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Improved strain sensing performance of glass fiber polymer composites with embedded pre-stretched polyvinyl alcohol-carbon nanotube fibers

机译:嵌入预拉伸聚乙烯醇-碳纳米管纤维的玻璃纤维聚合物复合材料的应变传感性能得到改善

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摘要

Polyvinyl alcohol-carbon nanotube (PVA-CNT) fibers differing on their pre-stretching condition were embedded in glass fiber reinforced plastic (GFRP) composites and used as strain sensors for damage monitoring of the composite. Strain sensing of the composite was made by the in situ measurement of the embedded fiber's electrical resistance change during the mechanical tests. Four glass fiber composite plates were manufactured; each one had embedded a different type of produced PVA-CNT fibers. The multi-functional materials were tested in monotonic tensile tests as well as in progressive damage accumulation tests. The electrical resistance readings of the PVA-CNT fibers were correlated with axial strain values, taking into account the induced damage of the composite. It has been demonstrated that increasing the fiber's pre-stretching ratio, its electrical resistance response increases due to higher degree of the CNTs alignment in the PVA matrix. Higher fiber pre-stretching degree enables the better strain monitoring of the composite due to higher measured electrical resistance change values noticed for the same applied axial strain values. To this end, it enables for the better monitoring of the progressive damage accumulation inside the composite.
机译:将预拉伸条件不同的聚乙烯醇-碳纳米管(PVA-CNT)纤维嵌入玻璃纤维增​​强塑料(GFRP)复合材料中,并用作应变传感器以监测复合材料的损伤。通过在机械测试过程中对嵌入纤维的电阻变化进行原位测量,可以对复合材料进行应变检测。制造了四块玻璃纤维复合板。每一种都嵌入了不同类型的生产的PVA-CNT纤维。多功能材料在单调拉伸测试以及渐进式损伤累积测试中进行了测试。考虑到复合材料的诱发损伤,PVA-CNT纤维的电阻读数与轴向应变值相关。已经证明,增加纤维的预拉伸比,由于PVA基体中CNT排列的高度,其电阻响应会增加。较高的纤维预拉伸度可实现更好的复合材料应变监测,这是因为在相同的轴向应变值下,测得的电阻变化值较高。为此,它可以更好地监视复合材料内部的渐进式损伤累积。

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