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首页> 外文期刊>Arabian Journal for Science and Engineering. Section A, Sciences >Investigations of Strain Rate Effects on the Mechanical Properties of Hybrid Composite Laminate Under Varying Temperatures
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Investigations of Strain Rate Effects on the Mechanical Properties of Hybrid Composite Laminate Under Varying Temperatures

机译:在不同温度下对杂化复合层压板的力学性能的研究

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The mechanical behavior of hybrid composite laminates under varying strain rates and temperatures was investigated in this study. The hybrid composite laminate is constituted as a sequential stacking sequence of plain-woven carbon-fiber-reinforced epoxy (CFRE) and plain-woven glass-fiber-reinforced epoxy (GFRE) laminates. Vacuum-assisted resin transfer molding (VARTM) process was used to fabricate the composite laminates. Hybrid composite laminates (HCGFRE) were tested under four different strain rates (0.05 min~(−1), 0.5min~(−1), 2.5min~(−1), 5 min~(−1)) and three different temperatures (RT, 60 °C, 100 °C). Microstructure analysis was performed to observe the voids, fiber delamination and matrix failure occurring in the composite laminate. In numerical analyses, continuum damage mechanics material model (MAT 58) was utilized in LS-DYNA® explicit finite element program to simulate themechanical properties of CFRE, GFRE and HCGFRE laminates. It was determined that the tensile strength of all composite laminates is increasing by increasing the strain rates in all temperatures. The continuous damage mechanics material model (MAT 58) was found to be suitable for simulating woven composite laminate under different strain rates and temperatures. In microstructural study, it was not observed significant changes in the microstructure of composite laminates by changing strain rates.
机译:研究了该研究的杂化复合层压板的机械性能和温度和温度下的机械特性。杂化复合层压材料由纯织物碳纤维增强环氧树脂(CFRE)和纯编织玻璃 - 纤维增强环氧树脂(GFRE)层叠序列的连续堆叠序列构成。真空辅助树脂转移成型(Vartm)工艺用于制造复合层压板。在四种不同的应变速率下进行杂化复合层压材料(HCGFRE)(0.05分钟〜(-1),0.5min〜(-1),2.5min〜(-1),5分钟〜(-1))和三种不同的温度(RT,60°C,100°C)。进行微观结构分析以观察复合层压板中发生的空隙,纤维分层和基质衰竭。在数值分析中,在LS-DYNA®显式有限元件中使用连续损伤力学材料模型(MAT 58),以模拟CFRE,GFRE和HCGFRE层压板的机械性质。确定所有复合层压板的拉伸强度通过增加所有温度中的应变率而增加。发现连续损伤力学材料模型(垫58)适用于在不同应变速率和温度下模拟编织复合层压板。在微观结构研究中,未观察到通过改变应变率的复合层压板微观结构的显着变化。

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