Thermal finite element analysis of complex heat sinks using open source tools and high-performance computing

IF 0.2 Q4 ENGINEERING, MULTIDISCIPLINARY
F. J. Ramírez-Gil, Á. Delgado-Mejía, Esteban Foronda-Obando, L. Olmos-Villalba
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引用次数: 1

Abstract

The modeling of heat transfer phenomena in thermal systems has been extensively explored in industry and academia by using the finite element method (FEM) with commercial software. However, when the thermal problem introduces complexities in geometry and physics, the availability of licenses for high-performance computing could represent a limitation to achieving results in a reasonable time. Hence, finite element analysis (FEA) using open-source software (OSS) becomes a prominent candidate in this case. Therefore, multiple open-source tools are integrated into this work to solve the heat transfer equation, including conduction, convection, and radiation. Several geometrically complex heat sinks commonly used in the electronics industry are considered application examples. The performance of parallel computing is assessed in terms of processing time. The finite element solution engine is built by implementing the energy balance equations in their weak formulation in Firedrake, using its solver PETSc, the mesh generator GMSH and the post-processor Paraview, thus creating a fully OSS-based Python framework. Finally, the results are verified with commercial software for different case studies, and its potential to be extended to other fields of engineering is evident.
使用开源工具和高性能计算的复杂散热器的热有限元分析
利用商业软件对热系统中传热现象的有限元建模进行了广泛的探索。然而,当热问题引入几何和物理的复杂性时,高性能计算许可的可用性可能会限制在合理的时间内获得结果。因此,在这种情况下,使用开源软件(OSS)的有限元分析(FEA)成为一个突出的候选。因此,在这项工作中集成了多个开源工具来求解传热方程,包括传导、对流和辐射。电子工业中常用的几种几何复杂的散热器被认为是应用实例。并行计算的性能是根据处理时间来评估的。有限元求解引擎是通过在Firedrake中实现弱公式中的能量平衡方程,使用其求解器PETSc,网格生成器GMSH和后处理器Paraview来构建的,从而创建了一个完全基于oss的Python框架。最后,用商业软件对不同的案例研究结果进行了验证,其扩展到其他工程领域的潜力是显而易见的。
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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