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Geometrically Similar Rectangular Passive Micromixers and the Scaling Validity on Mixing Efficiency and Pressure Drops Cover

Geometrically Similar Rectangular Passive Micromixers and the Scaling Validity on Mixing Efficiency and Pressure Drops

Open Access
|May 2019

References

  1. [1] Ohno, K.I., Tachikawa, K., Manz, A. “Microfluidics: applications for analytical purposes in chemistry and biochemistry”, Electrophoresis 29, pp. 4443 – 4453, 2008.
  2. [2] Zhang, C., Xu, J., Ma, W., Zheng, W. “PCR microfluidic devices for DNA amplification”, Biotechnology Advances, 24, pp. 243 – 284, 2006.
  3. [3] Elvira, K.S., Solvas, X.C., Wootton, R.C. “The past, present and potential for microfluidic reactor technology in chemical synthesis”, Nature Chemistry 5, pp. 905 – 915, 2013.
  4. [4] Demello, A. J. “Control and detection of chemical reactions in microfluidic systems”. Nature 442, pp. 394 – 402, 2006.
  5. [5] Andersson, H., Van den Berg, A. “Microfluidic devices for cellomics: a review”, Sensors and Actuators B: Chemical 92, pp. 315 – 325, 2003.
  6. [6] Becker, H., Gärtner, C. “Polymer microfabrication technologies for microfluidic systems”, Analytical and Bioanalytical Chemistry 390, pp. 89 – 111, 2008.
  7. [7] Morin, S.A., Shevchenko, Y., Lessing, J., Kwok, S.W., Shepherd, R.F., Stokes, A.A., Whitesides, G.M. “Using “Click-e-Bricks” to make 3D elastomeric structures”, Advanced Materials 26, pp. 5991 – 5999, 2014.
  8. [8] Qin, D., Xia, Y., Whitesides, G.M. “Soft lithography for micro-and nanoscale patterning” Nature Protocols 5, pp. 491 – 502, 2010.
  9. [9] Becker, H., Locascio, L.E. “Polymer microfluidic devices”. Talanta 56, pp. 267-287, 2002.
  10. [10] Lisowski, P., Zarzycki, P.K. “Microfluidic paper-based analytical devices (μPADs) and micro total analysis systems (μTAS): development, applications and future trends”, Chromatographia 76, pp. 1201 – 1214, 2013.
  11. [11] Lee, S.W., Kim, D.S., Lee, S.S., Kwon, T.H. “A split and recombination micromixer fabricated in a PDMS three-dimensional structure”, Journal of Micromechanics and Microengineering 16, 1067, 2006.
  12. [12] Afzal, A., Kim, K.Y. “Passive split and recombination micromixer with convergent–divergent walls”, Chemical Engineering Journal 203, pp. 182 – 192, 2012.
  13. [13] Lee, J., Kwon, S. “Mixing efficiency of a multilaminationmicromixer with consecutive recirculation zones”, Chemical Engineering Science 64, pp. 1223 – 1231, 2009.
  14. [14] Nichols, K.P., Ferullo, J.R., Baeumner, A. J. “Recirculating passive micromixer with a novel sawtooth structure”, Lab on a Chip 6, pp. 242 – 246, 2006.
  15. [15] Tofteberg, T., Skolimowski, M., Andreassen, E., Geschke, O. “A novel passive micromixer: lamination in a planar channel system”, Microfluidics and Nanofluidics 8, pp. 209 – 215, 2010.
  16. [16] Hessel, V., Löwe, H., Schönfeld, F. “Micromixers - a review on passive and active mixing principles”. Chemical Engineering Science 60, pp. 2479 – 2501, 2005.
  17. [17] Veldurthi, N., Chandel, S., Bhave, T., Bodas, B. “Computational fluid dynamic analysis of poly(dimethyl siloxane) magnetic actuator based micromixer”, Sensors and Actuators B: Chemical 212, pp. 419 – 424, 2015. DOI: 10.1016/j.snb.2015.02.048
  18. [18] Kamholz, A.E., Weigl, B.H., Finlayson, B.A., Yager, P. “Quantitative analysis of molecular interaction in a microfluidic channel: the T-sensor”, Analytical Chemistry 71, pp. 5340 – 5347, 1999.
  19. [19] Ismagilov, R. F., Stroock, A. D., Kenis, P. J., Whitesides, G., Stone, H. A. “Experimental and theoretical scaling laws for transverse diffusive broadening in two-phase laminar flows in microchannels”, Applied Physics Letters 76, pp. 2376 – 2378, 2000.
  20. [20] Sullivan, S. P., Akpa, B. S., Matthews, S. M., Fisher, A. C., Gladden, L.F., Johns, M. L. “Simulation of miscible diffusive mixing in microchannels”, Sensors and Actuators B: Chemical 123, pp. 1142 – 1152, 2000.
  21. [21] Chen, J. M., Horng, T. L., Tan, W. Y. “Analysis and measurements of mixing in pressure-driven microchannel flow”, Microfluidics and Nanofluidics 2, pp. 455 – 469, 2006.
  22. [22] Morf, W. E., Van der Wal, P. D., De Rooij, N. F. “Computer simulation and theory of the diffusion-and flow-induced concentration dispersion in microfluidic devices and HPLC systems based on rectangular microchannels”, Analyticachimicaacta 622, pp. 175 – 181, 2008.
  23. [23] Song, H., Wang, Y., Pant, K. “Scaling law for cross-stream diffusion in microchannels under combined electroosmotic and pressure driven flow”, Microfluidics and nanofluidics 14, pp. 371 – 382, 2013.
  24. [24] Engler, M., Kockmann, N., Kiefer, T., Woias, P. “Numerical and experimental investigations on liquid mixing in static micromixers”, Chem. Eng. J. 101, pp. 315 – 322, 2004.
  25. [25] Fox, R. W., McDonald, A. T. “Introduction to Fluid Mechanics”, 5th Edition, Wiley, 2001.
  26. [26] Ayodele, SG., Varnik, F., Raabe, D. “Effect of aspect ratio on transverse diffusive broadening: a lattice Boltzmann study”, Phys Rev E 80(1):016304, 2009.
  27. [27] Stefan, G., Dzianik, F., Martin, J., Kabat, J. “Shell and Tube Heat Exchanger – the Heat Transfer Area Design Process”, Journal of Mechanical Engineering – Strojnícky časopis 67 (2), pp. 13 – 24, 2017. DOI: 10.1515/scjme-2017-0014
  28. [28] Chribik, A., Poloni, M., Lach, J., Jancosek, L., Peter, K. Zbranek, J. “Internal Combustion Engine Powered by Synthesis Gas from Pyrolysed Plastics”, Journal of Mechanical Engineering – Strojnícky časopis 66 (1), pp. 37 – 46, 2016. DOI: 10.1515/scjme-2016-0009
DOI: https://doi.org/10.2478/scjme-2019-0006 | Journal eISSN: 2450-5471 | Journal ISSN: 0039-2472
Language: English
Page range: 69 - 84
Published on: May 31, 2019
Published by: Slovak University of Technology in Bratislava
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2019 Veldurthi Naresh, D. Bodas, Chandel Sunil, Bhave Tejashree, published by Slovak University of Technology in Bratislava
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.