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Motion of a colloidal sphere with interfacial self-electrochemical reactions induced by a magnetic field

机译:胶体球的运动与磁场诱导的界面自电化学反应

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The motion of a spherical colloidal particle with spontaneous electrochemical reactions occurring on its surface in an ionic solution subjected to an applied magnetic field is analyzed for an arbitrary zeta potential distribution. The thickness of the electric double layer adjacent to the particle surface is assumed to be much less than the particle radius. The solutions of the Laplace equations governing the magnetic scalar potential and electric potential, respectively, lead to the magnetic flux and electric current density distributions in the particle and fluid phases of arbitrary magnetic permeabilities and electric conductivities. The Stokes equations modified with the Lorentz force contribution for the fluid motion are dealt by using a generalized reciprocal theorem, and closed-form formulas for the translational and angular velocities of the colloidal sphere induced by the magnetohydrodynamic effect are obtained. The dipole and quadrupole moments of the zeta potential distribution over the particle surface cause the particle translation and rotation, respectively. The induced velocities of the particle are unexpectedly significant, and their dependence on the characteristics of the particle-fluid system is physically different from that for electromagnetophoretic particles or phoretic swimmers.
机译:分析球形胶体粒子在离子溶液中在施加磁场的情况下在其表面上发生自发电化学反应的运动,以得到任意的ζ电位分布。假定与粒子表面相邻的双电层的厚度比粒子半径小得多。分别控制磁标量势和电势的拉普拉斯方程的解导致任意磁导率和电导率的粒子和流体相中的磁通量和电流密度分布。利用广义互易定理,处理了利用洛伦兹力贡献对流体运动进行修正的斯托克斯方程,得到了由磁流体动力效应引起的胶体球的平移和角速度的闭式公式。粒子表面上zeta电位分布的偶极矩和四极矩分别引起粒子平移和旋转。粒子的感应速度出乎意料地显着,并且它们对粒子-流体系统特性的依赖性在物理上不同于电磁体粒子或电泳游泳者。

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