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A coupled cohesive zone model for transient analysis of thermoelastic interface debonding

机译:热弹性界面脱粘瞬态分析的耦合内聚区模型

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摘要

Acoupled cohesive zone model based on an analogy between fracture and contact mechanics is proposed to investigate debonding phenomena at imperfect interfaces due to thermomechanical loading and thermal fields in bodies with cohesive cracks. Traction-displacement and heat flux–temperature relations are theoretically derived and numerically implemented in the finite element method. In the proposed formulation, the interface conductivity is a function of the normal gap, generalizing the Kapitza constant resistance model to partial decohesion effects. The case of a centered interface in a bimaterial component subjected to thermal loads is used as a test problem. The analysis focuses on the time evolution of the displacement and temperature fields during the transient regime before debonding, an issue not yet investigated in the literature. The solution of the nonlinear numerical problem is gained via an implicit scheme both in space and in time. The proposed model is finally applied to a case study in photovoltaics where the evolution of the thermoelastic fields inside a defective solar cell is predicted.
机译:提出了一种基于断裂与接触力学相似性的耦合内聚区模型,以研究由于内聚裂纹的热力学载荷和热场而在不完美界面处产生的脱胶现象。牵引位移和热通量-温度关系在理论上得到了推导,并在有限元方法中得到了数值实现。在建议的配方中,界面电导率是正常间隙的函数,将Kapitza恒定电阻模型推广到部分脱粘效应。双材料组件中受热负载的界面居中的情况用作测试问题。分析的重点是脱粘前瞬态过程中位移和温度场的时间演化,这是文献中尚未研究的问题。非线性数值问题的解决方案是通过时空隐式方案获得的。最终将所提出的模型应用于光伏发电中的案例研究,其中预测了缺陷太阳能电池内部热弹性场的演化。

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