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Three-dimensional finite element simulations of ferroelectric polycrystals under electrical and mechanical loading

机译:电动和机械载荷下铁电多晶的三维有限元模拟

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摘要

Complex, non-linear, irreversible, hysteretic behavior of polycrystalline ferroelectric materials under a combined electromechanical loading is a result of domain wall motion, causing simultaneous expansion and contraction of unlike domains, grain sub-divisions that have distinct spontaneous polarization and strain. In this paper, a 3-dimensional finite element method is used to simulate such a polycrystalline ferroelectric under electrical and mechanical loading. A constitutive law due to Huber et al. [1999. A constitutive model for ferroelectric polycrystals. J. Mech. Phys. Solids 47, 1663-1697] for switching by domain wall motion in multidomain ferroelectric single crystals is employed in our model to represent each grain, and the finite element method is used to solve the governing conditions of mechanical equilibrium and Gauss's law. The results provide the average behavior for the polycrystalline ceramic. We compare the outcomes predicted by this model with the available experimental data for various electromechanical loading conditions. The qualitative features of ferroelectric switching are predicted well, including hysteresis and butterfly loops, the effect on them of mechanical compression, and the response of the polycrystal to non-proportional electrical loading.
机译:多晶铁电材料在组合的机电负载下的复杂,非线性,不可逆的磁滞行为是畴壁运动的结果,导致具有不同自发极化和应变的不同畴,晶粒细分的同时膨胀和收缩。在本文中,使用三维有限元方法来模拟这种多晶铁电体在电气和机械载荷下的情况。本构法归因于Huber等人。 [1999。铁电多晶体的本构模型。 J.机甲物理在我们的模型中,采用多畴铁电单晶中通过畴壁运动进行切换的固体47,1663-1697]来表示每个晶粒,并使用有限元方法来求解机械平衡和高斯定律的控制条件。结果提供了多晶陶瓷的平均性能。我们将这种模型预测的结果与各种机电负载条件下的可用实验数据进行比较。铁电开关的定性特征得到了很好的预测,包括磁滞和蝶形环,机械压缩对其的影响以及多晶对非比例电负载的响应。

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