磁致伸缩
材料科学
执行机构
磁场
声学
弯曲
电磁线圈
变形(气象学)
逆磁致伸缩效应
磁路
电磁铁
同轴
激发
磁致伸缩材料
焦耳加热
机械
有限元法
非线性系统
传感器
撕裂
度量(数据仓库)
复合材料
电阻式触摸屏
结构工程
电阻抗
常量(计算机编程)
静磁学
电流
核磁共振
作者
Saeed Ansari,Mohammad Reza Karafi
标识
DOI:10.1038/s41598-025-11582-x
摘要
In this paper, an analytical model of a new bulk magnetostrictive actuator in three modes-longitudinal, bending, and torsional-are examined. The magnetostrictive material considered is a cylindrical vanadium permendur. This actuator is capable of operating in the mentioned modes both independently and in combination. Three constant magnetic fields are used to actuate the device in axial, bending, and torsional modes, and the calculation of each magnetostrictive coefficient dij is performed by considering all magnetic fields. The longitudinal deformation is applied through the Joule effect by stimulating the magnetostrictive material with a coaxial coil surrounding the material. The torsional mode is implemented via the Wiedeman effect by passing an electric current through a wire inside the magnetostrictive material. For the bending mode, the stimulation is achieved by applying a magnetic field on a surface of the material using a magnetic coupler. The actuator modeling is conducted using classical magnetostrictive equations, and the magnetostriction coefficients are modified for the excitation magnetic fields. Experimental tests are conducted to measure the coefficients. Ultimately, the magnetostrictive deformations in three modes are precisely refined and presented using nonlinear regression relationships.
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