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A robotic polishing trajectory planning method for TBCs of aero-engine turbine blade using measured point cloud

Xufeng Liang (Shool of Automation, Wuhan University of Technology, Wuhan, China)
Zhenhua Cai (Shool of Automation, Wuhan University of Technology, Wuhan, China)
Chunnian Zeng (Shool of Automation, Wuhan University of Technology, Wuhan, China)
Zixin Mu (Shool of Automation, Wuhan University of Technology, Wuhan, China)
Zifan Li (Shool of Automation, Wuhan University of Technology, Wuhan, China)
Fan Yang (Shool of Automation, Wuhan University of Technology, Wuhan, China)
Tingyang Chen (State Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology, Wuhan, China)
Shujuan Dong (State Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology, Wuhan, China)
Chunming Deng (Institute of New Materials, Guangdong Academy of Sciences, Guangzhou, China)
Shaopeng Niu (Institute of New Materials, Guangdong Academy of Sciences, Guangzhou, China)

Industrial Robot

ISSN: 0143-991x

Article publication date: 2 November 2022

Issue publication date: 17 February 2023

281

Abstract

Purpose

The application of thermal barrier coatings (TBCs) allows aero-engine blades to operate at higher temperatures with higher efficiency. The preparation of the TBCs increases the surface roughness of the blade, which impacts the thermal cycle life and thermal insulation performance of the coating. To reduce the surface roughness of blades, particularly the blades with small size and complex curvature, this paper aims to propose a method for industrial robot polishing trajectory planning based on on-site measuring point cloud.

Design/methodology/approach

The authors propose an integrated robotic polishing trajectory planning method using point cloud processing technical. At first, the acquired point cloud is preprocessed, which includes filtering and plane segmentation algorithm, to extract the blade body point cloud. Then, the point cloud slicing algorithm and the intersection method are used to create a preliminary contact point set. Finally, the Douglas–Peucker algorithm and pose frame estimation are applied to extract the tool-tip positions and optimize the tool contact posture, respectively. The resultant trajectory is evaluated by simulation and experiment implementation.

Findings

The target points of trajectory are not evenly distributed on the blade surface but rather fluctuate with surface curvature. The simulated linear and orientation speeds of the robot end could be relatively steady over 98% of the total time within 20% reduction of the rest time. After polishing experiments, the coating roughness on the blade surface is reduced dramatically from Ra 7–8 µm to below Ra 1.0 µm. The removal of the TBCs is less than 100 mg, which is significantly less than the weight of the prepared coatings. The blade surface becomes smoothed to a mirror-like state.

Originality/value

The research on robotic polishing of aero-engine turbine blade TBCs is worthwhile. The real-time trajectory planning based on measuring point cloud can address the problem that there is no standard computer-aided drawing model and the geometry and size of the workpiece to be processed differ. The extraction and optimization of tool contact points based on point cloud features can enhance the smoothness of the robot movement, stability of the polishing speed and performance of the blade surface after polishing.

Keywords

Citation

Liang, X., Cai, Z., Zeng, C., Mu, Z., Li, Z., Yang, F., Chen, T., Dong, S., Deng, C. and Niu, S. (2023), "A robotic polishing trajectory planning method for TBCs of aero-engine turbine blade using measured point cloud", Industrial Robot, Vol. 50 No. 2, pp. 275-286. https://doi.org/10.1108/IR-05-2022-0141

Publisher

:

Emerald Publishing Limited

Copyright © 2022, Emerald Publishing Limited

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