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首页> 外文期刊>Journal of thermal stresses >Evolutions of stress and microstructure in multilayer ferroelectric actuators under different temperature environments
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Evolutions of stress and microstructure in multilayer ferroelectric actuators under different temperature environments

机译:不同温度环境下多层铁电致动器的应力和微观结构演变

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摘要

The multilayer ferroelectric actuator (MFA) with electrodes is an important smart structure and it has found wide application in engineering. Under the applied electric-elastic loads, the local stress concentration will be intensified near the tips of electrodes, and it finally may lead to the failure of the MFA. On the other hand, the temperature-dependent behavior of ferroelectrics results in the novel evolutions of local stresses and microstructure in the MFA under different temperature environments. In this work, the different temperature induced nonlinear behavior and electroelastic field concentration around the electrode tip in the MFA is studied based on a phase -field approach containing the time-dependent Ginzburg-Landau equation. Using three-dimensional nonlinear finite element method, the temperature-induced domain switching behavior of the MFA and the evolution of the local stress near the electrode tips are simulated under different loadings and temperatures. It is found that the maximum tensile stress ahead of the electrode tip increases as the temperature increases from room temperature to a critical temperature. However, over the critical temperature, the stress decreases significantly due to the ferroelectric-paraelectric phase transition, which implies that by optimizing the environmental temperature, the local stress concentrations can be controlled.
机译:带电极的多层铁电致动器(MFA)是重要的智能结构,已在工程中得到广泛应用。在施加电弹性载荷的情况下,电极尖端附近的局部应力集中会加剧,最终可能导致MFA失效。另一方面,铁电体的温度依赖性行为导致在不同温度环境下MFA中局部应力和微观结构的新颖演变。在这项工作中,基于包含时间相关的Ginzburg-Landau方程的相场方法,研究了MFA中不同温度引起的非线性行为和电极尖端周围的电弹性场浓度。使用三维非线性有限元方法,在不同的载荷和温度下,模拟了MFA的温度感应域切换行为和电极尖端附近的局部应力演变。已经发现,随着温度从室温升高到临界温度,电极尖端前面的最大拉应力增加。但是,在临界温度之上,由于铁电-顺电相变,应力显着降低,这意味着通过优化环境温度,可以控制局部应力集中。

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