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Robust Dynamic Locomotion of Heavy Hexapod Robots via NMPC and Weighted WBC

  • Leilei Xie
  • , Junyao Gao*
  • , Zhichao Wang
  • , Mingyue Jin
  • , Taiping Wu
  • , Jiarui Wang
  • *Corresponding author for this work
  • Beijing Institute of Technology

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Large-scale, heavy-payload hexapod robots show great potential for industrial applications. However, when subjected to external force disturbances, they find it difficult to maintain stable locomotion due to their bulky structure and high inertia. To address this challenge, we propose a model-based control framework that combines a contact-aware centroidal nonlinear model predictive controller (NMPC) with a weighted inverse-dynamics whole-body controller (WBC). The NMPC serves as a centroidal planner that accounts for passive, ball-jointed large footplates and generates contact-aware centroidal trajectories and ground-reaction forces in real time, while the WBC solves a quadratic program to track these references under actuator torque and friction-polytope constraints. High-fidelity MuJoCo simulations were conducted on a floating-base hexapod carrying an additional 5 t payload (total mass 10 t) and subjected to external push perturbations, demonstrating that the controller limits the peak CoM deviation to about 0.05 m and restores nominal locomotion within 1.96 s.

Original languageEnglish
Title of host publication2026 12th International Conference on Control, Automation and Robotics, ICCAR 2026
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages56-61
Number of pages6
Edition2026
ISBN (Electronic)9798319529350
DOIs
Publication statusPublished - 2026
Externally publishedYes
Event2026 12th International Conference on Control, Automation and Robotics, ICCAR 2026 - Nagoya, Japan
Duration: 8 Apr 202610 Apr 2026

Conference

Conference2026 12th International Conference on Control, Automation and Robotics, ICCAR 2026
Country/TerritoryJapan
CityNagoya
Period8/04/2610/04/26

Keywords

  • heavy hexapod robot
  • heavy-payload
  • model predictive control
  • real-time control
  • whole-body control

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