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首页> 外文期刊>International journal of numerical methods for heat & fluid flow >Qualitative analysis of coupling effect of fluid velocity distribution in microchannels on the performance of the LED water cooling system
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Qualitative analysis of coupling effect of fluid velocity distribution in microchannels on the performance of the LED water cooling system

机译:定性分析微通道内流体速度分布对LED水冷系统性能的耦合作用

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PurposeThe purpose of this paper is to ensure adequate thermal management to remove and dissipate the heat produced by a light-emitting diode (LED) and to guarantee reliable and safe operation.Design/methodology/approachA three-dimensional (3-D) computational fluid dynamics (CFD) model was used to analyze the distribution of fluid velocities among microchannels at four different aspect ratios.FindingsThe results showed that at the same inlet flow rate, the larger the aspect ratio of the microchannels, the better the uniformity of the internal fluid velocity and thus better the heat dissipation performance on the surface of the high-power LED chip. In addition, the thermal performance of a high-power LED water cooling system with four different aspect ratios microchannel structures is further studied experimentally. Specifically, the coupling effect between the fluid velocity distribution in the microchannels and the heat dissipation performance of a high-power LED water cooling system is qualitatively analyzed and compared with the simulation results of the fluid velocity distribution. The results fully demonstrated that a larger aspect ratio of the microchannels results in better heat dissipation performance on the surface of the high-power LED chip.Originality/valueOptimizing the structural parameters to facilitate a relatively uniform velocity distribution to improve the water cooling system performance may be a key factor to be considered.
机译:目的本文的目的是确保适当的热量管理,以消除和散发发光二极管(LED)产生的热量,并确保可靠和安全的操作。设计/方法/方法三维(3-D)计算流体动力学(CFD)模型用于分析四种不同长宽比下微通道之间的流体速度分布。结果表明,在相同的入口流量下,微通道的长宽比越大,内部流体的均匀性越好从而提高了大功率LED芯片表面的散热性能。此外,还通过实验进一步研究了具有四个不同纵横比微通道结构的大功率LED水冷却系统的热性能。具体地,定性地分析了微通道中的流体速度分布与大功率LED水冷却系统的散热性能之间的耦合效应,并将其与流体速度分布的模拟结果进行了比较。结果充分表明,较大的微通道长宽比可以在大功率LED芯片的表面上提供更好的散热性能。原始数据/值优化结构参数以促进相对均匀的速度分布以改善水冷却系统性能是要考虑的关键因素。

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