An optimized milling force prediction method for multi-axis ball-end finish milling

Author:

Li Wangfei,Ren Junxue,Lu Yanru,Shi Kaining,Zhou Jinhua,Zhang Jingquan

Abstract

Abstract By accurately predicting milling force in finish milling, simulation of the milling process can be effectively conducted, followed by the provision of effective recommendations on optimization of machining process parameters. The prediction of ball-end milling force poses a significant challenge due to the influence of the cutter workpiece engagement (CWE) calculation and cutting force coefficient identification. This paper proposes a precise approach for predicting milling force, which involves an improved calculation method of CWE and an optimized identification approach for cutting force coefficients based on a mechanistic model. In the calculation of CWE, an optimization method considering the dynamic change of undeformed slice thickness and CWE boundary calculation is proposed. Furthermore, an improved approach incorporating interference signal removal and multiple nonlinear regression fitting methods is utilized for cutting force coefficient identification. Subsequently, the resulting prediction is validated through comparison with measurements and demonstrates a prediction accuracy exceeding 94%. The conclusion drawn is that the proposed prediction method for multi-axis ball-end finish milling force exhibits high accuracy in its predictions.

Publisher

IOP Publishing

Subject

Computer Science Applications,History,Education

Reference8 articles.

1. CWE identification and cutting force prediction in ball-end milling process;Qin;International Journal of Mechanical Sciences,2023

2. Modeling and estimation of cutting forces in ball helical milling process;Wang;The International Journal of Advanced Manufacturing Technology,2021

3. High efficiency simulation of five-axis cutting force based on the symbolically solvable cutting contact boundary model;Zhu;The International Journal of Advanced Manufacturing Technology,2018

4. Solid subtraction model for the surface topography prediction in flank milling of thin-walled integral blade rotors (IBRs);Artetxe;The International Journal of Advanced Manufacturing Technology,2017

5. A hybrid analytical-and discrete-based methodology for determining cutter-workpiece engagement in five-axis milling;Kiswanto;The International Journal of Advanced Manufacturing Technology,2015

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