arXiv:2608.01800cs.ROcs.SY2026-08

多连杆无人机通过分治控制实现抗干扰又自适应的表面滑动。

Hybrid Impedance-Admittance Control with Multi-Link Aerial Robot for Contact-Rich Surface Sliding Task

论文配图:Hybrid Impedance-Admittance Control with Multi-Link Aerial Robot for Contact-Rich Surface Sliding Task
图 1 · 摘自论文原文
  • 用关节调节实现柔顺适应,用旋翼推力实现抗扰控制。
  • 在未知表面实现稳定且自适应的滑动,无需预先建模。
  • 适合需要高精度接触操作的复杂空中任务场景。

多连杆飞行机器人可在飞行中主动变形其关节结构,具备强大的空中操作潜力。然而,在需频繁接触的空中操作任务(如表面滑动)中,仍面临扰动鲁棒性与不确定表面几何适应性的双重挑战。传统力控策略如阻抗控制可提供抗扰交互能力,而导纳控制则能实现柔性适应,但二者因力-运动因果关系相反,难以在同一执行源(如常规无人机的旋翼推力)上同时实现。为此,本文提出一种面向多连杆飞行机器人的混合阻抗-导纳控制策略。其可变形结构使力与运动调控在关节与旋翼间实现功能分离:通过关节角度调节实现导纳行为以增强适应性交互,通过旋翼推力调节实现阻抗行为以控制滑动运动。该结构协同机制使机器人得以融合两种控制范式的互补优势。实验表明,该方法在未知表面上实现了鲁棒且柔性的滑动性能。

原文摘要 · Abstract (English)

Multi-link aerial robots can actively deform their articulated structures during flight, giving them strong potential for aerial manipulation. However, they still face substantial challenges in contact-rich aerial manipulation tasks such as surface sliding, which requires both disturbance robustness and compliance to uncertain surface geometry. Force-control strategies such as impedance and admittance control are commonly employed to address these requirements. Although impedance control can provide disturbance-resistant interaction and admittance control can offer compliant adaptation, their opposite force--motion causalities prevent their simultaneous implementation when applied through the same actuation source, such as the rotor thrusts used by conventional aerial robots. To overcome this limitation, we propose a hybrid impedance--admittance control strategy for a multi-link aerial robot. The articulated morphology enables a functional separation of force and motion regulation across joint and rotor actuation sources. In this framework, admittance behavior is generated through joint angle regulation to enhance adaptive interaction, while impedance behavior is achieved by modulating rotor thrust to regulate the sliding motion. This structural coordination allows the robot to leverage the complementary strengths of both control paradigms. As a result, the multi-link aerial robot achieves resilient and adaptive surface sliding. Experimental results demonstrate robust and compliant sliding performance on unknown surfaces.

空中操作多连杆力控滑动任务

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