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Anisotropy of conductivity in carbon fiber-reinforced plastics with continuous fibers

机译:连续纤维碳纤维增强塑料中电导率的各向异性

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Carbon fiber-reinforced plastics (CFRP), as high strength advanced materials are often used as media for embedding sensors and actuators. Due to the properties of components and processing conditions they are electrically anisotropic, with coefficient of anisotropy sometimes exceeding several thousands. This may prevent elimination of static electricity and cause erosion of material due to micro discharges at contacts with fastenings and embedded sensors and actuators, causing their malfunction. For this reason, the investigation of electrical properties of CFRP may provide the solution to this problem. Distribution of electric current field in CFRP and related with it possible errors in measurements of longitudinal conductivity and anisotropy are analyzed. CFRP have been prepared from PAN or cellulose fibers with different heat treatment temperatures and conductivity anisotropy was measured as a function of filler volume fraction and processing conditions. With increasing loading coefficient of anisotropy $alpha decreases. Lower values of $alpha were observed when curing agents containing ionic complexes of metals were used. Modifications of fiber surface with hydrophobic agents results in increased anisotropy. Composites prepared with carbon fabrics are isotropic in the fabric plane. Coefficient of anisotropy decreases with increasing molding pressure and depends on the type of weaving of fabric. In hybrid composites with alternating layers of carbon fabric and complex fiber fabric anisotropy is higher due to partial decomposition of conducting layer on top of complex fibers. A method for reducing anisotropy by introducing conducting `jumpers', shorting individual fibers or layers of fabric is proposed. The change of anisotropy in the process of fabrication of carbon-carbon composite by passing electric current through fibers has been investigated. In conclusion, alternative uses of CFRP with reduced anisotropy for contact elements of electric current through fibers has been investigated. In conclusion, alternative uses of CFRP with reduced anisotropy for contact elements of electric machines and geological prospecting as imitations of rocks are discussed.
机译:碳纤维增强塑料(CFRP),高强度先进材料通常用作嵌入传感器和执行器的介质。由于它们是电向各向异性的组分和加工条件的性质,各向异性系数有时超过几千次。这可能会防止消除静电,并导致材料侵蚀由于带有紧固件和嵌入式传感器和致动器的微量排放,导致它们的故障。因此,CFRP的电性能的研究可以提供解决这个问题的解决方案。分析了CFRP中电流场的分布,并分析了纵向导电性和各向异性测量中的可能误差。 CFRP已经由PAN或纤维素纤维制备,具有不同的热处理温度,并测量导电各向异性作为填料体积分数和加工条件的函数。随着增加的各向异性加载系数$ alpha减少。当使用含有金属离子络合物的固化剂时,观察到较低的$α值。用疏水剂的纤维表面改性导致各向异性增加。用碳织物制备的复合材料在织物平面中是各向同性的。各向异性系数随着模塑压力的增加而降低,取决于织物的编织类型。在具有交替的碳织物层和复杂的纤维织物各向异性层的杂化复合材料由于在复合纤维顶部的导电层的部分分解而较高。提出了一种通过引入导电`跳转器而减少各向异性的方法,缩短单独的纤维或织物层。研究了通过通过纤维通过电流制备碳 - 碳复合材料过程中各向异性的变化。最后,研究了CFRP通过纤维的电流接触元件的各向异性降低的替代用途。最后,讨论了CFRP的替代用途,随着电机的接触元件和地质勘探的接触元件,作为岩石的模仿。

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