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微平行管道内Jeffrey流体的非定常电渗流动 被引量:6

Transient electroosmotic flow of general Jeffrey fluid between two micro-parallel plates
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摘要 研究了微平行管道内线性黏弹性流体的非定常电渗流动,其中线性黏弹性流体的本构关系是由Jeffrey流体模型来描述的.利用Laplace变换法,求解了线性化的Poisson-Boltzmann方程、非定常的柯西动量方程和Jeffrey流体本构方程,给出了黏弹性Jeffrey流体电渗速度的解析表达式,分析了无量纲弛豫时间λ1和滞后时间λ2对速度剖面的影响.发现滞后时间为零时,弛豫时间越小,速度剖面图越接近牛顿流体的速度剖面图;随着弛豫时间和滞后时间的增加,速度振幅也变得越来越大,随着时间的增加,速度逐渐趋于恒定. In this study, analytical solutions are presented for the unsteady electroosmotic flow of linear viscoelastic fluid between microparallel plates. The linear viscoelastic fluid used here is described by the general Jeffrey model. Using Laplace transform method, the solution involves analytically solving the linearized Poisson-Boltzmann equation, together with the Cauchy momentum equation and the general Jeffrey constitutive equation. By numerical computations, the influences of the dimensionless relaxation time λ1 and retardation time λ2 on velocity profile are presented. In addition, we find that when the retardation time is zero, the smaller the relaxation time, the more close to the Newtonian fluid velocity profile the velocity profile is. With the increases of the relaxation time and the retardation time, the velocity amplitude also becomes bigger and bigger. As time goes by, the velocity tends to be stable gradually.
出处 《物理学报》 SCIE EI CAS CSCD 北大核心 2013年第14期301-306,共6页 Acta Physica Sinica
基金 国家自然科学基金(批准号:11062005 11202092) 非线性力学国家重点实验室开放基金 内蒙古自治区高等学校青年科技英才支持计划(批准号:NJYT-13-A02) 内蒙古自治区自然科学基金(批准号:2010BS0107 2012MS0107) 内蒙古自治区自然科学基金重点项目(批准号:2009ZD01) 内蒙古大学学科带头人科研启动基金(批准号:Z20080211) 内蒙古自治区研究生教育创新计划项目 内蒙古大学提升综合实力项目(批准号:1402020201)资助的课题~~
关键词 双电层 微平行管道 Jeffrey流体 非定常电渗流动 electric double-layer micro-parallel plates Jeffrey fluids unsteady electroosmotic flow
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参考文献28

  • 1Stone H A, Stroock A D, Ajdari A 2004 Ann. Rev. Fluid Mech. 36381.
  • 2Bayraktar T, Pidugu S B 2006 Int. J. Heat Mass Trans. 49815.
  • 3Squires T M, Quake S R 2005 Rev. Mod. Phys. 77 977.
  • 4Hunter R J 1981 Zeta Potential in Colloid Science (New York: Aca?demic Press) p 15.
  • 5Levine S, Marriott J R, Neale G, Epstein N 1975 J. Colloid Interface Sci. 52 136.
  • 6Tsao H K 2000 J. Colloid Interface Sci. 225 247.
  • 7Hsu J P, Kao C Y, Tseng S J, Chen C J 2002 J. Colloid Interface Sci. 248 176.
  • 8Yang C, Li D, Masliyah J H 1998 Int. J. Heat Mass Transfer 414229.
  • 9Bianchi F, Ferrigno R, Girault H H 2000 Anal. Chem. 72 1987.
  • 10Wang C Y, Liu Y H, Chang C C 2008 Phys. Fluids 20 063105.

共引文献2

同被引文献66

  • 1任美蓉,张天鸽,崔继峰,陈小刚,吴碧霞.高Zeta势下环形微管道中Jeffrey流体的磁流体电渗流动研究[J].内蒙古农业大学学报(自然科学版),2022,43(4):98-107. 被引量:1
  • 2杨劲松,杨渊.不同pH值的培养液对兔骨髓间充质干细胞体外培养的影响[J].右江医学,2004,32(6):519-522. 被引量:4
  • 3毕颖楠,张惠静,管潇.生理缓冲液应用于微流控芯片分析系统中的电学特性的研究[J].重庆医学,2006,35(20):1872-1874. 被引量:1
  • 4BAYRAKTAR T, PIDUGU S B. Characterization of liquid flows in microfluidic systems [J]. International Journal of Heat and Mass Transfer, 2006, 49 (5/6) 815-824.
  • 5SQUIRES T M, QUAKE S R. Mierofluidics.. fluid physics at the nanoliter scale [J]. Reviews of Modern Physics, 2005, 77 (3) : 977- 1026.
  • 6STONE H A, STROOCK A D, AJDARI A. Engineering flows in small devices." mierofluidies toward a lab-on-a-chip [J]. Journal of Fluid Mechanics, 2[)04, 36 (1): 381-411.
  • 7DITTRICH P S, MANZ A. Lab-on-a-chip.. microfluidics in drug discovery [J]. Nature Reviews Drug Discovery, 2006, 5 (3) : 210- 218.
  • 8BEEBE D J, MENSING G A, WALKER G M. Physics and applications of mierofluidics in biology [J]. Annual Review of Biomedical Engineering, 2002, 4 (1) : 261 - 286.
  • 9JIAN Y J, YANG L G, LIU Q S. Time periodic electro-os- motic flow through a microannulus [J]. Physics of Fluids, 2010, 22 (4): 042001-1-042001-9.
  • 10SU J, JIAN Y J, CHANG L. Thermally fully developed electro- osmotic flow through a rectangular microchannel [J]. Inter- national Journal of Heat and Mass Transfer, 2012, 55 (21/ 22) : 6285 - 6290.

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