Numerical Study on Thermal Hydraulic and Flow-Induced Noise in Triply Periodic Minimal Surface (TPMS) Channels

0 ENGINEERING, MECHANICAL
Xinhai Gan, Jinghan Wang, Zhiyu Liu, Min Zeng, Qiuwang Wang, Zhilong Cheng
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Abstract

Mini-channel heat exchanger are widely used due to their compact structures and high efficiency. Integrating heat exchangers with triply periodic minimal surfaces (TPMS) has shown great potential to optimize the flow and heat transfer performance. In this study, Gyroid (G), Diamond (D) and IWP type TPMS based heat exchangers are constructed in three dimensions. The thermal hydraulic, entropy production and flow-induced noise characteristics of TPMS based heat exchangers are numerically investigated. The results indicate that the TPMS channels with larger viscosity entropy production have smaller thermal entropy production due to the greater flow disturbance. The G-channel has the highest friction factor and the lowest sound source intensity, while the D-channel obtains the strongest sound source intensity due to frequent cross-collisions of the fluid. The sound source intensity of the IWP channel is 10% lower than the D-channel. The wall dipole sound source plays a dominant role in TPMS channels. This study provides different perspectives to evaluate the performance of a TPMS heat exchanger, and provides references for the design and optimization of TPMS heat exchangers.
三周期最小面 (TPMS) 通道中的热水力和流动诱导噪声的数值研究
微型通道热交换器因其结构紧凑、效率高而得到广泛应用。将热交换器与三重周期性最小表面(TPMS)相结合,在优化流动和传热性能方面显示出巨大的潜力。在这项研究中,我们构建了基于 Gyroid (G)、Diamond (D) 和 IWP 型 TPMS 的三维热交换器。对基于 TPMS 的热水力、熵产生和流动引起的噪音特性进行了数值研究。结果表明,粘度熵产生较大的 TPMS 通道由于流动扰动较大,热熵产生较小。G 型通道的摩擦因数最高,声源强度最低,而 D 型通道由于流体交叉碰撞频繁,声源强度最大。IWP 通道的声源强度比 D 通道低 10%。壁偶极子声源在 TPMS 信道中起着主导作用。这项研究从不同角度评估了 TPMS 热交换器的性能,为 TPMS 热交换器的设计和优化提供了参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
4.20
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