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Modeling of viscoelasticity and damage in composite laminates by continuum thermodynamics.

机译:通过连续热力学对复合材料层压板的粘弹性和损伤进行建模。

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Time dependent analysis of fiber reinforced polymer matrix composites is essential if these materials are used in applications involving the effect of severe environmental conditions such as high temperature and humidity in addition to mechanical loading. The present research is focused on understanding and modeling the overall nonlinear viscoelastic response of polymer matrix composites incorporating the effects of distributed damage.; A constitutive framework incorporating the effect of high temperature and distributed damage is developed for polymer matrix composite laminates. The use of this framework for woven fabric composites is illustrated. The viscoelastic material response and the material properties under severe environmental conditions are studied both theoretically and experimentally. The approach uses continuum thermodynamics based formulation in which stress and temperature are allowed as independent variables along with the so-called hidden variables associated with viscous flow and internal variables representing damage. The damage variables incorporate time-dependent crack separation response as well crack surface orientation. The material coefficients in the polynomial expansion of the free energy are evaluated by a computational model. A user defined material subroutine is developed to include the nonlinear viscoelastic constitutive relations into ABAQUS finite element analysis package in computational study. A combined analytical and numerical procedure to determine the unknown constants in the theoretical model is also presented.; The effect of damage on the residual viscoelastic response of the material is studied by experiments to get a satisfactory and complete model. The effect of high temperature on the damage initiation and evolution is studied by microscopic observations of the undamaged and damaged specimen edges, which are exposed to high temperature. A systematic experimental procedure is followed to determine the critical temperature and stress levels for the damage initiation and viscoelastic response. Previously damaged specimens are subjected to instantaneous loading and unloading at different stress and different temperature levels to get creep-recovery strain data for model verification purposes. In all experiments the composite specimens are heated to required test temperature and then, temperature is kept constant.
机译:如果纤维增强的聚合物基复合材料用于机械负荷之外的涉及严酷环境条件(例如高温和高湿)的应用,则这些材料的时间依赖性分析至关重要。目前的研究集中在对聚合物基复合材料的整体非线性粘弹性响应进行理解和建模,其中包括了分布损伤的影响。建立了一种结合了高温和分布损伤效应的本构框架,用于聚合物基复合材料层压板。说明了该框架在机织织物复合物中的用途。从理论和实验两方面对粘弹性材料的响应和在恶劣环境条件下的材料性能进行了研究。该方法使用基于连续热力学的公式,其中允许应力和温度作为自变量,以及与粘性流相关的所谓隐藏变量和代表损伤的内部变量。损伤变量包括与时间有关的裂纹分离响应以及裂纹表面取向。自由能的多项式展开中的材料系数通过计算模型进行评估。开发了用户定义的材料子例程,以在计算研究中将非线性粘弹性本构关系包含到ABAQUS有限元分析软件包中。还提出了确定理论模型中未知常数的组合分析和数值程序。通过实验研究了损伤对材料残余粘弹性响应的影响,得到了令人满意的完整模型。通过显微镜观察暴露在高温下的未损坏和损坏的试样边缘,研究了高温对损伤开始和发展的影响。遵循系统的实验程序来确定破坏引发和粘弹性响应的临界温度和应力水平。先前损坏的样本在不同的应力和不同的温度水平下进行瞬时加载和卸载,以获取蠕变恢复应变数据,以用于模型验证。在所有实验中,将复合样品加热到所需的测试温度,然后保持温度恒定。

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