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A Hybrid Approach To Model Hysteretic Behavior Of Pzt Stack Actuators

机译:Pzt堆栈执行器磁滞行为建模的混合方法

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In order to model the hysteretic behavior of piezoceramic actuators, a hybrid model is developed by combining the Preisach concepts with a neural network mapping function. Preisach concepts are utilized in producing a data set for generalization and calculating the final displacements for actuators having nonlocal memory. Although generalization is typically handled by interpolation functions in a traditional Preisach model, these functions can lead to significant errors unless there are sufficient data points around critical regions. In the hybrid model, the generalization of all first-order reversal curves is provided by a single neural network. Since the neural network is essentially a nonlinear mapping function, its functionality is implemented with a fewer number of variables than the Preisach model. In order to account for errors caused by frequency dependency and large input variations, an on-line training technique is also developed. Various comparisons between the outputs of the hybrid model and those of an actual actuator are presented.
机译:为了对压电陶瓷执行器的磁滞行为进行建模,通过将Preisach概念与神经网络映射功能结合起来,开发了一种混合模型。 Preisach的概念可用于生成用于概括的数据集,并为具有非本地内存的执行器计算最终位移。尽管一般在传统的Preisach模型中通过插值函数来处理一般化,但是除非关键区域周围有足够的数据点,否则这些函数可能会导致重大错误。在混合模型中,所有一阶逆转曲线的推广都由单个神经网络提供。由于神经网络本质上是非线性映射函数,因此与Preisach模型相比,使用更少数量的变量来实现其功能。为了解决由频率依赖性和较大输入变化引起的误差,还开发了一种在线训练技术。提出了混合模型的输出与实际执行器的输出之间的各种比较。

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