首页> 外文会议>ASME international mechanical engineering congress and exposition >LIFE PREDICTION AND STIFFNESS DEGRADATION MODELING OF GLASS/EPOXY COMPOSITES SUBJECTED TO FLEXURAL FATIGUE LOADING
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LIFE PREDICTION AND STIFFNESS DEGRADATION MODELING OF GLASS/EPOXY COMPOSITES SUBJECTED TO FLEXURAL FATIGUE LOADING

机译:玻璃/环氧树脂复合材料弯曲疲劳载荷的寿命预测和刚度退化模型

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Textile composite are extensively used as structural materials for automotive, aerospace, energy, transportation and construction applications. During their service life these structures are subjected to different types of static and cyclic loading. For structural health monitoring of these structures, it is important to know the fatigue life and damage occurred at any stage of the life of the structure. Fatigue life is generally estimated using suitable life prediction model, while fatigue damage can be predicted by monitoring measurable damage parameters such as stiffness and strength. Two mathematical models namely fatigue life prediction model and stiffness degradation model are proposed for plain weave glass/epoxy composite subjected to flexural fatigue loading. Three different functions namely linear, exponential and sigmoid are evaluated to represent S-N diagram for plain weave glass/epoxy composite. Using predicted fatigue life along with initial modulus as inputs, the stiffness degradation model can predict residual stiffness at any stage of the fatigue loading life cycle. Logarithmic function used to represent stiffness degradation in the model is derived by inverting Boltzmann sigmoid function. The results of both, fatigue life model and stiffness degradation model were found to be in good agreement with those of the experimental results.
机译:纺织复合材料被广泛用作汽车,航空,能源,运输和建筑应用的结构材料。在其使用寿命期间,这些结构承受不同类型的静态和循环载荷。对于这些结构的结构健康监测,重要的是要了解疲劳寿命和在结构寿命的任何阶段发生的损坏。通常使用合适的寿命预测模型来估计疲劳寿命,而疲劳损伤可以通过监视可测量的损伤参数(例如刚度和强度)来预测。提出了平纹玻璃/环氧树脂复合材料承受弯曲疲劳载荷的两个数学模型,即疲劳寿命预测模型和刚度退化模型。评估了三种不同的函数,即线性函数,指数函数和S形函数,以表示平纹玻璃/环氧树脂复合材料的S-N图。使用预测的疲劳寿命以及初始模量作为输入,刚度退化模型可以预测疲劳载荷生命周期任何阶段的残余刚度。用于表示模型中刚度退化的对数函数是通过将Boltzmann乙状结肠函数求逆而得出的。疲劳寿命模型和刚度退化模型的结果均与实验结果吻合良好。

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