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Development and Verification of an Orthotropic Three-Dimensional Model with Tabulated Input Suitable for Use in Composite Impact Problems

机译:表明输入具有适用于复合局部影响问题的表现输入的正交三维模型的开发和验证

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The need for accurate material models to simulate the deformation, damage, and failure of polymer matrix composites under impact conditions is becoming critical as these materials are gaining increased use in the aerospace and automotive communities. The aerospace community has identified several key capabilities which are currently lacking in the available material models in commercial transient dynamic finite element codes. To attempt to improve the predictive capability of composite impact simulations, a next generation material model is being developed for incorporation within the commercial transient dynamic finite element code LS-DYNA. The material model, which incorporates plasticity, damage, and failure, utilizes experimentally based tabulated input to define the evolution of plasticity and damage and the initiation of failure as opposed to specifying discrete input parameters such as modulus and strength. The plasticity portion of the orthotropic, three-dimensional, macroscopic composite constitutive model is based on an extension of the Tsai-Wu composite failure model into a generalized yield function with a non-associative flow rule. For the damage model, a strain equivalent formulation is used in combination with a semi-coupled approach where the overall damage in a particular coordinate direction is assumed to be a function of the applied loads in all of the coordinate directions. For the failure model, a tabulated approach is utilized in which a stress or strain based invariant is defined as a function of the location of the current stress state in stress space to define the initiation of failure. The development and verification of the material model is discussed.
机译:需要精确的材料模型来模拟影响条件下的变形,损伤和聚合物基质复合材料的失效,因为这些材料在航空航天和汽车社区中使用增加使用。航空航天界已经确定了目前缺乏商业瞬态动态有限元码中可用材料模型的几个关键能力。为了尝试提高复合影响模拟的预测能力,正在开发下一代材料模型以在商业瞬态动态有限元码LS-DYNA内结合。具有可塑性,损坏和故障的材料模型利用实验基础的制表输入来定义可塑性和损坏的演变和失败的启动,而不是指定了模量和强度等离散输入参数。正交性三维的宏观复合本构体型模型的可塑性部分基于Tsai-wu复合失败模型的延伸成具有非关联流量规则的广义产量函数。对于损伤模型,应变等效制剂与半耦合方法结合使用,其中特定坐标方向上的整体损坏被认为是所有坐标方向上的施加的负载的函数。对于故障模型,利用了一种制表方法,其中基于应力或应变的不变量被定义为应力空间中电流应力状态的位置以定义故障的启动。讨论了材料模型的开发和验证。

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