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Influence of imperfection on the smart control frequency characteristics of a cylindrical sensor-actuator GPLRC cylindrical shell using a proportional-derivative smart controller

机译:缺陷对圆柱形传感器致动器GPLRC圆柱壳体的智能控制频率特性的影响使用比例衍生智能控制器

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This is the first research on the smart control and vibration analysis of a Graphene nanoplatelets (GPLs) Reinforced Composite (GPLRC) porous cylindrical shell covered with piezoelectric layers as sensor and actuator (PLSA) in the framework of numerical based Generalized Differential Quadrature Method (GDQM). The stresses and strains are obtained using the First-order Shear Deformable Theory (FSDT). Rule of the mixture is employed to obtain varying mass density and Poisson's ratio, while the module of elasticity is computed by modified Halpin-Tsai model. The extemal voltage is applied to sensor layer and a Proportional-Derivative (PD) controller is used for sensor output control. Goveming equations and boundary conditions of the GPLRC cylindrical shell are obtained by implementing Hamilton's principle. The results show that PD controller, length to radius ratio (L/R), applied voltage, porosity and weight fraction of GPL have significant influence on the frequency characteristics of a porous GPLRC cylindrical shell. Another important consequence is that at the lower value of the applied voltage, the influence of the smart controller on the frequency of the micro composite shell is much more significant in comparison with the higher ones.
机译:这是第一个关于在基于数值基于基于差分差分方法的框架中用压电层覆盖的石墨烯纳米片(GPLS)增强复合材料(GPLRC)多孔圆柱形壳体的智能控制和振动分析的研究(GPLRC)(GDQM )。使用一阶剪切可变形理论(FSDT)获得应力和菌株。使用混合物的规则来获得不同的质量密度和泊松比,而弹性模块通过改进的Halpin-Tsai模型计算。扩展电压施加到传感器层,比例衍生(PD)控制器用于传感器输出控制。通过实施汉密尔顿的原理获得GPLRC圆柱壳的Goveming方程和边界条件。结果表明,PD控制器,长度与半径比(L / R),施加的电压,孔隙率和重量分数的GPL对多孔GPLRC圆柱壳的频率特性有显着影响。另一个重要的结果是,在施加电压的较低值下,智能控制器对微复合壳的频率的影响与较高的相比之下得多。

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