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首页> 外文期刊>International Journal of Solids and Structures >Static and dynamic analytical coupled field analysis of piezoelectric flexoelectric nanobeams: A strain gradient theory approach
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Static and dynamic analytical coupled field analysis of piezoelectric flexoelectric nanobeams: A strain gradient theory approach

机译:压电柔性隆起纳米辐射静态和动态分析耦合场分析:一种应变梯度理论方法

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Piezoelectric and flexoelectric nanostructures attracted great interest from different research communities for their potential applications as sensors, actuators and energy harvesters. Nevertheless, modeling and analysis of such structures are still under investigation. In fact, strain gradient effects are expected to be nonnegligible at the nanoscale level where they induce substantial variations on the static and dynamic responses of the nanostructure, especially when coupled field behavior are present. Therefore, flexoelectricity which refers to the electromechanical coupling between electrical polarization and mechanical strain gradient, is expected to be dominant at the nanoscale. In this paper, the main focus is to analyze analytically the static and dynamic responses of nanobeams, having different boundary conditions and electrical loads, where gradient elasticity, piezoelectricity and flexoelectricity are taken into account. We develop a complete mathematical model using Hamilton's principle. The derived governing electromechanical coupled equations and corresponding boundary conditions are solved using a Galerkin procedure based on an assumed mode approach. The principal electromechanical outputs are calculated analytically for actuation and energy harvesting configurations. Bidirectional polarization, electric field and elastic strain gradient effect are taken into account in the developed model. Validation and comparison with previously published results showed that considerable decrease of the performance could be observed because of the introduction of the elastic strain gradient effect. The performance degradation is also more pronounced if the aspect ratio is reduced. (C) 2017 Elsevier Ltd. All rights reserved.
机译:压电和柔性纳米结构吸引了不同研究社区的潜在应用,作为传感器,执行器和能量收割机的潜在应用。然而,仍在调查这些结构的建模和分析。事实上,预期应变梯度效应是非在纳米级水平的纳米级级别,其中它们诱导纳米结构的静态和动态响应的大量变化,特别是当存在耦合场行为时。因此,预期在纳米级占据电极化和机械应变梯度之间的机电耦合的柔性电性。在本文中,主要焦点是分析纳米米的静态和动态响应,具有不同的边界条件和电负载,其中考虑了梯度弹性,压电和柔性电性。我们使用汉密尔顿原则开发完整的数学模型。使用基于假设的模式方法,使用Galerkin过程解决了导出的机电耦合方程和相应的边界条件。主要机电输出分析用于致动和能量收集配置。在开发模型中考虑了双向极化,电场和弹性应变梯度效果。与先前公布的结果的验证和比较表明,由于引入弹性应变梯度效果,可以观察到显着降低。如果宽高比减小,则性能下降也更明显。 (c)2017 Elsevier Ltd.保留所有权利。

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