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Thermo-mechanical coupling analysis of the orthotropic structures by using element-free Galerkin method

机译:采用无元素Galerkin方法的正交结构热机械耦合分析

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摘要

The computational model of thermo-mechanical coupling analysis for orthotropic structures was established based on the element-free Galerkin (EFG) method. The computational method and programs was verified through engineering thermoelastic problems of complex orthotropic structures. The influence of off-angle and the orthotropic material factors including thermal conductivity orthotropic factor, thermal expansion orthotropic factor, Poisson's ratio factor on the thermal deformation and thermal stress was investigated, and the reasonable range of these parameters was provided. A group of these preferred parameters were used to finish the thermo-mechanical coupling analysis of the orthotropic structure by using the proposed model and the results show that the maximum value of thermal deformation and thermal stress for orthotropic structure is reduced by 11% and 24% compared with the isotropic structure, respectively. The EFG solutions show a higher calculation precision than the finite element method (FEM) solutions in practical orthotropic thermoelastic problems. The off-angle affects the magnitude and direction of total thermal deformation displacement and the magnitude of Mises stress, while orthotropic materials factors only affect the magnitude of total thermal deformation displacement and the Mises stress without affecting the direction. The reasonable off-angle and orthotropic material factors can effectively improve thermal deformation and thermal stress.
机译:基于无元素Galerkin(EFG)方法建立了对正交结构热机械耦合分析的计算模型。通过综合正交结构的工程热弹性问题验证了计算方法和程序。研究了导热性正向因子,热膨胀正向因素,泊松比因子对热变形和热应力的影响以及热变形和热应力的影响的影响,提供了这些参数的合理范围。通过使用所提出的模型,使用了一组这些优选参数来完成正交结构的热机械耦合分析,结果表明,结果表明,正交结构的热变形和热应力的最大值降低了11%和24%与各向同性结构相比。 EFG解决方案显示比实际正交热弹性问题中的有限元方法(FEM)解决方案更高的计算精度。非角度影响总热变形位移的大小和方向和误判压力的大小,而正交材料因素仅影响总热变形位移的大小,而不会影响方向的情况而不会影响误判。合理的离角和正交材料因子可以有效地改善热变形和热应力。

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