Novel second-order sliding mode guidance law with an impact angle constraint that considers autopilot lag for intercepting manoeuvering targets

W. J. Zhang, Q. L. Xia, W. Li

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Abstract

A novel second-order sliding-mode-based impact angle and autopilot lag guidance law for engaging manoeuvering targets with unknown acceleration is presented in this study. A backstepping technique is applied to the design of the sliding surface. The proposed guidance law is based on a new sliding surface. It exhibits the advantage of ensuring that the sliding surface and its derivative will converge to zero in finite time while guaranteeing that the sliding surface will not cross zero until the ultimate time. The method effectively eliminates the undesired chattering of the sliding surface. To compensate for the uncertainty caused by target manoeuvering, a new observer is developed to estimate target manoeuvering. The convergence of the system is proven through a Lyapunov function and finite time convergence theory. Lastly, mathematical simulations results show that the proposed guidance law can achieve precise interception with a wide range of impact angles, thereby verifying the effectiveness of the guidance law.

Original languageEnglish
Pages (from-to)1350-1370
Number of pages21
JournalAeronautical Journal
Volume124
Issue number1279
DOIs
Publication statusPublished - 1 Sept 2020

Keywords

  • autopilot lag
  • impact angle constraint
  • manoeuvering target
  • observer
  • second-order sliding mode

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Zhang, W. J., Xia, Q. L., & Li, W. (2020). Novel second-order sliding mode guidance law with an impact angle constraint that considers autopilot lag for intercepting manoeuvering targets. Aeronautical Journal, 124(1279), 1350-1370. https://doi.org/10.1017/aer.2020.28