61
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    • 2022
  • There is a major interest in diagnostic technology for multiple cancers worldwide. In order to reduce the difficulty of cancer diagnosis, a liquid biopsy technology based on a microfluidic device using trace amounts of biofluids such as blood is being studied. And optical biosensing, which measures the concentration of analytes through fluorescence imaging using biofluids, requires various strategies to improve sensitivity, and specialists and equipment are needed to carry out these strategies. This leads to an increase in diagnostic and production costs, and it is necessary to develop a technology to solve this problem. In this paper, we design and propose a fluorescent multi-cancer diagnostic sensing platform structure that implements passive self-separation technology and molecular recognition activation functions by fluid mixing, only with the geometry and microfluidic phenomena of microchannels based on self-driven flow by capillary force. In order to check the parameters affecting the performance of the plasma separation part of the designed sensor, the hydrodynamic diameter of the channel and the viscosity of the fluid were set as variables to confirm the formation of plasma separation flow through simulation. And finally, we propose an optimal sensor platform structure.

Generation of Fine Droplets in a Simple Microchannel (유체 소자를 이용한 미세 액적 생성)

  • Kim, Su-Dong;Kim, Young-Won;Yoo, Jung-Yul
    • Proceedings of the KSME Conference
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    • 2008.11b
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    • pp.2658-2663
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    • 2008
  • In the present study, we designed a microfluidic flatform that generates monodisperse droplets with diameters ranging from hundreds of nanometers to several micrometers. To generate fine droplets, T-junction and flow-focusing geometry are integrated into the microfluidic channel. Relatively large aqueous droplets are generated at the upstream T-junction and transported toward the flow-focusing geometry, where each droplet is broken up into the targeted size by the action of viscous stresses. Because the droplet prior to rupture blocks the straight channel that leads to the flow-focusing geometry, it moves very slowly by the pressure difference applied between the advancing and receding regions of the moving droplet. This configuration enables very low flow rate of inner fluid and higher flow rate ratio between inner and outer fluids at the flow-focusing region. It is shown that the present microfluidic device can generate droplets with diameters about 1 micrometer size and standard deviation less than 3%.

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Analysis and Design of Ultrasonic Micromixer (초음파 미세혼합기의 해석 및 설계)

  • Kim, Duck-Jong;Heo, Pil-Woo;Park, Sang-Jin;Kim, Jae-Yun;Yoon, Eui-Soo
    • 유체기계공업학회:학술대회논문집
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    • 2003.12a
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    • pp.101-106
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    • 2003
  • In this work, mixing phenomena in the mixing chamber of a ultrasonic micromixer are analyzed through an analytical approach. A simplified 2-dimensional model for the ultrasonic micromixer is presented. Analytical solutions for fluid flow induced by ultrasonic waves are obtained through successive approximations method. From simulation results on thermal diffusion in the mixing chamber, effects of relative location, size, and vibration frequency of a piezoelectric material and aspect ratio of the mixing chamber on mixing performance of the ultrasonic micromixer are investigated. Finally, design guidelines for the ultrasonic micromixer are suggested based on the parametric study.

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