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Sensing of Damage in Carbon Nanotubes and Carbon Black-Embedded Epoxy Under Tensile Loading

机译:拉伸载荷下碳纳米管和碳黑嵌入式环氧树脂的损伤感知

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摘要

In situ sensing of damage in epoxy embedded separately with carbon nanotubes (CNTs) and carbon black (CB) microparticles is investigated under quasi-static uniaxial tensile loading. Three different weight fractions of CNTs (0.1, 0.3%, and 0.5%) and one-weight fraction of CB (10%) are used to generate a conductive network in epoxy. A modified four circumferential ring probes technique is employed and a constant current was applied through the outer probes. The resulting voltage drop between the inner probes is measured using a high-resolution electrometer-based system to determine the resistance change associated with nonlinear deformation, damage initiation, and growth in the material. As the generated conductive network is different with changing weight fractions Of CNTs, the resulting electrical response was identified to be significantly different between composites. The nonlinear deformation associated with the unfolding of entangled polymer chains and further straightening of them, decreased the distance between neighboring CNTs, resulting in improved electron hopping. For CB-embedded epoxy, a very high percentage increase in resistance is noticed when compared to CNTs case owing to induced microcracks associated with agglomerated CB particles.
机译:在准静态单轴拉伸载荷下研究了分别嵌入碳纳米管(CNTs)和炭黑(CB)微粒的环氧树脂的原位传感。 CNT的三种不同重量分数(0.1%,0.3%和0.5%)和CB的一种重量分数(10%)用于在环氧树脂中生成导电网络。采用改进的四圆周环形探头技术,并通过外部探头施加恒定电流。使用基于高分辨率静电计的系统测量内部探头之间产生的电压降,以确定与非线性变形,损伤引发和材料生长相关的电阻变化。由于所生成的导电网络随CNT的重量分数变化而不同,因此确定复合材料之间产生的电响应显着不同。与缠结的聚合物链解开并进一步伸直有关的非线性变形,减少了相邻CNT之间的距离,从而改善了电子跳跃。对于CB包埋的环氧树脂,由于与团聚的CB颗粒相关的微裂纹,与CNT相比,发现电阻的百分比增加非常高。

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