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首页> 外文期刊>Journal of Materials Science >Multi-scale modeling, stress and failure analyses of 3-D woven composites
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Multi-scale modeling, stress and failure analyses of 3-D woven composites

机译:3-D编织复合材料的多尺度建模,应力和破坏分析

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The very complex, multi-level hierarchical construction of textile composites and their structural components commonly manifests via significant property variation even at the macro-level. The concept of a “meso-volume” (introduced by this author in early 1990s) is consistently applied in this work to 3-D stress/strain and failure analyses of 3-D woven composites at several levels of structural hierarchy. The meso-volume is defined as homogeneous, anisotropic block of composite material with effective elastic properties determined through volumetrically averaged 3-D stress and strain fields computed at a lower (“finer”) level of structural hierarchy and application of generalized Hooke’s law to the averaged fields. The meso-volume can represent a relatively large, homogenized section of a composite structural component, a lamina in laminated composite structure, a homogenized assembly of several textile composite unit cells, a single homogenized unit cell, a resin-impregnated yarn, a single carbon fiber, even a carbon nanotube assembly. When composed together, distinct meso-volumes constitute a 3-D Mosaic model at the respective hierarchy level. A multi-scale methodology presented in this paper first illustrates 3-D stress/strain analysis of the Mosaic unidirectional composite, computation of its effective elastic properties and their further use in 3-D stress/strain analysis of the Mosaic model of 3-D woven composite Unit Cell. The obtained 3-D stress/strain fields are then volumetrically averaged within the Unit Cell, and its effective elastic properties are computed. The predicted effective elastic properties of 3-D woven composite are compared with experimental data and show very good agreement. Further, those effective elastic properties are used in 3-D simulations of three-point bending tests of 3-D woven composite; theoretical predictions for central deflection show excellent agreement with experimental data. Finally, a 3-D progressive failure analysis of generic 3-D Mosaic structure is developed using ultimate strain criterion and illustrated on the 3-D woven composite Unit Cell. The predicted strength values are compared to experimental results. The presented comparisons of theoretical and experimental results validate the adequacy and accuracy of the developed material models, mathematical algorithms, and computational tools.
机译:纺织品复合材料及其结构组件的非常复杂的多层结构通常通过显着的性能变化体现出来,即使在宏观层面也是如此。 “介观体积”的概念(由作者在1990年代初期引入)在本工作中始终应用于在几个层次结构层次上的3-D编织复合材料的3-D应力/应变和破坏分析。中观体积定义为具有有效弹性特性的复合材料的均质各向异性块,该弹性块是通过在较低(“更细”)结构层次上计算的体积平均3-D应力和应变场确定的,并将广义的胡克定律应用于平均场。中观体积可以代表复合结构部件的相对较大的均质截面,层状复合结构中的薄层,多个纺织复合物单元格的均质组件,单个均质化的单元格,树脂浸渍的纱线,单个碳纤维纤维,甚至是碳纳米管组件。当组合在一起时,不同的介观体积在相应的层次结构级别上构成了3-D镶嵌模型。本文介绍的一种多尺度方法首先说明了Mosaic单向复合材料的3-D应力/应变分析,其有效弹性性能的计算及其在3-D Mosaic模型的3-D应力/应变分析中的进一步应用编织复合单元电池。然后将获得的3-D应力/应变场在单位单元内进行体积平均,然后计算其有效弹性特性。将3-D编织复合材料的预测有效弹性性能与实验数据进行了比较,并显示出很好的一致性。此外,这些有效的弹性特性被用于3-D编织复合材料的三点弯曲测试的3-D模拟中。中心挠度的理论预测与实验数据显示出极好的一致性。最后,使用极限应变准则开发了通用3-D镶嵌结构的3-D渐进破坏分析,并在3-D编织复合材料单元格上进行了说明。将预测的强度值与实验结果进行比较。提出的理论和实验结果的比较验证了所开发的材料模型,数学算法和计算工具的充分性和准确性。

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