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Enhancement of the Electrical Conductivity and Interlaminar Shear Strength of CNT/GFRP Hierarchical Composite Using an Electrophoretic Deposition Technique

机译:电泳沉积技术增强CNT / GFRP多层复合材料的电导率和层间剪切强度

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摘要

In this work, an electrophoretic deposition (EPD) technique has been used for deposition of carbon nanotubes (CNTs) on the surface of glass fiber textures (GTs) to increase the volume conductivity and the interlaminar shear strength (ILSS) of CNT/glass fiber-reinforced polymers (GFRPs) composites. Comprehensive experimental studies have been conducted to establish the influence of electric field strength, CNT concentration in EPD suspension, surface quality of GTs, and process duration on the quality of deposited CNT layers. CNT deposition increased remarkably when the surface of glass fibers was treated with coupling agents. Deposition of CNTs was optimized by measuring CNT’s deposition mass and process current density diagrams. The effect of optimum field strength on CNT deposition mass is around 8.5 times, and the effect of optimum suspension concentration on deposition rate is around 5.5 times. In the optimum experimental setting, the current density values of EPD were bounded between 0.5 and 1 mA/cm2. Based on the cumulative deposition diagram, it was found that the first three minutes of EPD is the effective deposition time. Applying optimized EPD in composite fabrication of treated GTs caused a drastic improvement on the order of 108 times in the volume conductivity of the nanocomposite laminate in comparison with simple GTs specimens. Optimized CNT deposition also enhanced the ILSS of hierarchical nanocomposites by 42%.
机译:在这项工作中,电泳沉积(EPD)技术已用于将碳纳米管(CNT)沉积在玻璃纤维织构(GTs)的表面上,以增加CNT /玻璃纤维的体积电导率和层间剪切强度(ILSS)增强聚合物(GFRP)复合材料。已经进行了全面的实验研究,以建立电场强度,EPD悬浮液中的CNT浓度,GT的表面质量以及工艺持续时间对沉积的CNT层质量的影响。当用偶联剂处理玻璃纤维的表面时,CNT沉积显着增加。通过测量CNT的沉积质量和工艺电流密度图来优化CNT的沉积。最佳场强对CNT沉积质量的影响约为8.5倍,最佳悬浮液浓度对沉积速率的影响约为5.5倍。在最佳实验设置下,EPD的电流密度值限制在0.5和1 mA / cm 2 之间。根据累积沉积图,发现EPD的前三分钟是有效沉积时间。与简单的GTs样品相比,在经过处理的GTs的复合材料制造中应用优化的EPD可以使纳米复合材料层压板的体积电导率大幅提高10 sup> 8 倍。优化的CNT沉积还将分层纳米复合材料的ILSS提升了42%。

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