Adaptive location of repaired blade for multi-axis milling

Author:

Wu Baohai1,Wang Jian1,Zhang Ying1,Luo Ming1

Affiliation:

1. Key Laboratory of Contemporary Design and Integrated Manufacturing Technology, Northwestern Polytechnical University, 127 West Youyi Road, Xi׳an 710072, PR China

Abstract

Abstract Free-form blades are widely used in different industries, such as aero-engine and steam turbine. Blades that are damaged during service or have production deficiencies are usually replaced with new ones. This leads to the waste of expensive material and is not sustainable. However, material and costs can be saved by repairing of locally damaged blades or blades with localized production deficiencies. The blade needs to be further machined after welding process to reach the aerodynamic performance requirements. This paper outlines an adaptive location approach of repaired blade for model reconstruction and NC machining. Firstly, a mathematical model is established to describe the localization problem under constraints. Secondly, by solving the mathematical model, localization of repaired blade for NC machining can be obtained. Furthermore, a more flexible method based on the proposed mathematical model and the continuity of the deformation process is developed to realize a better localization. Thirdly, by rebuilding the model of the repaired blade and extracting repair error, optimized tool paths for NC machining is generated adaptively for each individual part. Finally, three examples are given to validate the proposed method. Highlights A mathematical model is established to describe the localization problem. Detailed solution steps are given to solve the problem. Global location method and cross section location method are introduced. Repaired blade model is built for allowance extraction and tool path generation. Material and cost savings can be achieved by repairing of locally damaged blades.

Funder

National Natural Science Foundation of China

Aeronautical Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Oxford University Press (OUP)

Subject

Computational Mathematics,Computer Graphics and Computer-Aided Design,Human-Computer Interaction,Engineering (miscellaneous),Modelling and Simulation,Computational Mechanics

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