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Smart Self-Sensing Composite: Piezoelectric and Magnetostrictive FEA Modeling and Experimental Characterization Using Wireless Detection Systems

机译:智能自感复合材料:使用无线检测系统的压电和磁致伸缩FEA建模和实验性格

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摘要

This research work focuses on the development of a piezoelectric magnetostrictive smart composite with advanced sensing capability. The composite piezoelectric property is achieved from the dispersion of single-walled carbon nanotubes (SWCNTs) and the magnetostrictive property from Terfenol-D nanoparticles. Finite element analysis (FEA) is used to examine the feasibility of modelling the piezoelectric (change in electric field) and magnetostrictive (change in magnetic field) self-sensing responses in the presence of applied stress. The numerical work was coupled with a series of mechanical tests to characterize the piezoelectric response, magnetostriction response and mechanical strength. Tensile tests of the composite samples manufactured as is (virgin), samples with SWCNTs, samples with Terfenol-D nanoparticles and samples with both SWCNTs and Terfenol-D nanoparticles were conducted. It was observed that an increase in volume fraction of Terfenol-d nanoparticles increases the change in magnetization, therefore increasing voltage response up to the point of saturation. The optimum change in amplitude was observed with 0.35% volume fraction of Terfenol-D nanoparticles. A constant ratio of SWCNTs was maintained, and maximum change in electrical resistance was at 7.4%. Fracture toughness for the samples with all nanoparticles was explored, and the results showed improved resistance to crack propagation.
机译:该研究工作侧重于具有先进传感能力的压电磁致伸缩智能复合材料的开发。复合压电性能由单壁碳纳米管(SWCNTS)的分散和来自三苯酚-D纳米颗粒的磁致伸缩性能实现的。有限元分析(FEA)用于检查在施加应力存在下建模压电(电场变化)和磁场的变化(磁场变化)的可行性。数值工作与一系列机械测试耦合,以表征压电响应,磁致伸缩响应和机械强度。进行了如(处女)制造的复合样品的拉伸试验,用SWCNTS样品,用萜卷-D纳米粒子和具有SWCNT和Terfenol-D纳米粒子的样品进行样品。观察到,三烯酚-D纳米粒子的体积分数的增加增加了磁化的变化,从而增加了达到饱和点的电压响应。用0.35%的三苯酚-D纳米粒子的体积分数观察到振幅的最佳变化。保持SWCNT的恒定比率,电阻的最大变化为7.4%。探讨了所有纳米颗粒的样品的断裂韧性,结果表明抗裂纹繁殖的抗性改善。

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