Configuration Optimization and Adaptive Controller Design of a Land-Air Amphibious Vehicle for Improved Yaw Capability

Wei Fan, Hua Zhu, Yibo Zhang*, Bin Xu, Tao Xu, Xuanping Zhou, Xiangyang Zhang, Han Sun, Xingjian Wen

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Land-air amphibious vehicles (LAVs) have been increasingly used in complex scenes and tasks in recent years due to their multidomain mobility. In this context, the attitude stability control of flight system in disturbance environment has become a common problem to be solved and improved, especially the relatively weak yaw channel. This article focuses on the improvement of yaw capability under external wind disturbance from two aspects: configuration optimization and adaptive stability augmentation control. First, the mechanism of yaw torque increasement is revealed for the four-rotor LAV and the general optimization method for such configuration is proposed. The yaw channel control bandwidth is greatly increased with minimal structural optimization cost. Second, on this basis, an adaptive stability augmentation controller with real-time predictor-compensator is designed for yaw channel, which provides further guarantee for yaw wind resistance and anti-saturation ability. Finally, the simulation of the proposed comprehensive scheme and the real prototype tests under turbulent wind field provided by high-power fan are carried out. Results show that the yaw tracking error is greatly reduced by 74.17% under wind disturbance, and the yaw control quantity and risk of control output saturation are significantly decreased.

Original languageEnglish
Pages (from-to)10006-10018
Number of pages13
JournalIEEE Transactions on Transportation Electrification
Volume10
Issue number4
DOIs
Publication statusPublished - 2024

Keywords

  • Adaptive control
  • configuration optimization
  • control output saturation
  • land-air amphibious vehicle (LAV)
  • yaw performance

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