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Equivalent circuit model of converse magnetoelectric effect for the tri-layer magnetoelectric laminates with thermal and stress loadings

机译:具有热和应力载荷的三层磁电层压板的逆磁电效应的等效电路模型

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For the converse magnetoelectric coupling effect of the piezoelectric/magnetostrictive/piezoelectric tri-layer symmetric magnetoelectric laminates, based on the nonlinear thermo-magneto-mechanical constitutive equations of the giant magnetostrictive materials and the thermo-electro-mechanical constitutive equations of the piezoelectric materials, according to Newton’s second law and the magnetic circuit theorem, an equivalent circuit is established. Then an expression of the converse magnetoelectric coefficient describing nonlinear thermo-magneto-electro-mechanical coupling is established. The curve of the nonlinear converse magnetoelectric coefficient versus the bias magnetic field, is predicted effectively by the expression, and the predictions are in good agreement with the experimental result both qualitatively and quantitatively. Furthermore, the model can predict the complex influences of the bias magnetic field, the stress and the ambient temperature on the converse magnetoelectric coefficient. It can be found from these predictions that the converse magnetoelectric coefficient decreases with the increasing temperature and increases with the increasing tensile stress. Under the common effect of the ambient temperature and the stress, it is also found that the converse magnetoelectric coefficient changes sharply with the ambient temperature when the tensile stress is applied on the laminates, but it has a good stability of temperature when a large compressive stress is applied. Therefore, this work contributes to the researches on the giant converse magnetoelectric coefficient and the designs of magnetoelectric devices based on the converse magnetoelectric coupling.
机译:对于压电/磁致伸缩/压电三层对称磁电层压板的逆磁电耦合效应,基于巨型磁致伸缩材料的非线性热磁机械本构方程和压电材料的热电机械本构方程,根据牛顿第二定律和磁路定理,建立了等效电路。然后建立了逆磁电系数的表达式,描述了非线性的热-磁-电-机械耦合。通过该表达式可以有效地预测非线性逆磁电系数与偏磁场的关系曲线,其定性和定量结果与实验结果吻合良好。此外,该模型可以预测偏置磁场,应力和环境温度对逆磁电系数的复杂影响。从这些预测可以发现,逆磁电系数随着温度的升高而降低,而随着拉伸应力的升高而升高。还发现在环境温度和应力共同作用下,当在层压板上施加张应力时,逆磁电系数会随环境温度急剧变化,而在较大的压应力下,其磁稳定性良好。被申请;被应用。因此,这项工作有助于研究巨大的逆磁电系数和基于逆磁电耦合的磁电器件的设计。

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