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An extended finite element method formulation for modeling multi-phase boundary interactions in steady state heat conduction problems

机译:稳态导热问题中多相边界相互作用建模的扩展有限元方法

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The present paper proposes an XFEM formulation for heat transfer analysis of multi-phase materials with explicit treatment of boundary interactions. The existence of interfacial resistance at the boundaries of the material phases produces discontinuities in the temperature field and a standard finite element treatment would require complex domain discretizations and additional surface elements to capture the jumps of the temperature values. To overcome this problem, the proposed method captures these jumps by enriching the temperature field around the phase boundaries with appropriate discontinuous functions. Specifically, a new XFEM enrichment scheme is developed to address the issue of multiple-phase junctions, that is, areas where multiple boundaries with different properties intersect. This approach offers the advantage of bypassing the need for complex meshes required by the standard FE method and thus it significantly simplifies the analysis procedure. The elaborated methodology is first validated with existing results from the literature on heat conduction in polycrystalline materials. Then, a detailed model for heat conduction analysis of polymers reinforced with carbonnanotubes is introduced, which takes into account the role of the interfacial resistance between different material phases. Even though the proposed method is demonstrated in heat conduction problems, it can be straightforwardly extended to other similar problem types, such us electrical conduction or equivalent mechanical properties.
机译:本文提出了一种XFEM配方,用于多相材料的传热分析,具有明确的边界相互作用。在材料相的边界处存在界面抗性在温度场中产生不连续性,并且标准有限元处理需要复杂的畴离散化和附加表面元件以捕获温度值的跳跃。为了克服这个问题,所提出的方法通过用适当的不连续功能来富集相位边界周围的温度场来捕获这些跳跃。具体地,开发了一种新的XFEM浓缩方案来解决多相结的问题,即多相结合,即不同特性相交的多个边界的区域。这种方法提供了绕过标准Fe方法所需复杂网格的优点,因此它显着简化了分析程序。首先验证了阐述的方法从多晶材料中的热传导的文献中验证了现有的结果。然后,介绍了用碳纳尼亚管增强的聚合物的热传导分析的详细模型,这考虑了不同材料相之间的界面抗性的作用。即使在导热问题中证明了所提出的方法,它也可以直接扩展到其他类似的问题类型,例如我们的导电或等效机械性能。

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