首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >On-off and proportional-integral controller for a morphing wing. Part 2: Control validation - numerical simulations and experimental tests
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On-off and proportional-integral controller for a morphing wing. Part 2: Control validation - numerical simulations and experimental tests

机译:变形机翼的开-关和比例积分控制器。第2部分:控制验证-数值模拟和实验测试

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摘要

The second part of this article describes the numerical simulation and experimental validations of actuators control system for a morphing wing application, which was developed and designed in the first part of this article. After the description of the finally adopted control architecture, the validation for the non-linear system model is presented. First, the integrated controller is validated numerically with MATLAB/Simulink software, followed by a physical implementation of the control and experimental validation in the wind tunnel. To implement the controller on the physical model, two programmable switching power supplies, AMREL SPS100-33, and Quanser Q8 data acquisition card were used. The inputs of the data acquisition card were the two signals issued by the linear variable differential transformer potentiometers, indicating the positions of the actuators, and the six signals recorded by thermocouples installed on the SMA wires. The acquisition board output channels were used to control the required power supply to obtain the desired skin deflections. The control experimental validation was performed first on a bench test and then in the wind tunnel test. A number of optimized airfoil shapes, used in the design phase, were translated into actuators vertical displacements which were used as input signals for the controller. In the wind tunnel tests, a comparative study was realized around the transition point position for the reference airfoil and for each optimized airfoil.
机译:本文的第二部分描述了在变形的机翼应用中执行器控制系统的数值模拟和实验验证,该系统是在本文的第一部分中开发和设计的。在描述了最终采用的控制体系结构之后,提出了非线性系统模型的验证。首先,使用MATLAB / Simulink软件对集成控制器进行数字验证,然后在风洞中对控制进行物理实现并进行实验验证。为了在物理模型上实现该控制器,使用了两个可编程开关电源AMREL SPS100-33和Quanser Q8数据采集卡。数据采集​​卡的输入是线性可变差分变压器电位计发出的两个信号,指示执行器的位置,以及安装在SMA导线上的热电偶记录的六个信号。采集板输出通道用于控制所需的电源以获得所需的皮肤偏斜。对照实验验证首先在试验台上进行,然后在风洞试验中进行。在设计阶段使用了许多优化的机翼形状,将其转换为执行器的垂直位移,这些位移被用作控制器的输入信号。在风洞测试中,围绕参考翼型和每种优化翼型的过渡点位置进行了比较研究。

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