3D Helmholtz Coil System Design for Measuring the Thermal Conductivity of Magnetic Nanofluids

R. Alsangur, S. Doğanay, A. Turgut, L. Çetin
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Abstract

Magnetic nanofluids are special colloids that have many potential application areas because their thermophysical properties can be tuned under an applied magnetic field. One of the thermophysical properties that can be tuned using an external magnetic field is the thermal conductivity of these fluids. The studies on the measurement of the thermal conductivity of the magnetic nanofluids put emphasis on the direction and the uniformity of the magnetic field applied to the fluid. The measurement results show that thermal conductivity results change when the external magnetic field is applied parallel or perpendicular to the temperature gradient of the thermal conductivity measurement probe. Permanent magnets and electromagnets are commonly employed in these studies. The proposed design of 3D Helmholtz coil system as the magnetic field generator enables to measure the thermal conductivity of the magnetic nanofluids under uniform and rotating magnetic field. By using the rotating magnetic field, the external magnetic field can be applied in any desired direction to the temperature gradient. The rotating of the magnetic field was demonstrated in this study by changing the current values of the coil pairs. The simulation results of the study show that the proposed 3D Helmholtz coil system can generate a uniform magnetic field in the measurement area and the field direction can be altered by only controlling the current values without any mechanical adjustments.
测量磁性纳米流体热导率的三维亥姆霍兹线圈系统设计
磁性纳米流体是一种特殊的胶体,由于其热物理性质可以在外加磁场下调节,因此具有许多潜在的应用领域。可以通过外部磁场调节的热物理性质之一是这些流体的导热性。磁性纳米流体热导率的测量研究侧重于磁场的方向和均匀性。测量结果表明,当外加磁场平行于或垂直于导热系数测量探头的温度梯度时,导热系数结果会发生变化。在这些研究中通常使用永磁体和电磁铁。提出的三维亥姆霍兹线圈系统作为磁场发生器的设计,能够测量均匀和旋转磁场下磁性纳米流体的热导率。通过使用旋转磁场,外部磁场可以在任何期望的方向施加到温度梯度上。本研究通过改变线圈对的电流值来证明磁场的旋转。仿真结果表明,所设计的三维亥姆霍兹线圈系统可以在测量区域内产生均匀的磁场,并且只需控制电流值即可改变磁场方向,无需进行任何机械调节。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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