Mechanisms of turbulence effects on sensitivity analysis and optimization performance in fluid-thermal coupled topology optimization

IF 5 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Yujie Guo, Xin Li, Silong Zhang, Jingying Zuo, Jianfei Wei, Wen Bao
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Abstract

Topology optimization has become a promising technique for the design of heat exchange devices. However, the application of topology optimization in turbulence flow coupled with the heat transfer process remains scarce mainly hindered by the critical step of sensitivity analysis. In this study, a continuous adjoint-based sensitivity analysis framework is developed for multi-objective topology optimization problems, and the information about turbulence effects on flow and heat transfer processes is incorporated into sensitivity analysis results by differentiating the turbulence viscosity within the diffusion terms. The developed framework is then applied to two topology optimization problems. The results reveal the mechanism of turbulence effects on sensitivity deviations, which are observed in both low and high Reynolds number flow regimes. Through the analysis of the backpropagation pathway of the thermal objective function gradient, it is revealed that the differentiation of the convective heat transfer term plays a dominant role in driving the formation of multi-branch cooling structures. Compared to the frozen turbulence assumption, the optimized heat sink structure considering turbulence effects demonstrates improved performance, with reductions of 3.84 % in flow losses, 2.61 % in mean temperature, and 3.34 % in maximum temperature rise.
流-热耦合拓扑优化中湍流对灵敏度分析和优化性能的影响机理
拓扑优化已成为一种很有前途的换热装置设计技术。然而,由于灵敏度分析这一关键步骤的限制,拓扑优化技术在湍流流动耦合换热过程中的应用仍然很少。针对多目标拓扑优化问题,建立了一种基于连续伴随的灵敏度分析框架,通过对扩散项内的湍流粘度进行微分,将湍流对流动和传热过程的影响信息纳入灵敏度分析结果。然后将所开发的框架应用于两个拓扑优化问题。结果揭示了湍流对灵敏度偏差的影响机制,这种影响在低和高雷诺数流型中都可以观察到。通过对热目标函数梯度的反向传播路径分析,揭示了对流换热项的分异对多支冷却结构的形成起主导作用。与冻结湍流假设相比,考虑湍流效应的优化散热器结构的性能得到了改善,流动损失降低了3.84%,平均温度降低了2.61%,最高温升降低了3.34%。
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来源期刊
CiteScore
10.30
自引率
13.50%
发文量
1319
审稿时长
41 days
期刊介绍: International Journal of Heat and Mass Transfer is the vehicle for the exchange of basic ideas in heat and mass transfer between research workers and engineers throughout the world. It focuses on both analytical and experimental research, with an emphasis on contributions which increase the basic understanding of transfer processes and their application to engineering problems. Topics include: -New methods of measuring and/or correlating transport-property data -Energy engineering -Environmental applications of heat and/or mass transfer
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