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Dynamic Numerical Simulations Of Void Growth And Coalescence With Stress Triaxiality Maintained Constant-application To Ductile Solids With Secondary Voids

机译:应力三轴作用下空洞生长和聚结的动力学数值模拟保持不变,并应用于具有二次空洞的球墨铸铁固体

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Dynamic explicit finite element analysis is used to investigate void growth and plastic collapse of an axisymmetric unit cell model with a primary spherical void imbedded in a porous matrix material. The Gurson-Tvergaard-Needleman homogenized model is used to describe the plastic behaviour of the matrix material. The simulations are performed under large strain conditions for varying secondary void volume fractions and quasi-static loading controlled by constant stress triaxiality. The proposed accomplishment of constant stress triaxiality associated with dynamic explicit computations provides a method allowing to trace the collapse of the unit cell from the onset of coalescence to practically its final failure. Consistent with experimental and theoretical results available in the literature, the obtained results substantiate the sensitivity of coalescence to the presence of secondary voids.
机译:动态显式有限元分析用于研究具有主要球形空隙嵌入多孔基质材料中的轴对称晶胞模型的空隙生长和塑性破坏。 Gurson-Tvergaard-Needleman均质化模型用于描述基体材料的塑性行为。模拟是在大应变条件下进行的,用于改变次级空隙体积分数和由恒定应力三轴性控制的准静态载荷。与动态显式计算相关联的恒定应力三轴性的拟议完成提供了一种方法,该方法可以跟踪单元单元从聚结开始到实际上最终失效的崩溃。与文献中提供的实验和理论结果一致,所获得的结果证实了合并对存在次要空隙的敏感性。

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