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A Neural Network Controller New Methodology for the ATR-42 Morphing Wing Actuation

机译:用于ATR-42变形翼致动的神经网络控制器新方法

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A morphing wing model is used to improve aircraft performance. To obtain the desired airfoils, electrical actuators are used, which are installed inside of the wing to morph its upper surface in order to obtain its desired shape. In order to achieve this objective, a robust position controller is needed. In this research, a design and test validation of a controller based on neural networks is presented. This controller was composed by a position controller and a current controller to manage the current consumed by the electrical actuators to obtain its desired displacement. The model was tested and validated using simulation and experimental tests. The results obtained with the proposed controller were compared to the results given by the PID controller. Wind tunnel tests were conducted in the Price-Pa?doussis Wind Tunnel at the LARCASE laboratory in order to calculate the pressure coefficient distribution on an ATR-42 morphing wing model for different flow conditions. The pressure coefficients obtained experimentally were compared with their numerical values given by XFoil software.
机译:变形机翼模型用于改善飞机性能。为了获得所需的翼型,使用了电动执行器,该电动执行器安装在机翼内部以使其上表面变形,以获得所需的形状。为了实现该目的,需要鲁棒的位置控制器。在这项研究中,提出了一种基于神经网络的控制器的设计和测试验证。该控制器由位置控制器和电流控制器组成,以管理电动执行器消耗的电流以获得所需的位移。使用模拟和实验测试对模型进行测试和验证。用建议的控制器获得的结果与PID控制器给出的结果进行比较。为了在不同流量条件下的ATR-42变形机翼模型上计算压力系数分布,在LARCASE实验室的Price-Pa?doussis风洞中进行了风洞测试。将实验获得的压力系数与XFoil软件给出的数值进行比较。

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