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Transverse Crack Detection in 3D Angle Interlock Glass Fibre Composites Using Acoustic Emission

机译:使用声发射的3D角互锁玻璃纤维复合材料横裂裂纹检测

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In addition to manufacturing cost and production rates, damage resistance has become a major issue for the composites industry. Three-dimensional (3D) woven composites have superior through-thickness properties compared to two-dimensional (2D) laminates, for example, improved impact damage resistance, high interlaminar fracture toughness and reduced notch sensitivity. The performance of 3D woven preforms is dependent on the fabric architecture, which is determined by the binding pattern. For this study, angle interlock (AI) structures with through-thickness binding were manufactured. The AI cracking simulation shows that the transverse component is the one that leads to transverse matrix cracking in the weft yarn under tensile loading. Monitoring of acoustic emission (AE) during mechanical loading is an effective tool in the study of damage processes in glass fiber-reinforced composites. Tests were performed with piezoelectric sensors bonded on a tensile specimen acting as passive receivers of AE signals. An experimental data has been generated which was useful to validate the multi-physics finite element method (MP-FEM), providing insight into the damage behaviour of novel 3D AI glass fibre composites. MP-FEM and experimental data showed that transverse crack generated a predominant flexural mode A0 and also a less energetic extensional mode S0.
机译:除了制造成本和生产率外,损坏抵抗已成为复合材料行业的主要问题。与二维(2D)层压板相比,三维(3D)编织复合材料具有优异的贯穿厚度特性,例如,改善了抗冲击性,高间隙裂缝韧性和缺口敏感性降低。 3D编织预制件的性能取决于织物架构,其由绑定模式确定。对于该研究,制造具有贯穿厚度结合的角度互锁(AI)结构。 AI开裂模拟表明,横向组分是在拉伸载荷下导致纬纱中横向基质破裂的横向组分。机械负载期间声学发射(AE)的监测是玻璃纤维增​​强复合材料损伤过程中的有效工具。用粘合在用作AE信号的被动接收器的拉伸试样上的压电传感器进行测试。已经产生了实验数据,其可用于验证多物理有限元方法(MP-FEM),从而深入了解新型3D AI玻璃纤维复合材料的损伤行为。 MP-FEM和实验数据显示,横向裂纹产生主要的弯曲模式A0,并且还具有较少的能量伸展模式S0。

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