首页> 外文期刊>Journal of Thermoplastic Composite Materials >Static and Low-Velocity Impact Response Characteristics of Pultruded Hybrid Glass-Graphite/Epoxy Composite Beams
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Static and Low-Velocity Impact Response Characteristics of Pultruded Hybrid Glass-Graphite/Epoxy Composite Beams

机译:拉挤玻璃-石墨/环氧树脂混合梁的静态和低速冲击响应特性

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The influence of hybridzation on the crashworthiness and energy-absorption characteristics of pultruded glass-graphite/epoxy composite beams was investigated. Lowvelocity drop weight instrumented impact tests were conducted on these hybrid composites to determine the load-deformation behavior for evaluating the impact performance in terms of the ductility index, damage initiation, propagation, and total absorbed energies. Three-point static flexural tests were also conducted to compare the static load-deformation characteristics with those of the drynamic low-velocity impact tests. The behavior under both static and dynamic loading conditions was simulated using finite element modeling procedures to identify the failure mechanisms for optimizing the performance of pultruded hybrid composites. Experimental results show that the load and strain the failure of all-graphite/epoxy, allglass/epoxy and other hybrid co9mposites obtained from impact tests are significantly higher as compared to the static test data. The load-bearing capability of composites after damage initiation (which is dictated by the ductility and failure index) has shown marked improvement for the graphite-outside hybrids when compared with the all-graphite, all-glass, and glass-outside hybrids. The high strain to failure glass fibers absorb considerably higher energy before ultimate failure compared to the brittle graphite fiber; as a result, the fiber content and geometric placement of each type of fiber significantly influenced the energy-absorption characteristics of hybrids. Results indicate that the energy-absorption behavior of pultruded hybrids predicted using finite element modeling is in close agreement with the behavior characterized from experimental impact tests. The effectiveness of hybridization to improve the impact performance of composites was demonstrated.
机译:研究了混杂对拉挤玻璃-石墨/环氧复合梁的耐撞性和能量吸收特性的影响。在这些杂化复合材料上进行了低速落锤仪器化冲击试验,以确定载荷-变形行为,以便根据延性指数,破坏的起因,扩散和总吸收能来评估冲击性能。还进行了三点静态弯曲试验,以比较静载荷变形特性与干式低速冲击试验的静态载荷变形特性。使用有限元建模程序模拟了在静态和动态载荷条件下的行为,以识别破坏机制,以优化拉挤杂化复合材料的性能。实验结果表明,与静态测试数据相比,冲击试验获得的全石墨/环氧树脂,全玻璃/环氧树脂和其他杂化复合材料的载荷和应变破坏显着更高。与全石墨,全玻璃和玻璃外混合材料相比,石墨外混合材料的损伤开始后复合材料的承载能力(由延展性和破坏指数决定)已得到显着改善。与脆性石墨纤维相比,高破坏应变玻璃纤维在最终破坏之前吸收了更高的能量。结果,每种纤维的纤维含量和几何位置显着影响了杂种的能量吸收特性。结果表明,使用有限元建模预测的拉挤杂化材料的能量吸收行为与实验冲击试验表征的行为非常吻合。证明了杂交改善复合材料冲击性能的有效性。

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