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Fabrication of Fe–Co Magnetostrictive Fiber Reinforced Plastic Composites and Their Sensor Performance Evaluation

机译:Fe-Co磁致伸缩纤维增强塑料复合材料的制备及其传感器性能评估

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摘要

The inverse magnetostrictive effect is an effective property for energy harvesting; the material needs to have large magnetostriction and ease of mass production. Fe–Co alloys being magnetostrictive materials have favorable characteristics which are high strength, ductility, and excellent workability, allowing easy fabrication of Fe–Co alloy fibers. In this study, we fabricated magnetostrictive polymer composites, in which Fe–Co fibers were woven into polyester fabric, and discussed their sensor performance. Compression and bending tests were carried out to measure the magnetic flux density change, and the effects of magnetization, bias magnetic field, and the location of the fibers on the performance were discussed. It was shown that magnetic flux density change due to compression and bending is related to the magnetization of the Fe–Co fiber and the bias magnetic field. The magnetic flux density change of Fe–Co fiber reinforced plastics was larger than that of the plastics with Terfenol-D particles.
机译:逆磁致伸缩效应是能量收集的有效特性。该材料需要具有大的磁致伸缩性并且易于批量生产。 Fe-Co合金作为磁致伸缩材料具有良好的特性,即高强度,延展性和出色的可加工性,可轻松制造Fe-Co合金纤维。在这项研究中,我们制造了磁致伸缩聚合物复合材料,其中将Fe-Co纤维编织到聚酯织物中,并讨论了它们的传感器性能。进行压缩和弯曲测试以测量磁通密度的变化,并讨论了磁化强度,偏磁场和纤维位置对性能的影响。结果表明,由于压缩和弯曲引起的磁通密度变化与Fe-Co纤维的磁化强度和偏磁场有关。 Fe-Co纤维增强塑料的磁通密度变化大于带有Terfenol-D颗粒的塑料的磁通密度变化。

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