Topology optimization of thermal-fluid systems with non-uniform thermal loads using a novel objective function

IF 2.6 3区 工程技术 Q2 ENGINEERING, MECHANICAL
Xiangzhuang Kong , Hongming Zhang , Yanxia Du , Xian Wang , Guangming Xiao
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Abstract

Topology optimization transcends the limitations of traditional engineering design and enables innovative structural concepts. This study integrates the adjoint lattices Boltzmann method with the Level-set method to perform a topology optimization on the convective heat transfer under non-uniform thermal loads. Firstly, a novel objective function is proposed, which achieves a tight coupling of forward parameters in the adjoint problem and the optimization performance can be improved accordingly. With the GPU acceleration, a tenfold increase in optimization efficiency is achieved. Secondly, by decoupling the evolution and boundary equations of the forward LBE, the adjoint LBE could be derived efficiently and it enhances the simplicity and generality of the adjoint LBM. Finally, the topology optimization under various thermal loads is investigated based on our proposed method. The results indicate that the optimized structures are significantly influenced by the distributions of thermal loads. The solid tends to concentrate in the high heat-flux regions to ensure a high efficiency of heat transfer in the area, since the low porosity leads to high-velocity flow to enhance the convective heat transfer. According to the optimized structures, there are two reasons for the enhanced heat transfer capability, one is the increased temperature gradient in the thermal boundary layer and the other is the increased tortuosity in high heat flux regions.
基于新目标函数的非均匀热负荷热流体系统拓扑优化
拓扑优化超越了传统工程设计的局限,实现了创新的结构概念。本研究将伴随晶格玻尔兹曼方法与水平集方法相结合,对非均匀热负荷下的对流换热进行了拓扑优化。首先,提出了一种新的目标函数,实现了伴随问题中前向参数的紧密耦合,从而提高了优化性能;随着GPU的加速,优化效率提高了十倍。其次,通过解耦正演LBE的演化方程和边界方程,可以有效地推导出伴随LBE,提高了伴随LBM的简便性和通用性;最后,研究了不同热负荷下的拓扑优化问题。结果表明,优化后的结构受热负荷分布的影响较大。固体倾向于集中在高热流密度区域,以保证该区域的高换热效率,因为低孔隙率导致高速流动,从而增强对流换热。根据优化后的结构,传热能力增强的原因有两个,一是热边界层温度梯度增大,二是高热流密度区域的弯曲增大。
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来源期刊
International Journal of Heat and Fluid Flow
International Journal of Heat and Fluid Flow 工程技术-工程:机械
CiteScore
5.00
自引率
7.70%
发文量
131
审稿时长
33 days
期刊介绍: The International Journal of Heat and Fluid Flow welcomes high-quality original contributions on experimental, computational, and physical aspects of convective heat transfer and fluid dynamics relevant to engineering or the environment, including multiphase and microscale flows. Papers reporting the application of these disciplines to design and development, with emphasis on new technological fields, are also welcomed. Some of these new fields include microscale electronic and mechanical systems; medical and biological systems; and thermal and flow control in both the internal and external environment.
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