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A magnetically-activated thermal switch without moving parts

机译:没有活动部件的磁控热敏开关

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摘要

With the ever increasing power dissipation in electrical devices, new thermal management solutions are in high demand to maintain an optimal operating temperature and efficient performance. In particular, recently developed magnetically-activated thermal switches (MATSs) provide an alternative to existing devices, using the magnetic and thermal properties of superparamagnetic nanofluids to dissipate heat in a controlled manner. However, the presence of moving parts is a major drawback in these systems that must still be addressed. Herein, we present a compact and automatized MATS composed by an encapsulated superparamagnetic nanofluid and an electromagnet allowing to activate the MATS without any moving part. We investigate the effect of different temperature gradients (10, 26 and 40 degrees C) and powers applied to the coil (6.5, 15, 25 and 39 W) on the performance of this novel MATS. The results show that the highest (44.4%) and fastest (0.6 degrees C/s) temperature variation occur for the highest studied temperature gradient. On the other hand, with increasing power, there is also an increase in the efficiency of the heat exchange process between the two surfaces. These results remove one of the main barriers preventing the actual application of magnetic thermal switches and opens new venues for the design of efficient thermal management devices.
机译:随着电气设备中功耗的不断提高,迫切需要新的热管理解决方案来维持最佳的工作温度和高效的性能。特别地,最近开发的磁激活热开关(MATS)提供了现有设备的替代产品,它利用超顺磁性纳米流体的磁和热特性以受控方式散发热量。但是,运动部件的存在是这些系统中的主要缺点,必须加以解决。在这里,我们提出了一种紧凑而自动化的MATS,它由封装的超顺磁性纳米流体和电磁体组成,可以激活MATS而无需任何移动部件。我们研究了不同温度梯度(10、26和40摄氏度)和施加到线圈的功率(6.5、15、25和39瓦)对这种新型MATS性能的影响。结果表明,对于最高的研究温度梯度,最高(44.4%)和最快(0.6℃/ s)的温度变化发生。另一方面,随着功率的增加,两个表面之间的热交换过程的效率也增加了。这些结果消除了阻碍磁热开关实际应用的主要障碍之一,并为高效热管理设备的设计开辟了新的场所。

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