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Development and application of a solid-state fan for enhanced heat dissipation

机译:用于增强散热的固态风扇的开发与应用

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摘要

The miniaturization and high integration of electronic devices require efficient heat transfer enhancement. The solid-state fan (SSF) based on corona discharge is a good candidate. The SSF shows advantages in energy consumption, size, cost, and operability et al. compared to traditional cooling systems. In this paper, a high performance SSF was proposed and developed for heat transfer enhancement. The generation of corona wind in SSF was explored theoretically, and a velocity correction method was proposed. The operating durability was improved under the action of carbon nanotube and manganese dioxide. The structure and electrical parameters of SSF can be optimized to obtain higher corona wind velocity. A 3.96 m/s corona wind velocity was obtained for the optimized SSF. The prototype of SSF shows better cooling performance for both uniform heat flux and hot spot heat flux. A temperature drop of 22.3 degrees C can be obtained for a light-emitting diode (LED) at the applied voltage of 6 kV, and the luminous flux decreased by only 1.5%, which is a satisfactory result. A coated SSF can increase the corona wind velocity at the same voltage and minimize the ozone generation to prolong the service life.
机译:电子设备的小型化和高集成需要有效的传热增强。基于电晕放电的固态风扇(SSF)是一个很好的候选者。 SSF显示能耗,大小,成本和可操作性等的优点。与传统的冷却系统相比。在本文中,提出了高性能的SSF和开发用于传热增强。理论上探讨了SSF中的电晕风的产生,提出了一种速度校正方法。在碳纳米管和二氧化锰的作用下改善了操作耐久性。可以优化SSF的结构和电气参数以获得更高的电晕风速。优化的SSF获得3.96米米/秒的电晕风速。 SSF的原型显示出均匀的热通量和热点热通量的更好的冷却性能。在6kV的施加电压下的发光二极管(LED)可以获得22.3度的温度降,发光通量仅为1.5%,这是令人满意的结果。涂层的SSF可以在相同的电压下增加电晕风速,并最大限度地减少臭氧的产生以延长使用寿命。

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