arXiv:2507.00644cs.RO2025-07被引 1

通过优化传动比提升并联机械臂动态负载能力。

Parallel Transmission Aware Co-Design: Enhancing Manipulator Performance Through Actuation-Space Optimization

  • 将并联耦合约束融入动力学模型,分层优化设计与轨迹。
  • 相比传统方法,动态负载能力显著提升。
  • 适合需要高负载性能的并联机械臂设计者。

在机器人领域,结构设计与行为优化长期被视为独立过程,导致系统能力受限。近年来,协同设计方法兴起,采用双层优化框架同时优化机器人设计与任务行为。然而,多数实现基于串联或树状模型,忽略了大量机器人平台采用的并联机构特性。本文提出一种新型协同设计方法,将并联耦合约束显式纳入机器人动力学模型。外层优化关注设计参数,即并联带传动机械臂的传动比,用于将关节空间期望力矩映射至驱动空间;内层在驱动空间中进行轨迹优化,充分挖掘机械臂的动态性能范围。与基于简化树状模型的传统协同设计方法对比,本方法通过驱动空间表示,显著提升了动态负载能力。

原文摘要 · Abstract (English)

In robotics, structural design and behavior optimization have long been considered separate processes, resulting in the development of systems with limited capabilities. Recently, co-design methods have gained popularity, where bi-level formulations are used to simultaneously optimize the robot design and behavior for specific tasks. However, most implementations assume a serial or tree-type model of the robot, overlooking the fact that many robot platforms incorporate parallel mechanisms. In this paper, we present a novel co-design approach that explicitly incorporates parallel coupling constraints into the dynamic model of the robot. In this framework, an outer optimization loop focuses on the design parameters, in our case the transmission ratios of a parallel belt-driven manipulator, which map the desired torques from the joint space to the actuation space. An inner loop performs trajectory optimization in the actuation space, thus exploiting the entire dynamic range of the manipulator. We compare the proposed method with a conventional co-design approach based on a simplified tree-type model. By taking advantage of the actuation space representation, our approach leads to a significant increase in dynamic payload capacity compared to the conventional co-design implementation.

机器人协同设计并联机构优化

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