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Closed-form solution for a circular nano-inhomogeneity with interface effects in an elastic plane under uniform remote heat flux

机译:在均匀远程热通量下的弹性平面中具有界面效应的圆形纳米不均匀性的闭合溶液

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摘要

We study the uncoupled steady-state thermo-elastic problem of a circular nano-inhomogeneity embedded in an elastic plane subjected to a uniform remote heat flux. Nanoscale influences are included in the continuum-based model of deformation by incorporating interface effects arising from both heat conduction and elasticity (in the absence of surface tension) on the material interface. Complex variable methods are used to derive closed-form solutions for the corresponding temperature and thermal stress fields. Numerical examples are presented to examine how each of the heat or elastic interface effects influence the thermal stress field. In fact, we showthat the contribution of heat related interface effects to the thermal stress field decays in both the matrix and the inhomogeneity as the heat conductivity of the inhomogeneity increases. On the other hand, the contribution of elastic interface effects to the thermal stress field decays in the matrix but increases for the inhomogeneity as the inhomogeneity becomes harder.
机译:我们研究了嵌入于经过均匀的远程热通量的弹性平面中的圆形纳米不均匀性的解耦稳态热弹性问题。通过在材料界面上掺入来自热导热和弹性的弹性(在没有表面张力的情况下的弹性(在没有表面张力的情况下)的界面效应,包括纳米级影响。复杂的可变方法用于导出相应温度和热应力场的闭合液。提出了数值例子以检查每种热量或弹性界面效应如何影响热应力场。事实上,随着不均匀性的导热率增加,我们将热相关接口效应对矩阵和不均匀性的热应力场衰减的贡献增加。另一方面,弹性界面效应对基质中的热应力场衰减的贡献,但随着不均匀性变得更加难以增加而增加的不均匀性。

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