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A Continuum Damage Mechanics Model for the Static and Cyclic Fatigue of Cellular Composites

机译:多孔复合材料静疲劳和循环疲劳的连续损伤力学模型。

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摘要

The fatigue behavior of a cellular composite with an epoxy matrix and glass foam granules is analyzed and modeled by means of continuum damage mechanics. The investigated cellular composite is a particular type of composite foam, and is very similar to syntactic foams. In contrast to conventional syntactic foams constituted by hollow spherical particles (balloons), cellular glass, mineral, or metal place holders are combined with the matrix material (metal or polymer) in the case of cellular composites. A microstructural investigation of the damage behavior is performed using scanning electron microscopy. For the modeling of the fatigue behavior, the damage is separated into pure static and pure cyclic damage and described in terms of the stiffness loss of the material using damage models for cyclic and creep damage. Both models incorporate nonlinear accumulation and interaction of damage. A cycle jumping procedure is developed, which allows for a fast and accurate calculation of the damage evolution for constant load frequencies. The damage model is applied to examine the mean stress effect for cyclic fatigue and to investigate the frequency effect and the influence of the signal form in the case of static and cyclic damage interaction. The calculated lifetimes are in very good agreement with experimental results.
机译:借助连续损伤机理,对具有环氧基质和玻璃泡沫颗粒的多孔复合材料的疲劳行为进行了分析和建模。研究的多孔复合材料是复合泡沫的一种特殊类型,与复合泡沫非常相似。与由空心球形颗粒(气球)构成的常规句法泡沫相反,在多孔复合材料的情况下,多孔玻璃,矿物或金属占位符与基质材料(金属或聚合物)结合在一起。使用扫描电子显微镜对损伤行为进行微观结构研究。为了对疲劳行为进行建模,将损伤分为纯静态损伤和纯周期性损伤,并使用循环和蠕变损伤的损伤模型根据材料的刚度损失进行描述。两种模型都包含非线性累积和损伤相互作用。开发了一种循环跳跃程序,可以快速,准确地计算出恒定载荷频率下的损伤演变。应用损伤模型来检查循环疲劳的平均应力效应,并研究在静态和周期性损伤相互作用下的频率效应和信号形式的影响。计算出的寿命与实验结果非常吻合。

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