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面向高反光窄焊缝场景的人工引导协作机器人焊接轨迹修正方法

Translated title of the contribution: A Collaborative Robot Welding Trajectory Correction Method for Highly Reflective Narrow Welds under Human Advance Guidance
  • Yong Tao*
  • , Donghua Tan
  • , He Gao
  • , Jiahao Wan
  • , Xiaotong Wang
  • , Changyi Deng
  • , Hongxing Wei
  • , Tianmiao Wang
  • *Corresponding author for this work
  • Beihang University
  • China Industrial Control Systems Cyber Emergency Response Team

Research output: Contribution to journalArticlepeer-review

Abstract

Laser welding is widely applied across industries. However, traditional manual teaching or offline programming lacks effective improvements for batch workpiece shape variations. Manual corrections are time-consuming and labor-intensive. In complex welding scenarios like high-reflectivity narrow seams, noise and instability hinder accurate trajectory corrections, affecting quality. A non-rigid registration-based method for correcting welding trajectories on high-reflectivity narrow seams is proposed. Firstly, a positioning method based on dynamic ROI prediction was proposed, which obtains partial weld position points of the actual workpiece through a line laser sensor in a manually guided collaborative manner. Secondly, an optimized WTo-CPD algorithm registers the dense trajectory point set from offline programming to the target point set, creating a new welding trajectory. Finally, the experimental results show that with random errors of 0–0.3 mm, the convergence speed of the WTo-CPD improves by an average of 27.16% and 40.50% compared to Nonrigid-CPD and Bayesian-CPD. The average error is around 0.02 mm and the maximum error is less than 0.21 mm, ensuring the welding quality.

Translated title of the contributionA Collaborative Robot Welding Trajectory Correction Method for Highly Reflective Narrow Welds under Human Advance Guidance
Original languageChinese (Traditional)
Pages (from-to)148-161
Number of pages14
JournalJixie Gongcheng Xuebao/Journal of Mechanical Engineering
Volume61
Issue number15
DOIs
StatePublished - 5 Aug 2025

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