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Advanced anisotropic damage model fully coupled with anisotropic plasticity

机译:先进的各向异性损伤模型与各向异性可塑性完全相结合

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In this work, a thermodynamically-consistent framework is used to formulate a nonassociative finite strain anisotropic elastoplastic model fully coupled with anisotropic ductile damage. The finite strain assumption is considered using specific large strains kinematics based on multiplicative decomposition of the total transformation gradient and assuming a small elastic strains. The objectivity principle fulfillment is assumed using the well-known rotating frame formulation. The effective variables are defined to introduce the effect of the anisotropic damage on the other variables through the total energy equivalence assumption. The non-associative plasticity framework, for which equivalent stresses in yield function and in plastic potential are separately defined, allows better plastic anisotropy description. The evolution equations for overall dissipative phenomena are deduced from the generalized normality rule applied to the plastic potential while the consistency condition is still applied to the yield function. Applications are made to an RVE with generic material parameters by considering non-proportional loading paths. For each loading path the effect of the anisotropic plasticity on the damage evolution is studied in the context of finite strains.
机译:在这项工作中,热力学 - 一致的框架用于配制与各向异性延性损伤完全耦合的非分子化有限菌株各向异性弹性塑料模型。基于总转化梯度的乘法分解并假设小弹性菌株,使用特定大菌株运动学考虑有限应变假设。使用众所周知的旋转框架制剂假设客观性原理实现。定义有效变量以通过总能量等效的假设引入各向异性损伤对其他变量的影响。非关联塑性框架,其屈服函数和塑料电位的等效应力是单独定义的,允许更好的塑性各向异性描述。从施加到塑料电位的广义正常规则中推断出总耗散现象的演化方程,而仍然施加到屈服函数。通过考虑非比例的负载路径,使用通用材料参数进行rve。对于每个装载路径,在有限菌株的背景下研究了各向异性可塑性对损伤进化的影响。

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