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Intelligent Power Compensation System Based on Adaptive Sliding Mode Control Using Soft Computing and Automation

机译:基于软计算和自动化的自适应滑模控制的智能功率补偿系统

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摘要

The approach power compensator system (APCS) plays a role in the automatic carrier landing system (ACLS), and the performance of the APCS is affected by the carrier air-wake in the final-approach. In this paper, the importance of the APCS is verified through the analysis of the signal flow chart of the ACLS. Hence, it is necessary to suppress the carrier air-wake in order to improve the anti-interference ability. The adaptive sliding mode control (ASMC) not only has better dynamic tracking performance compared to the nonlinear mode, but also can efficiently resist the disturbance caused by the carrier air-wake. The design of the longitudinal control law of the ACLS is based on the carrier-based aircraft nonlinear model and the carrier air-wake model. It comprises the longitudinal guidance rate, autopilot (CAS) and the APCS. The ASMC is used to design the APCS to suppress the carrier air-wake. A comparison of the simulation results indicates that the design based on the ASMC has better anti-interference ability and can keep the velocity constant on the timely.
机译:进近功率补偿器系统(APCS)在自动航母着陆系统(ACLS)中发挥作用,并且APCS的性能受最终进近中航母的尾流影响。本文通过分析ACLS的信号流程图来验证APCS的重要性。因此,为了提高抗干扰能力,有必要抑制载流子的空中唤醒。与非线性模式相比,自适应滑模控制(ASMC)不仅具有更好的动态跟踪性能,而且还可以有效地抵抗由载气唤醒引起的干扰。 ACLS的纵向控制律的设计基于基于航母的飞机非线性模型和航母空中苏醒模型。它包括纵向引导率,自动驾驶仪(CAS)和APCS。 ASMC用于设计APCS,以抑制载具的空中唤醒。仿真结果的比较表明,基于ASMC的设计具有较好的抗干扰能力,可以及时保持速度恒定。

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