Yongjun Jian
Inner Mongolia University
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Featured researches published by Yongjun Jian.
Journal of Physics D | 2014
Mandula Buren; Yongjun Jian; Long Chang
In this paper a perturbation method is introduced to study the electromagnetohydrodynamic (EMHD) flow in a microparallel channel with slightly corrugated walls. The corrugations of the two walls are periodic sinusoidal waves of small amplitude either in phase or half-period out of phase, and the perturbation solutions of velocity and volume flow rate are obtained. Using numerical computation the effects of the corrugations on the flow are graphically analysed. The results show that the influence of corrugation on the flow decreases with Hartmann number. The phase difference of wall corrugations becomes unimportant when the wavenumber is greater than 3 or when the Hartmann number is greater than 4. With the increase in wavenumber, the decreasing effects of corrugations on the flow increase. When the wavenumber is smaller than the threshold wavenumber (it is a function of Hartmann number) and the wall corrugations are half-period out of phase, the corrugations can enhance the mean velocity of EMHD flow. However, the mean velocity is always decreased when the corrugations are in phase.
Electrophoresis | 2015
Mandula Buren; Yongjun Jian
In this paper, 2D electromagnetohydrodynamic (EMHD) flow in a microparallel channel with slightly transverse corrugated walls is investigated using perturbation method. The corrugations of the two walls are presented by periodic sinusoidal waves with small amplitudes. The perturbation solutions of the stream function and a relation between flow rate and roughness are obtained. It is shown that the flow rate always decreases due to the wall corrugations irrespective of the phase difference. For prescribed Hartmann number and wave number of the wavy walls, the flow resistance increases as the phase difference between the wall corrugations increases. The effect of corrugation on the flow rate decreases with Hartmann number. With the increase of wave number, the effects of corrugations on the flow rate increase. The phase difference of wall corrugations becomes unimportant when the wave number is greater than 4. The obtained results for the flow rates as a function of the applied current are in qualitative agreement with the existing experimental results.
Colloids and Surfaces B: Biointerfaces | 2016
Fengqin Li; Yongjun Jian; Long Chang; Guangpu Zhao; Liangui Yang
In this work, we investigate the time periodic electroosmotic flow (EOF) of an electrolyte solution through a slit polyelectrolyte-grafted (PE-grafted) nanochannel under applied alternating current (AC) electrical field. The PE-grafted nanochannel is represented by a rigid surface covered by a polyelectrolyte layer (PEL) in a brush-like configuration. Under Debye-Hückel approximation, we obtain analytical solutions of electrical potential in decoupled regime of PE-grafted nanochannel, where the thickness of PEL is independent of the electrostatic effects triggered by polyelectrolyte charges. Based upon the electrical potential obtained above, we calculate EOF velocities with uniform and non-uniform drag coefficients for PE-grafted nanochannel and compare their results. The effects of pertinent dimensionless parameters on EOF velocity amplitude are discussed in detail. Moreover, the amplitude of EOF velocity in a PE-grafted nanochannel is compared with that in a rigid one. It is shown that larger EOF velocity and volume flow rate are found for a PE-grafted nanochannel. In addition, AC EOF velocity is further investigated. The oscillation of velocity reduces and is restricted within the region near the PEL-electrolyte interface for higher oscillating Reynolds number Re.
Electrophoresis | 2016
Long Chang; Yongjun Jian; Mandula Buren; Yanjun Sun
In this paper, a perturbation method is introduced to study the EOF in a microparallel channel with 3D wall roughness. The corrugations of the two walls are periodic sinusoidal waves of small amplitude in two directions either in phase or half‐period out of phase. Based on linearized Poisson–Boltzmann equation, Laplace equation, and the Navier–Stokes equations, the perturbation solutions of velocity, electrical potential, and volume flow rate are obtained. By using numerical computation, the influences of the wall corrugations on the mean velocity are analyzed. The variations of electrical potential, velocity profile, mean velocity, and their dependences on the wave number α and β of wall corrugations in two directions, the nondimensional electrokinetic width K, and the zeta potential ratio between the lower wall and the upper wall ς are analyzed graphically.
RECENT PROGRESSES IN FLUID DYNAMICS RESEARCH: Proceeding of the Sixth International Conference on Fluid Mechanics | 2011
Yongjun Jian; Quansheng Liu; H. Z. Duan; Long Chang; Liangui Yang
Flow behavior of time periodic electro‐osmotic flow (EOF) of non‐Newtonian (Jeffrey) fluids in a circular microtube is investigated based on a linearized Poisson‐Boltzmann equation, together with the Cauchy momentum equation and the Jeffrey constitutive equation. Taking near‐wall depletion effects of macromolecules into account, we divided the flow region into skimming layer and the bulk. Analytical solutions of EOF velocity distribution are obtained. By numerical computations, the influences of the related parameters on the velocity amplitude are studied.
Journal of Magnetism and Magnetic Materials | 2015
Guangpu Zhao; Yongjun Jian; Long Chang; Mandula Buren
Journal of Magnetism and Magnetic Materials | 2016
Guangpu Zhao; Yongjun Jian; Fengqin Li
Journal of Mechanics | 2013
L.-X. Sun; Yongjun Jian; L. Chang; H.-Y. Zhang; Q.-S. Liu
Journal of Mechanics | 2013
Y.-J. Sun; Yongjun Jian; L. Chang; Q.-S. Liu
Journal of Mechanics | 2017
Guangpu Zhao; Yongjun Jian; Fengqin Li