首页> 外文期刊>International Journal of Heat and Fluid Flow >Characterization and optimization of the thermal performance of miniature piezoelectric fans
【24h】

Characterization and optimization of the thermal performance of miniature piezoelectric fans

机译:微型压电风扇的热性能表征和优化

获取原文
获取原文并翻译 | 示例
       

摘要

Piezoelectric fans have emerged as a viable cooling technology for the thermal management of electronic devices, owing to their low-power consumption, minimal noise emission, and small and configurable dimensions. Piezoelectric fans are investigated for application in the cooling of low-power electronics. Different experimental configurations are considered, and the effect of varying the fan amplitude, the distance between the fan and the heat source, the fan length, its frequency offset from resonance, and the fan offset from the center of the heat source are studied to assess the cooling potential of the fans. A design of experiments (DOE) analysis revealed the fan frequency offset from resonance and the fan amplitude as the critical parameters. Transfer functions are obtained from the DOE analysis for the implementation of these fans in electronics cooling. For the best case, an enhancement in convective heat transfer coefficient exceeding 375% relative to natural convection was observed, resulting in a temperature drop at the heat source of more than 36.4℃. A computational model for the flow field and heat transfer induced by the piezoelectric fan is also developed. Effects of the flow on convection heat transfer for different fan-to-heat source distances and boundary conditions are analyzed. Transition between distinct convection patterns is observed with changes in the parameters. The computational results are validated against experimental measurements, with good agreement.
机译:压电风扇由于其低功耗,最小的噪声排放以及较小且可配置的尺寸,已成为一种用于电子设备热管理的可行冷却技术。研究了压电风扇在低功率电子设备冷却中的应用。考虑不同的实验配置,并研究了改变风扇振幅,风扇与热源之间的距离,风扇长度,其与共振的频率偏移以及风扇与热源中心的偏移的影响,以评估风扇的散热潜力。实验设计(DOE)分析显示风扇共振频率偏移和风扇振幅是关键参数。从DOE分析获得传递函数,以将这些风扇用于电子冷却。最好的情况是,对流传热系数相对于自然对流提高了超过375%,导致热源处的温度下降超过36.4℃。还建立了压电风扇引起的流场和传热的计算模型。分析了在不同的风扇到热源的距离和边界条件下,流动对流传热的影响。随着参数的变化,观察到不同对流模式之间的过渡。计算结果针对实验测量进行了验证,吻合良好。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号