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      KCI등재 SCOPUS SCIE

      Design and Validation of On-chip Planar Mixer Based on Advection and Viscoelastic Effects

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      https://www.riss.kr/link?id=A105874660

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      다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

      Mixing at low Reynolds number is usually due to diffusion and requires longer channel lengths for complete mixing. In order to reduce the mixing lengths, advective flow can be induced by varying the channel geometry. Additionally, in non-newtonian fluids, appropriate modifications to channel geometry can be used to aid the mixing process by capitalizing on their viscoelastic nature. Here we have exploited the advection and viscoelastic effects to implement a planar passive micro-mixer. Microfluidic devices incorporating different blend of mixing geometries were conceived. The optimum design was chosen based on the results of the numerical simulations performed in COMSOL. The chosen design had sudden expansion and contraction along with teeth patterns along the channel walls to improve mixing. Mixing of two different dyes was performed to validate the mixing efficiency. Particle dispersion experiments were also carried out. The results indicated effective mixing. In addition, the same design was also found to be compatible with electrical power free pumping mechanism like suction. The proposed design was then used to carry out on-chip chemical cell lysis with human whole blood samples to establish its use with non-newtonian fluids. Complete lysis of the erythrocytes was observed leaving behind the white blood cells at the outlet.
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      Mixing at low Reynolds number is usually due to diffusion and requires longer channel lengths for complete mixing. In order to reduce the mixing lengths, advective flow can be induced by varying the channel geometry. Additionally, in non-newtonian flu...

      Mixing at low Reynolds number is usually due to diffusion and requires longer channel lengths for complete mixing. In order to reduce the mixing lengths, advective flow can be induced by varying the channel geometry. Additionally, in non-newtonian fluids, appropriate modifications to channel geometry can be used to aid the mixing process by capitalizing on their viscoelastic nature. Here we have exploited the advection and viscoelastic effects to implement a planar passive micro-mixer. Microfluidic devices incorporating different blend of mixing geometries were conceived. The optimum design was chosen based on the results of the numerical simulations performed in COMSOL. The chosen design had sudden expansion and contraction along with teeth patterns along the channel walls to improve mixing. Mixing of two different dyes was performed to validate the mixing efficiency. Particle dispersion experiments were also carried out. The results indicated effective mixing. In addition, the same design was also found to be compatible with electrical power free pumping mechanism like suction. The proposed design was then used to carry out on-chip chemical cell lysis with human whole blood samples to establish its use with non-newtonian fluids. Complete lysis of the erythrocytes was observed leaving behind the white blood cells at the outlet.

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      참고문헌 (Reference)

      1 Chen, D. L., "Using Microfluidics to observe the effect of mixing on nucleation of protein crystals" 127 : 9672-9673, 2005

      2 Yang, Z., "Ultrasonic micromixer for microfluidic systems" 93 : 266-272, 2001

      3 Kamholz, A., "Quantitative analysis of molecular interaction in microfluidic channel: The T-sensor" 71 : 5340-5347, 1999

      4 Kamholz, A., "Molecular diffusive scaling laws in pressure-driven microfluidic channels: Deviation from one-dimensional einstein approximations" 82 : 117-121, 2002

      5 Bessoth, F. G., "Microstructure for efficient continuous flow mixing" 36 : 213-215, 1999

      6 Nguyen, N.-T., "Micromixers Fundamentals, Design and Fabrication" William Andrew Inc 2008

      7 Wong, S. H., "Micro T-mixer as a rapid mixing micromixer" 100 : 365-385, 2004

      8 Wong, S. H., "Investigation of mixing in a cross-shaped micromixer with static mixing elements for reaction kinetics studies" 95 : 414-424, 2003

      9 Ottino, J.M., "Introduction: Mixing in microfluidics" 362 : 923-935, 2004

      10 Ismagilov, R., "Experimental and theoretical scaling laws for transverse diffusive broadening in two-phase laminar flows in microchannels" 76 : 2376-2378, 2000

      1 Chen, D. L., "Using Microfluidics to observe the effect of mixing on nucleation of protein crystals" 127 : 9672-9673, 2005

      2 Yang, Z., "Ultrasonic micromixer for microfluidic systems" 93 : 266-272, 2001

      3 Kamholz, A., "Quantitative analysis of molecular interaction in microfluidic channel: The T-sensor" 71 : 5340-5347, 1999

      4 Kamholz, A., "Molecular diffusive scaling laws in pressure-driven microfluidic channels: Deviation from one-dimensional einstein approximations" 82 : 117-121, 2002

      5 Bessoth, F. G., "Microstructure for efficient continuous flow mixing" 36 : 213-215, 1999

      6 Nguyen, N.-T., "Micromixers Fundamentals, Design and Fabrication" William Andrew Inc 2008

      7 Wong, S. H., "Micro T-mixer as a rapid mixing micromixer" 100 : 365-385, 2004

      8 Wong, S. H., "Investigation of mixing in a cross-shaped micromixer with static mixing elements for reaction kinetics studies" 95 : 414-424, 2003

      9 Ottino, J.M., "Introduction: Mixing in microfluidics" 362 : 923-935, 2004

      10 Ismagilov, R., "Experimental and theoretical scaling laws for transverse diffusive broadening in two-phase laminar flows in microchannels" 76 : 2376-2378, 2000

      11 Glasgow, I., "Enhancement of microfluidic mixing using time pulsing" 3 : 114-120, 2003

      12 Gan, H., "Efficient mixing of viscoelastic fluids in a microchannel at low reynolds number" 3 : 101-108, 2006

      13 Affanni, A., "Development of an enhanced MHD micromixer based on axial flow modulation" 147 : 748-754, 2010

      14 Stroock, A.D., "Chaotic mixer for microchannels" 295 : 647-651, 2002

      15 Tsai J.-H., "Active microfluidic mixer and gas bubble filter driven by thermal bubble micropump" 97-98 : 665-671, 2002

      16 Song, H. J., "A microfluidic system for controlling reaction networks in time" 42 : 768-772, 2003

      17 Deval, J., "A dielectrophoretic chaotic mixer" IEEE 2002

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      공동연구자 (7)

      유사연구자 (20) 활용도상위20명

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      학술지등록 한글명 : BioChip Journal
      외국어명 : BioChip Journal
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2013-10-01 평가 등재학술지 선정 (기타) KCI등재
      2011-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2009-01-01 평가 SCIE 등재 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.33 0.25 0.88
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.66 0.53 0.255 0.1
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