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首页> 外文期刊>Composites. B, Engineering >Tension, compression, and shear behavior of advanced sheet molding compound (A-SMC): Multi-scale damage analysis and strain rate effect
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Tension, compression, and shear behavior of advanced sheet molding compound (A-SMC): Multi-scale damage analysis and strain rate effect

机译:先进的片状成型化合物(A-SMC)的张力,压缩和剪切行为:多尺度损伤分析和应变率效应

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摘要

Advanced sheet molding compounds (A-SMC) are a new generation of alternative materials to steels for applying in automotive structures. It contains a thermoset matrix involving mineral charge (CaCO3) reinforced with a high fraction of discontinuous bundles of glass fibers (around 50% in mass) compared to the other types of SMC composites. The crashworthiness evaluation and multi-scale mechanical characterizations of this automotive material is essential. In this study, at first, the microstructure of A-SMC composite was investigated by Scanning Electron Microscopy (SEM), ultrasonic analysis, and X-ray micro-tomography. Two configurations' plates of Randomly Oriented (RO) and Highly Oriented (HO) were analyzed under quasi-static tension, compression, and shear loadings. To study the effect of fiber orientation, for HO plate, two fiber directions were chosen: HO0 degrees (parallel to the Mold Flow Direction (MFD)) and HO-90 degrees (perpendicular to the MFD). Strain rate effect (from 0.25 s-1 to 10 s-1) on shear properties and visco-damage behavior of A-SMC composite has been studied. For this purpose, a new setup for shear testing was designed after optimization via ABAQUS FE code to achieve constant strain rate. HO-0 degrees samples represented higher strength in tension and compression loadings, unlike shear loading compared to RO and HO-90 degrees samples. A multi-scale damage study confirmed that predominant damage mechanism is decohesion at fiber/matrix interface under tension, compression, and shear loadings.
机译:先进的片状成型化合物(A-SMC)是用于钢材施加汽车结构的钢材的新一代替代材料。它含有涉及矿物电荷(Caco3)的热固性基质,其与其他类型的SMC复合材料相比,在与其他类型的SMC复合材料相比,通过高分性的玻璃纤维(大约50%)。这种汽车材料的耐火性评估和多尺度机械表征至关重要。在本研究中,首先,通过扫描电子显微镜(SEM),超声波分析和X射线微型层析术来研究A-SMC复合物的微观结构。在准静态张力,压缩和剪切载荷下分析了两种随机定向(RO)和高度定向(HO)的配置。为了研究纤维取向的影响,对于HO板,选择两个纤维方向:HO0度(与模具流动方向(MFD)平行)和HO-90度(垂直于MFD)。研究了应变率效应(从0.25S-1至10 s-1)进行了A-SMC复合材料的剪切性能和粘损伤。为此目的,通过ABAQUS FE代码优化后设计了一种用于剪切测试的新设置,以实现恒定的应变速率。 HO-0度样本在与RO和HO-90度样本相比,张力和压缩载荷的张力和压缩负载中的强度表示更高的强度。多尺度损伤研究证实,在张力,压缩和剪切载荷下的纤维/矩阵界面处的纤维/矩阵界面处于解粘性。

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