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A Viscoplastic Constitutive Model for Single Crystals and Its Application in a Numerical Simulation of Creep-Plasticity Behaviors

机译:单晶粘塑性本构模型及其在蠕变-塑性行为数值模拟中的应用

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Founded on the energy storing characteristics of microstructure during irreversible deformation, a viscoplastic constitutive model with no yielding surface introduced was developed for single crystals by adopting a spring-dashpot mechanical system. Both plastic dashpots reflecting the material time-independent responses and Newtonian dashpots mirroring the material time-dependent viscous responses were introduced to describe the viscoplasticity of slip systems. The single crystal constitutive model was established based on the thermodynamics of internal variables and the theory of absolute reaction rate. By implementing the KBW self-consistent theory, a polycrystal viscoplastic constitutive model was formed. The numerical analysis in corresponding algorithm was significantly simplified as no searching process for the activation of the slip systems and slip directions was required. The numerical simulation of creep-plasticity behaviors demonstrated excellent agreement with the corresponding experimental data.
机译:基于不可逆变形过程中微观结构的储能特性,通过采用弹簧-阻尼器机械系统,为单晶建立了不引入屈服面的粘塑性本构模型。反映材料时间独立响应的塑料阻尼器和反映材料时间依赖粘性响应的牛顿阻尼器都被用来描述滑移系统的粘塑性。基于内部变量的热力学和绝对反应速率理论建立了单晶本构模型。通过实施KBW自洽理论,形成了多晶粘塑性本构模型。由于不需要滑动系统和滑动方向激活的搜索过程,因此相应算法中的数值分析得到了显着简化。蠕变塑性行为的数值模拟与相应的实验数据显示出极好的一致性。

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