执行器偏转对低、高频合成射流传热的影响

M. Ikhlaq, Omidreza Ghaffari, M. Arik
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引用次数: 14

摘要

在过去的四十年里,人们一直在研究合成喷气机。研究人员一直对其独特的应用感兴趣,广泛的流动控制到电子应用的热管理。合成射流由压电、磁性或线性活塞技术等作动器组成。在本研究中,为了了解低频和高频合成射流的性能,我们对压电盘在一定频率范围内的偏转进行了实验和数值研究。首先,对基于压电的合成射流进行了数值分析,并将计算结果与实验结果进行了验证。利用商业有限元软件进行了数值模拟。为了了解尺寸对工作频率的影响,制造了三种不同尺寸的射流并进行了测试。本研究包括两种不同的低频合成射流和一种市售高频射流。传热性能是作为自然对流传热的增强而给出的。每个射流相对于自然对流的传热增强系数是在25.4×25.4 (mm)垂直加热器上测量的。最后,对低频和高频合成射流的功耗进行了测量和比较。研究发现,如果空腔的亥姆霍兹频率对射流性能没有影响,则圆盘挠度和工作频率与传热增强因子直接相关。计算了每个射流的亥姆霍兹频率,以确保它对合成射流没有影响,但我们发现商用合成射流部分利用了亥姆霍兹现象来增强高频性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of actuator deflection on heat transfer for low and high frequency synthetic jets
Synthetic jets are being investigated over the last four decades. Researchers have been interested in its unique applications for a wide range of flow control to thermal management of electronics applications. Synthetic jets are made up of actuators such as piezoelectric, magnetic, or linear piston technology etc. In this study, we performed an experimental and numerical investigation of a piezoelectric disk deflection over a range of frequencies in order to understand the performance for low and high frequency synthetic jets. First, we performed a numerical analysis of a piezoelectric based synthetic jet and, validated computational result with experimental findings. Numerical models are performed by using commercial finite element software. To understand the size effect on the operating frequency, three jets with different sizes are manufactured and examined. Two different low frequency synthetic jets manufactured in our laboratory and a commercially available high frequency jet are included in the present study. Heat transfer performance is given as an enhancement over natural convection heat transfer. The heat transfer enhancement factor of each of these jets with respect to natural convection is measured over a 25.4×25.4 (mm) vertical heater. Finally, power consumption of the low and high frequency synthetic jets were measured and compared. It is found that disk deflection and operating frequency are directly related to heat transfer enhancement factor, if the Helmholtz frequency of a cavity has no effect on the performance of a jet. The Helmholtz frequency of each jet was calculated to ensure that it has no effect on the synthetic jet, but we found that the commercial synthetic jet took partial advantage of Helmholtz phenomena to enhance the performances at high frequencies.
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