Robotic Belt Finishing with Process Control for Accurate Surfaces

Author:

Torres Ramón12,Mata Sara3ORCID,Iriarte Xabier2,Barrenetxea David3ORCID

Affiliation:

1. Aldakin Automation, 31800 Alsasua, Spain

2. Engineering Department, Public University of Navarre, 31006 Pamplona, Spain

3. Ideko Research Centre—Member of BRTA, 20870 Elgoibar, Spain

Abstract

The aerospace industry still relies on manual processes for finish applications, which can be a tedious task. In recent years, robotic automation has gained interest due to its flexibility and adaptability to provide solutions to this issue. However, these processes are difficult to automate, as the material removal rate can vary due to changes in the process variables. This work proposes an approach for automatically modeling the material removal process based on experimental data in a robotic belt grinding application. The methodology concerns the measurement of the removed mass of a test part during a finishing process using an automatic precision measurement system. Then, experimental models are used to develop a control algorithm for continuous material removal that maintains a uniform finishing process by regulating the robot’s feed rate. Next, the results for various experimental material removal models under different process conditions are presented, showing the process parameter’s influence on the removal capacity. Finally, the proposed control algorithm is validated, achieving a constant material removal rate.

Funder

EUROSTARS GRINDBOT project

Government of Navarre Doctorados Industriales program

Publisher

MDPI AG

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering,Mechanics of Materials

Reference24 articles.

1. Coykendall, J., Wellener, P., and Hardin, K. (2022). Aerospace and Defense Industry Outlook, Deloitte.

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3. Surface roughness evolution model for finishing using an abrasive tool on a robot;Fernandez;Int. J. Adv. Robot. Syst.,2015

4. Robotic grinding of complex components: A step towards efficient and intelligent machining–challenges, solutions, and applications;Zhu;Robot. Comput. Integr. Manuf.,2020

5. Energetic analysis of cutting mechanisms in belt finishing of hard materials;Khellouki;J. Eng. Manuf.,2013

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