MuJoCable: Reduced-Order Surface-Routed Cable Transmission for Tendon-Driven Robots

📅 2026-09-08
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🤖 AI Summary
本文提出MuJoCable,通过优化路径算法和引入单向轴向定律等方法,在MuJoCo中添加了简化的缆绳传动模型,解决了肌腱驱动机器人中的摩擦和力传递问题。
📝 Abstract
Tendon transmissions reduce distal inertia and add compliance, yet routing, slack, and friction govern motion and force transfer. Mainstream rigid-body robotics simulators such as MuJoCo do not jointly resolve moving noncircular contact, unilateral tension, and segment friction. We present MuJoCable, which adds a reduced-order, configuration-dependent cable transmission to MuJoCo. Its routing algorithm jointly optimizes an ordered path across moving analytic and mesh surfaces. A unilateral axial law, directional Capstan propagation, and nodal virtual work map this path to segment tensions and body forces. The warm-started engine plugin applies these forces during simulation and exposes route and load states for design. Pulley benchmarks recover analytical transmission relations with a Capstan-ratio error below 0.5%. On the underactuated 18-joint SpiRobs, MuJoCable reveals friction-driven load growth and proximal redistribution of joint rotation that the native tendon does not represent. Hardware tests on SpiRobs and a tendon-route-coupled finger reproduce observed motion sequences. By making physical threading executable, MuJoCable brings transmission sources of the simulation-to-reality gap into route, cable, and actuator design before fabrication.
Problem

Research questions and friction points this paper is trying to address.

Tendon-Driven Robots
Simulation
Friction
Compliance
Routing
Innovation

Methods, ideas, or system contributions that make the work stand out.

Reduced-Order Cable Transmission
Configuration-Dependent Routing
Directional Capstan Propagation
Nodal Virtual Work
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