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A Coupled Damage-plasticity Model for Energy Absorption in Composite

机译:复合材料吸收能量的损伤-塑性耦合模型

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Predicting the energy absorption of composite structures requires a constitutive model that is capable of representing post-peak softening and irreversible strains, i.e., a coupled damage-plasticity model. The development of such models requires a general damage-plasticity framework. This article examines the merits and limitations of the continuum damage mechanics (CDM) framework and the plasticity framework. Based on the physical evidence of damage accumulation process in composites and the fundamentals of the two theories, a simple coupling method was proposed. This method employs a perfect plastic flow rule within a CDM framework. The capability of this method was examined by incorporating plasticity into the Matzenmiller-Lubliner-Taylor (MLT) model, a classic CDM model for composites. The coupled MLT-plasticity model was implemented as a user defined material law in explicit finite element code LS-DYNA, and subsequently numerical tests were conducted. It was demonstrated that the proposed method can extend an existing composite CDM model into a coupled damage-plasticity model seamlessly with only a few extra parameters, while retaining its computational efficiency. The capability of the coupled CDM-plasticity model in energy absorption prediction was validated in axial impact simulations of a composite tube reinforced with 1-ply carbon fiber tri-axial braid.
机译:预测复合结构的能量吸收需要能够代表峰后软化和不可逆应变的本构模型,即耦合损伤-塑性模型。此类模型的开发需要一个通用的损伤可塑性框架。本文研究了连续损伤力学(CDM)框架和可塑性框架的优缺点。基于复合材料中损伤累积过程的物理证据和两种理论的基础,提出了一种简单的耦合方法。这种方法在CDM框架内采用了完美的塑性流动规则。通过将可塑性纳入复合材料的经典CDM模型Matzenmiller-Lubliner-Taylor(MLT)模型中,检验了该方法的功能。在明确的有限元代码LS-DYNA中,将耦合的MLT-塑性模型作为用户定义的材料定律来实现,随后进行了数值测试。结果表明,该方法可以将现有的复合CDM模型扩展为耦合损伤塑性模型,且仅需几个额外的参数即可,同时保持其计算效率。耦合CDM-塑性模型在能量吸收预测中的能力已在用1-层碳纤维三轴编织增强的复合管的轴向冲击模拟中得到了验证。

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