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Vibration Control of Smart Composite Laminated Spherical Shell using Neural Network

机译:基于神经网络的智能复合材料层合球壳的振动控制

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This study presents a neural network approach for the identification and control of a smart composite laminated spherical shell. The spherical shell is in the form of a layered composite shell having a sensor and an actuator layer. The vibratory response of the shell is modeled using FEM. A degenerate shell element is implemented to model composite laminated spherical shell. Modeling is based on the first-order shear deformation theory and linear piezoelectricity theory. The mode superposition method has been used to transform the coupled finite element equations of motion in the physical coordinates into a set of reduced uncoupled equations in the modal coordinates. The reduced uncoupled equations are transformed into discrete state space form. An identifier neural network has been trained using the results of the FEM program to predict the future response of the structure from the immediate history of the system's response. Then a controller neural network has been trained with the aid of the identifier neural network so that the overall behavior of the controlled system can be described by a prescribed reference model. Numerical results have been presented for the vibratory response of the laminated composite spherical shell. The controlled response of the shell is found to exactly follow the reference model.
机译:这项研究提出了一种用于智能复合材料叠层球形壳识别和控制的神经网络方法。球形壳体为具有传感器和致动器层的层状复合壳体的形式。壳体的振动响应使用FEM建模。实现了退化壳单元以对复合材料叠层球形壳进行建模。建模基于一阶剪切变形理论和线性压电理论。模式叠加方法已用于将物理坐标中耦合的有限元运动方程转换为模态坐标中的一组简化的非耦合方程。简化的解耦方程被转换为离散状态空间形式。使用FEM程序的结果对标识符神经网络进行了训练,以根据系统响应的即时历史预测结构的未来响应。然后,借助标识符神经网络对控制器神经网络进行了训练,以便可以通过规定的参考模型来描述受控系统的总体行为。已经给出了层压复合球形壳的振动响应的数值结果。发现外壳的受控响应完全遵循参考模型。

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