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Experimental and theoretical study on piezoresistive properties of a structural resin reinforced with carbon nanotubes for strain sensing and damage monitoring

机译:碳纳米管增强结构树脂的压阻特性用于应变传感和损伤监测的实验和理论研究

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摘要

The development of embedded sensors based on a structural thermosetting epoxy resin reinforced with 0.3 wt% of multi-walled (MW) carbon nanotubes (CNTs) for real-time structural health monitoring is presented. The storage modulus of the composites is higher than 2000 MPa in a wide temperature range confirming their reliability as structural parts, especially for aeronautical applications. The piezoresistive properties are studied on specimens subjected to both tension and flexural stresses. The yield strength evaluated with the same approach adopted for metallic materials and alloys compares successfully with the information provided by the electrical characterization. Different levels of damages are revealed by the changes in the piezoresistive properties due to the morphological modifications in the conductive network of CNTs within the resin. The analysis of an empirical law is proposed for predicting the strain-dependence of the electrical and mechanical properties of material when the samples are subjected to stretch-release cycles. The average CNTs interparticle distances as function of bending is also estimated.
机译:提出了基于结构热固性环氧树脂的嵌入式传感器的开发,该结构用0.3 wt%的多壁(MW)碳纳米管(CNT)增强,用于实时结构健康监测。复合材料在很宽的温度范围内的储能模量都高于2000 MPa,这证实了它们作为结构件的可靠性,特别是在航空应用中。在承受拉伸和弯曲应力的样品上研究了压阻特性。用与金属材料和合金相同的方法评估的屈服强度与电特性提供的信息成功进行了比较。由于树脂内CNT导电网络形态的改变,压阻特性的变化揭示了不同程度的损坏。提出了对经验定律的分析,以预测样品经受拉伸-释放循环时材料的电气和机械性能的应变依赖性。还估计了平均碳纳米管颗粒间距离与弯曲的关系。

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