具有精确控制攻击时间和攻击角度约束的三维制导律。

IF 6.5
Zhanpeng Gao, Wenjun Yi, Jian Huang, Jun Liu
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引用次数: 0

摘要

为了在指定的时间窗口内对机动目标进行打击,并在通信中断的情况下完成协调打击任务,本文采用分数阶扩展状态观测器(FPESO)估计目标的加速度。为了适应复杂环境下系统的动态变化,在传统PID滑模控制(PIDSMC)中引入非线性项,并引入可调参数a,从而设计出一种新的非线性PID滑模控制(NPIDSMC)。本文提出了FPESO-NPIDSMC制导律。仿真结果表明,FPESO-NPIDSMC制导律能够在预期攻击时间和攻击角度下实现对机动目标的打击。在仿真中,FPESO能够快速准确地估计敌方加速度,从而减少不确定性对制导系统的影响。蒙特卡罗仿真进一步验证了该制导律在复杂作战环境下的优越性。本文提出的FPESO-NPIDSMC制导律在精确的攻击时间和攻击角度约束下,基于精确的弹道预测和敌人位置估计,将对机动目标的跟踪拦截转化为对静止点的预测打击制导。这减少了对昂贵的主动和半主动导引头的需求,从而降低了拦截成本。同时,通过对多枚导弹设定特定的攻击次数,可以在不需要通信信号传输的情况下实现协同攻击,增强了协同攻击的鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Three-dimensional guidance law with precise control of attack time and constraints on attack angle.

To achieve strikes against maneuvering targets within a specified time window and complete the coordinated strike task in the case of communication disruption, this paper adopts the Fractional Power Extended State Observer (FPESO) to estimate the target's acceleration. In order to adapt to the dynamic changes of the system in complex environments, a nonlinear term is introduced into the traditional PID Sliding Mode Control (PIDSMC), along with an adjustable parameter a, resulting in the design of a new nonlinear PID sliding surface (NPIDSMC). This paper proposes the FPESO-NPIDSMC guidance law. Simulation results show that the FPESO-NPIDSMC guidance law can achieve strikes against maneuvering targets with the expected attack time and attack angle. In the simulations, FPESO can quickly and accurately estimate the enemy's acceleration, thereby reducing the impact of uncertainties on the guidance system. Monte Carlo simulations further validate the superiority of this guidance law in complex combat environments. Under precise attack time and attack angle constraints, the FPESO-NPIDSMC guidance law proposed in this paper can transform the tracking and interception of maneuvering targets into predictive guidance for striking a stationary point, based on accurate ballistic prediction and enemy position estimation. This reduces the need for expensive active and semi-active seekers, thus lowering interception costs. At the same time, by setting specific attack times for multiple missiles, coordinated strikes can be achieved without the need for communication signal transmission, which enhances the robustness of cooperative attacks.

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