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Time-dependent uniaxial piezoresistive behavior of high-density polyethylene/short carbon fiber conductive composites

机译:高密度聚乙烯/短碳纤维导电复合材料的时变单轴压阻特性

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摘要

Short carbon fiber (SCF) filled high-density polyethylene conductive composites were studied in terms of time-dependent piezoresistive behaviors. The time-dependent change of resistance under constant stress or strain was found to be the succession of the previous pressure-dependent piezoresistance. Depending on the filler volume fraction and the level of the constant stress or strain, resistance creep and resistance relaxation with different directions were observed. An empirical expression similar to the Burgers equation could be applied to fit the data for both the resistance creep and the resistance relaxation. The fitted relaxation time as a function of pressure showed that there exist two competing processes controlling the piezoresistive behavior and its time dependence. Mechanical creep and stress relaxation of the composites were also studied, and a comparison with the time-dependent resistance implied that there is a conducting percolation network attributed to the physical contacts between SCF and a mechanical network formed by the molecular entanglement or physical crosslinking of the polymer matrix and the interaction between the filler and the matrix. It is believed that the two networks dominate the electrical and the mechanical behaviors, respectively.
机译:根据时间相关的压阻行为,研究了短碳纤维(SCF)填充的高密度聚乙烯导电复合材料。发现在恒定应力或应变下电阻随时间的变化是先前压力相关压阻的继承。根据填料的体积分数和恒定应力或应变的水平,观察到不同方向的电阻蠕变和电阻松弛。可以应用类似于Burgers方程的经验表达式来拟合电阻蠕变和电阻松弛的数据。拟合的松弛时间随压力的变化表明存在两个相互竞争的过程来控制压阻行为及其时间依赖性。还研究了复合材料的机械蠕变和应力松弛,并与时变电阻进行了比较,这表明存在一个导电渗流网络,这归因于SCF与由分子的缠结或物理交联形成的机械网络之间的物理接触。聚合物基质以及填料与基质之间的相互作用。可以相信,这两个网络分别支配了电气和机械性能。

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