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Side-Mounted Window Orientation Algorithm and Attitude Controller Design for Kinetic Kill Vehicle

机译:嵌合窗方向算法和动力学杀轨道姿态控制器设计

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Side-window detection technology is adopted by the kinetic kill vehicle (KKV) to solve the problem of aerodynamic heat induced by the high speed. A new side-window orientation algorithm is proposed to adjust the KKV attitude angles according to the line-of-sight (LOS) angles to achieve stable and accurate tracking of the target. The time-scale separation methodology is adopted to implement the side window algorithm. The attitude thrusters are activated in pulse mode, and the pulse-width pulse-frequency (PWPF) modulation is adopted to control the thrusters firing. PWPF modulation is a control method that provides pseudo-linear operation for an on-off thruster. PWPF modulator holds several advantages over classical bang-bang controllers such as close to linear operation, high accuracy, and reduced propellant consumption. A modified PWPF modulator with threshold limitation is adopted in this paper to reduce the number of thruster firings and fuel consumption at a possible cost of control accuracy. The control scheme is verified using computer simulation. The results have been proven the potential of this scheme.
机译:动力学杀死车辆(KKV)采用侧窗检测技术,以解决高速诱导的空气动力学热量的问题。提出了一种新的侧窗方向算法,以根据视线(LOS)角度来调节KKV姿态角度,以实现对目标的稳定和准确跟踪。采用时间级分离方法来实现侧窗算法。姿态推进器在脉冲模式下激活,采用脉冲宽度脉冲频率(PWPF)调制来控制推进器烧制。 PWPF调制是一种控制方法,可为开关推进器提供伪线性操作。 PWPF调制器在古典Bang-Bang控制器上具有若干优点,例如接近线性操作,高精度和降低的推进剂消耗。本文采用了一种具有阈值限制的改进的PWPF调制器,以通过控制精度的可能成本降低推进器烧制和燃料消耗的数量。使用计算机仿真验证控制方案。结果已经证明了该计划的潜力。

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