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Electromagnetic Regulation of Electrolyte Solution Heat Convection in Microchannels

机译:微通道中电解质溶液热对流的电磁调节

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摘要

With the rapid development of microelectronics and micro-electromechanical system technology, the electronic components have become smaller and the performance has become higher. Under this condition, however, their energy consumption and heat production have also increased continuously, which poses a great challenge to heat dissipation. In this paper, electromagnetic driving technology is applied to drive the electrolyte solution flow within a microchannel to realize efficient heat convection with microchannel walls. By changing the magnitude and direction of electric–magnetic field, the regulation of heat convection performance is studied. The results show that the Nu number of microchannel increases as the Ha number and magnetic direction angle increases, while it decreases as the potential difference increases. According to the average index of the four factors, it was determined that the electrolyte solution had the best heat convection performance with Ha = 0.05, Vb = 0.00006, Pe = 90, and α = 90°. After that, sensitivity analysis of the Ha number, potential difference and magnetic direction angle was used to regulate the heat convection performance. This paper may provide some theoretical support for the design of microelectronics and micro-electromechanical systems.
机译:随着微电子学和微机电系统技术的飞速发展,电子元器件越来越小,性能越来越高。然而,在这种情况下,它们的能量消耗和热量产生也不断增加,这对散热构成了巨大的挑战。在本文中,应用电磁驱动技术来驱动电解液在微通道内流动,以实现与微通道壁的高效热对流。通过改变电磁场的大小和方向,研究了热对流性能的调节。结果表明,微通道的努数随着Ha数和磁方向角的增加而增加,而随着电势差的增加而减小。根据四个因素的平均指数,确定电解质溶液具有最佳的热对流性能,Ha = 0.05,Vb = 0.00006,Pe = 90和α= 90°。之后,利用Ha数,电势差和磁方向角的灵敏度分析来调节热对流性能。本文可以为微电子学和微机电系统的设计提供一些理论支持。

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