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首页> 外文期刊>Composites >Investigation of the effect of stacking sequence on low velocity impact response and damage formation in hybrid composite pipes under internal pressure. A comparative study
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Investigation of the effect of stacking sequence on low velocity impact response and damage formation in hybrid composite pipes under internal pressure. A comparative study

机译:内部压力下杂交复合管低速冲击响应与损伤形成堆叠序列的影响。比较研究

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摘要

Filament wound hybrid composite pipes can expose to impact loading from various causes during their service life which can cause an invisible level of damage. Thus, revealing the effect of impact damage gains great importance to design hybrid composite pipes with enhanced damage tolerance. Based on this motivation, the low velocity impact (LVI) response of carbon/glass hybrid filament wound composite pipes has been studied. Hybrid pipes were produced with the winding angle of +/- 55 degrees by using glass and carbon fiber layers in various stacking sequences by filament winding method. The stacking sequence configurations were set as Carbon/Glass/Glass (CGG), Glass/Carbon/Glass (GCG) and Glass/Glass/Carbon (GGC). Before generating impact damage, an internal pressure of 32 bar was applied to the hybrid pipes in accordance with ANSI/AWWA C950 standard and pre-stress was generated in the pipes. Following, the hybrid pipes subjected to internal pressure were subjected to low velocity impact tests at energy levels of 5, 10, 15 and 20 J. The variation of contact force versus time, contact force versus displacement and energy versus time were obtained. After the testing, the effects of stacking sequence upon damage formation and damage progression under LVI loading have been evaluated based on the obtained data and microscopic analysis. It has been found that the damage formation such as matrix cracking on outer/inner surfaces, radial cracks, delamination, transfer cracks, splitting and leakage can take place. Moreover, the hybrid pipes with CGG stacking represents higher impact resistance while the GCG stacking has a better response of damage formation since this stacking does not show leakage damage.
机译:长丝缠绕杂交复合管道可以在其使用寿命期间从各种原因中露出冲击载荷,这可能导致无形的损坏水平。因此,揭示了冲击损伤的效果极为重视设计具有增强损坏耐受性的混合复合管。基于这种动机,研究了碳/玻璃混合丝缠绕复合管的低速冲击(LVI)响应。通过丝缠绕方法在各种堆叠序列中使用玻璃和碳纤维层,通过玻璃和碳纤维层产生杂交管。堆叠序列配置设定为碳/玻璃/玻璃(CGG),玻璃/碳/玻璃(GCG)和玻璃/玻璃/碳(GGC)。在产生冲击损伤之前,根据ANSI / AWWA C950标准将32巴的内部压力施加到混合管上,并在管道中产生预应力。如下,对内部压力进行内部压力的杂合管在能量水平5,10,15和20 J的低速冲击试验。接触力与时间的变化,接触力与位移和能量与时间相比。在测试之后,已经基于所获得的数据和微观分析评估了LVI负载下的堆叠序列对损伤形成和损伤进展的影响。已经发现,外部/内表面上的矩阵裂解如矩阵裂缝,径向裂缝,分层,转移裂缝,分裂和泄漏等损伤形成。此外,具有CGG堆叠的混合管道表示更高的抗冲击性,而GCG堆叠具有更好的损坏形成响应,因为该堆叠不显示泄漏损坏。

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