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首页> 外文期刊>Microsystem technologies >Static pull-in instability and free vibration of functionally graded graphene nanoplatelet reinforced micro-sandwich beams under thermo-electrical actuation
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Static pull-in instability and free vibration of functionally graded graphene nanoplatelet reinforced micro-sandwich beams under thermo-electrical actuation

机译:在热电致动下,功能渐进石墨烯纳米纳薄增强微夹层梁的静态拉伸稳定性和自由振动

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摘要

This paper investigates the static pull-in instability and free vibration of a multilayer functionally graded graphene nanoplatelet (GPL) reinforced composite (FG-GPLRC) micro-beam sandwiched between two copper layers subjected to a combined action of an electric voltage and a uniform temperature change based on Euler-Bernoulli beam theory. The GPL nanofillers are uniformly dispersed within each individual layer while its weight fraction changes from layer to layer in the multilayer FG-GPLRC micro-beam. The modified Halpin-Tsai model is used to predict the effective Young's modulus while the rule of mixture is used to determine the effective Poisson's ratio, mass density and thermal expansion coefficient. The static pull-in voltage and natural frequency of clamped-clamped micro-beams are obtained by employing Galerkin and iterative method. The effects of GPL distribution pattern, weight fraction, geometry and size as well as the geometry of the beam, the temperature change and the total number of layers on the static and dynamic characteristics of the micro-beams are discussed in detail.
机译:本文研究了多层功能梯度石墨烯纳米片(GPL)增强复合物(FG-GPLRC)微束夹在电压和均匀温度的组合作用之间的两种铜层之间的静态拉伸性和自由振动基于Euler-Bernoulli光束理论的变化。 GPL纳米填料均匀地分散在每个单层内,同时其重量级分在多层FG-GPLRC微束中从层变为层。改性的Halpin-Tsai模型用于预测有效的杨氏模量,而混合物的规则用于确定有效泊松比,质量密度和热膨胀系数。通过采用Galerkin和迭代方法获得夹紧夹紧微梁的静态拉伸电压和固有频率。详细讨论了GPL分布图案,重量分数,几何和尺寸以及光束的几何形状,温度变化和微梁的静态和动态特性的总数的影响。

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