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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Heat transfer enhancement in micro-channel with multiple synthetic jets
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Heat transfer enhancement in micro-channel with multiple synthetic jets

机译:具有多个合成喷嘴的微通道传热增强

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A three-dimensional computational model has been developed to investigate the effect of multiple synthetic jets interaction with cross-flow in micro-channel on the cooling of microchip. Studies were performed with the use of two micro jets being in-phase and 180° out-of-phase at two different operating frequencies and a fixed diaphragm amplitude. The addition of one synthetic jet was shown to achieve greater mixing of flow in the micro-channel than those with single synthetic jet. Greater heat transfer enhancement was achieved with double synthetic jets. Results showed that greater cooling enhancement could be achieved with the out-of-phase flow configuration at oscillating frequency of 560 Hz compared with the in-phase flow configuration. However, the effect of the actuation phase at a frequency of 1120 Hz was found to be insignificant. With double synthetic jet actuators operating out-of-phase, a mere 0.1 K reduction was achieved in maximum silicon temperature compared with in-phase flow jets. The greater the mixing of flow in the micro-channel in either in-phase or out-of-phase flow configuration due to higher jets Reynolds number resulted in the constraint in further cooling enhancement despite having different phases of the flow configuration.
机译:已经开发了三维计算模型来研究多个合成射流与微通道中的交叉流相互作用对微芯片冷却的影响。通过使用两个在两个不同的工作频率和固定的膜片振幅下同相和异相180°的微型喷嘴进行研究。与单个合成射流相比,添加一个合成射流显示出在微通道中实现更大的流量混合。双合成射流可实现更大的热传递增强。结果表明,与同相流动配置相比,在560 Hz的振荡频率下,异相流动配置可以实现更大的冷却增强。然而,发现在1120Hz的频率下激励阶段的影响是微不足道的。使用双合成射流执行器异相工作,与同相射流相比,最高硅温度仅降低了0.1K。由于具有更高的射流雷诺数,在同相或异相流动配置中,微通道中的流动的混合更大,尽管具有不同的流动配置相,但仍限制了进一步的冷却增强。

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