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Magnetic and magnetostrictive properties in heat-treated Fe-Co wire for smart material/ device

机译:用于智能材料/设备的热处理Fe-Co线的磁和磁致伸缩性能

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The use of inverse magnetostriction effect is a possible approach for the applications of actuator, sensor and energy harvester. A strong textured Fe_(100-x )Co_(x) (x = 70 mol%) magnetostrictive alloys have been studies as a new smart material. The design of microstructure plays important roles in performance enhancement of power generation by heat-treatment at several temperatures from 420℃ to 850℃. Experimentally, the effect of heat-treatment on their microstructures was evaluated by laser microscope and X-ray diffraction and orientation analysis. Furthermore, the magnetic, magnetostrictive and electric power generation characteristics were investigated by vibrating sample magnetometer (VSM), single-axis strain gauge and drop impact test, respectively. These results indicated the lattice strain in the crystal grain was related to the coercivity resulting from the domain wall mobility in the materials. Moreover, the orientation aligned by the drawing process was related to the magnetostriction. Also, the large grain width, that is, low grain boundary density was strongly attributed to enhance the magnetostrictive susceptibility. The output power calculated from the output waveform was reached up to 91 mJ/s for 820℃-WQ (water quenching) resulting from the high magnetostrictive susceptibility as well as the quenching effect from the temperature near the (bcc + fcc)/bcc interface. These results indicated that it is important to control not only the annealing conditions for improving magnetostrictive susceptibility but also the control of residual stress or grain boundary density for developing higher performance of output characteristics.
机译:反向磁致伸缩效应的应用是执行器,传感器和能量收集器应用的一种可能方法。已经研究了一种强织构化的Fe_(100-x)Co_(x)(x = 70mol%)磁致伸缩合金,作为一种新的智能材料。在420℃至850℃的多个温度下进行热处理,微结构的设计在提高发电性能方面起着重要作用。实验上,通过激光显微镜,X射线衍射和取向分析评估了热处理对其微观结构的影响。此外,分别通过振动样品磁力计(VSM),单轴应变仪和跌落冲击试验研究了磁,磁致伸缩和发电特性。这些结果表明,晶粒中的晶格应变与材料中畴壁迁移率引起的矫顽力有关。而且,通过拉伸过程对准的取向与磁致伸缩有关。另外,大的晶粒宽度,即低的晶界密度被强烈地归因于增强了磁致伸缩磁化率。高磁致伸缩磁化率以及(bcc + fcc)/ bcc界面附近的温度产生的淬灭效应导致820℃-WQ(水淬)从输出波形计算得出的输出功率达到91 mJ / s 。这些结果表明,不仅控制退火条件以改善磁致伸缩磁化率,而且控制残余应力或晶界密度对于提高输出特性的性能也很重要。

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