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Experimental and numerical investigation of parameters influencing anisotropic thermal conductivity of magnetorheological fluids

机译:影响磁流变流体各向异性导热系数的实验和数值研究

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Application of a magnetic field causes significant changes in rheological and thermal properties of a magnetorheological (MR) fluid. One of the thermal properties of a MR fluid which is influenced by the magnetic field is the thermal conductivity. In this paper, Discrete Phase Model (DPM) was used to simulate the effects of influencing parameters on thermal conductivity of MR fluids. In the next step, CFD simulation results are validated with experimental data from THW method, and then the effects of influencing parameters on thermal conductivity of MR suspensions are studied. A MR fluid with volume fraction of dispersed carbonyl iron particles equal to 15% in the magnetic field with intensity of 14 mT is tested and it was concluded that in case of a magnetic field is parallel to the temperature gradient direction, the thermal conductivity increases 105%, but if the magnetic field direction is perpendicular to the temperature gradient direction, it decreases by 23%. Results also show that anisotropic thermal conductivity of the MR fluid under investigation is promoted by increasing the volume fraction and decreasing the size of dispersed particles.
机译:施加磁场会导致磁流变(MR)流体的流变和热性能发生重大变化。受磁场影响的MR流体的热特性之一是热导率。在本文中,离散相模型(DPM)用于模拟影响参数对MR流体导热系数的影响。下一步,用THW方法的实验数据验证CFD仿真结果,然后研究影响参数对MR悬浮液导热系数的影响。测试了强度为14 mT的磁场中的分散羰基铁颗粒体积分数等于15%的MR流体,得出的结论是,在磁场平行于温度梯度方向的情况下,导热系数增加105 %,但是如果磁场方向垂直于温度梯度方向,则它减小23%。结果还表明,通过增加体积分数和减小分散颗粒的尺寸,可以提高所研究MR流体的各向异性导热系数。

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