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首页> 外文期刊>Measurement and Control: Journal of the Institute of Measurement and Control >Temperature control of cryogenic wind tunnel with a modified L-1 adaptive output feedback control
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Temperature control of cryogenic wind tunnel with a modified L-1 adaptive output feedback control

机译:具有改进的L-1自适应输出反馈控制的低温风洞温度控制

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Background: Temperature is one of the main variables need to be regulated in cryogenic wind tunnel to realize the true flight Reynolds number. A new control methodology based on L1 output feedback adaptive control is deployed in the temperature control. Methods: This design is composed of three parts: linear quadratic Gaussian baseline control, L1 adaptive control and nonlinear feedforward control. A linear quadratic Gaussian controller is implemented as the baseline controller to provide the basic robustness of temperature control. A L1 output feedback adaptive controller with a modified piecewise constant adaptive law is deployed as an augmentation for the baseline controller to cancel the uncertainties within the actuator's bandwidth. The modified adaptive law can guarantee better steady-state tracking performance compared with the standard adaptive law. A global nonlinear optimization process is carried out to obtain a suboptimal filter design for the L1 controller to maximize the performance index. The nonlinear feedforward control is to cancel the coupling effects in control of the tunnel. Results: With these design techniques, the augmented L1 adaptive controller improves the performance of the baseline controller in the presence of uncertainties of dynamics. The simulation results and analysis demonstrate the effectiveness of the proposed control architecture. Conclusion: The modification of adaptive law plus the global nonlinear optimization of the filter in the L1 adaptive control architecture helps the controller achieve good control performance and acceptable robustness for the temperature control over a wide range of operations.
机译:背景:温度是在低温风洞中需要调节的主要变量之一,实现真正的飞行雷诺数。基于L1输出反馈自适应控制的新控制方法部署在温度控制中。方法:该设计由三个部分组成:线性二次高斯基线控制,L1自适应控制和非线性前馈控制。线性二次高斯控制器被实现为基线控制器,以提供温度控制的基本稳健性。 L1输出反馈自适应控制器具有修改的分段恒定的自适应定律被部署为基线控制器的增强,以取消执行器带宽内的不确定性。与标准适应法相比,改进的自适应定律可以保证更好的稳态跟踪性能。执行全局非线性优化过程,以获得L1控制器的次优滤波器设计,以最大化性能指标。非线性前馈控制是取消控制隧道的耦合效果。结果:通过这些设计技术,增强的L1自适应控制器在存在不确定因素的存在下提高了基线控制器的性能。仿真结果和分析证明了所提出的控制架构的有效性。结论:自适应律加上自适应控制架的全局非线性优化的改进有助于控制器实现良好的控制性能和可接受的温度控制在各种操作范围内的稳健性。

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