arXiv:2512.04373cs.RO2025-12中稿 · International Astr…

用视觉流发散率实现小型飞行器在斜坡上的稳定着陆

Vertical Planetary Landing on Sloped Terrain Using Optical Flow Divergence Estimates

  • 通过局部流发散率控制推力与姿态,实现平稳下降
  • 平均流发散率恒定使速度和高度呈指数衰减,差值用于对齐斜坡表面
  • 适合资源受限的小型探测器,生物启发、计算量小

小型轻量化航天器在斜坡地形上自主着陆面临重大挑战,其处理能力和载荷有限,难以使用深度学习和重型传感器。飞虫如蜜蜂仅依赖视觉流即可完成精准着陆,通过调节流发散率(垂直速度除以高度)实现速度与高度的指数衰减。然而,将此生物策略应用于航天器时存在两大难题:全局流发散估计会掩盖地形倾角,且发散率的非线性特性易导致传统控制器失稳。本文提出一种非线性控制策略,利用两个局部流发散率估计值分别控制推力与姿态。基于增量非线性动态逆法设计控制律,以应对非线性问题。推力控制保持局部发散率平均值恒定,确保垂直下降平滑;姿态控制利用两个估计值的差异,使着陆器在触地前对齐斜坡表面。在简化二维航天器模型上进行数值仿真,涵盖不同坡度和发散率设定点。结果表明,平均发散率调控可实现速度与高度的指数衰减,差异调控有效提升对斜坡的对齐精度。该方法为小型航天器提供了鲁棒、低资源的自主着陆方案,提升了行星任务可行性。

原文摘要 · Abstract (English)

Autonomous landing on sloped terrain poses significant challenges for small, lightweight spacecraft, such as rotorcraft and landers. These vehicles have limited processing capability and payload capacity, which makes advanced deep learning methods and heavy sensors impractical. Flying insects, such as bees, achieve remarkable landings with minimal neural and sensory resources, relying heavily on optical flow. By regulating flow divergence, a measure of vertical velocity divided by height, they perform smooth landings in which velocity and height decay exponentially together. However, adapting this bio-inspired strategy for spacecraft landings on sloped terrain presents two key challenges: global flow-divergence estimates obscure terrain inclination, and the nonlinear nature of divergence-based control can lead to instability when using conventional controllers. This paper proposes a nonlinear control strategy that leverages two distinct local flow divergence estimates to regulate both thrust and attitude during vertical landings. The control law is formulated based on Incremental Nonlinear Dynamic Inversion to handle the nonlinear flow divergence. The thrust control ensures a smooth vertical descent by keeping a constant average of the local flow divergence estimates, while the attitude control aligns the vehicle with the inclined surface at touchdown by exploiting their difference. The approach is evaluated in numerical simulations using a simplified 2D spacecraft model across varying slopes and divergence setpoints. Results show that regulating the average divergence yields stable landings with exponential decay of velocity and height, and using the divergence difference enables effective alignment with inclined terrain. Overall, the method offers a robust, low-resource landing strategy that enhances the feasibility of autonomous planetary missions with small spacecraft.

自主着陆视觉导航非线性控制小航天器

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