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Transmitted light relaxation and microstructure evolution of ferrofluids under gradient magnetic fields

机译:梯度磁场下铁磁流体的透射光弛豫和微观结构演变

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Using light transmission experiments and optical microscope observations with a longitudinal gradient magnetic field configuration, the relationship between the behavior of the transmitted light relaxation and the microstructure evolution of ionic ferrofluids in the central region of an axisymmetric field is investigated. Under a low-gradient magnetic field, there are two types of relaxation process. When a field is applied, the transmitted light intensity decreases to a minimum within a time on the order of 10(1)-10(2) s. It is then gradually restored, approaching its initial value within a time on the order of 10(2) s. This is type I relaxation, which corresponds to the formation of magnetic columns. After the transmission reaches this value, it either increases or decreases slowly, stabilizing within a time on the order of 10(3) s, according to the direction of the field gradient. This is a type II relaxation, which results from the shadowing effect, corresponding to the motion of the magnetic columns under the application of a gradient force. Under a magnetic field with a centripetal high-gradient (magnetic materials subjected to a force pointing toward the center of the axisymmetric field), the transmitted light intensity decreases monotonously and more slowly than that under a low-gradient field. Magnetic transport and separation resulted from magnetophoresis under high-gradient fields, changing the formation dynamics of the local columns and influencing the final state of the column system. (C) 2014 Elsevier B.V. All rights reserved.
机译:使用具有纵向梯度磁场配置的光传输实验和光学显微镜观察,研究了轴对称场中心区域的透射光弛豫行为与离子铁磁流体微观结构演变之间的关系。在低梯度磁场下,有两种弛豫过程。当施加电场时,透射光强度在10(1)-10(2)s的时间内降低到最小。然后逐步恢复,在10(2)s的时间内达到其初始值。这是I型弛豫,对应于磁柱的形成。透射率达到此值后,它会根据场梯度的方向缓慢增加或减小,并在10(3)s的时间内稳定下来。这是II型弛豫,它是由阴影效应引起的,对应于在施加梯度力的情况下磁柱的运动。在具有向心高梯度的磁场下(磁性材料受到指向轴对称场中心的力的作用),透射光强度比低梯度场下的光强度单调降低,并且速度更慢。在高梯度磁场下,磁致变作用导致了磁性的传输和分离,改变了局部柱的形成动力学,并影响了柱系统的最终状态。 (C)2014 Elsevier B.V.保留所有权利。

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