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Size-dependent thermo-electromechanical responses analysis of multi-layered piezoelectric nanoplates for vibration control

机译:多层压电纳米振动控制的尺寸依赖性热机电响应分析

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Multi-layered piezoelectric nanostructures stand as one the most promising candidates for smart nanodevices and nanocomposites which are widely used as sensors and actuators in nano-electromechanical systems due to their excellent performances in fabrication, design and energy conversion (i.e. electrical and mechanical energy). The inherent nano-sized piezoelectricity properties (e.g. enhanced piezoelectric effect and novel electrical/chemical/physical properties) enable them to be regarded as the next-generation piezoelectric materials. Present study aims to investigate the size-dependent thermo-electromechanical responses of mull-layered piezoelectric nanoplates under heating loads. In the context of nonlocal piezoelectric thermoelastic theory, a composite laminated piezoelectric plate is chosen as the analytical model whilst the coupled governing equations for each layer with size-dependent characteristic lengths of thermal, electric and elastic fields as well as non-idealized interfacial conditions are obtained, and then solved by using Laplace transformation techniques. The transient solutions obtained are applied to bi-layered piezoelectric nanoplates and the effects of size-dependent characteristic lengths and material constants ratio on structural responses are evaluated and discussed to provide a comprehensive understanding and design insights of piezoelectric nanocomposites.
机译:多层压电纳米结构是智能纳米型和纳米复合材料的最有希望的候选者,这些纳米复合材料是广泛用作纳米机电系统中的传感器和致动器,这是由于它们在制造,设计和能量转换(即电气和机械能)的优异性能方面。固有的纳米压电性特性(例如,增强的压电效应和新颖的电/化学/物理性质)使其能够被视为下一代压电材料。目前的研究旨在研究加热载荷下仔细层层压电纳米板的尺寸依赖性热机电应答。在非局部压电热弹性理论的背景下,将复合层压压电板选择为分析模型,而每层具有尺寸依赖性特征长度的热电,电和弹性场的耦合控制方程以及非理想的界面条件获得,然后通过使用拉普拉斯变换技术解决。获得的瞬态溶液应用于双层压电纳米板,并评估尺寸依赖性特征长度和材料常数比对结构响应的影响,并讨论了压电纳米复合材料的全面理解和设计见解。

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