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Recent Patents on Engineering

Editor-in-Chief

ISSN (Print): 1872-2121
ISSN (Online): 2212-4047

Research Article

Identification of Polynomial Cutting Coefficients for a Dual-Mechanism Ball-end Milling Force Model

Author(s): Zhixin Feng*, Meng Liu and Guohe Li

Volume 13, Issue 3, 2019

Page: [232 - 240] Pages: 9

DOI: 10.2174/1872212112666180629142036

Price: $65

Open Access Journals Promotions 2
Abstract

Background: Calibration of cutting coefficients is the key content in modeling a mechanistic cutting force model. Generally, in modeling cutting force for ball end milling, the tangent, radial and binormal cutting force coefficients are each considered as a polynomial, respectively. This fact is due to the dependency between the cutting force coefficients and the cutting edge inclination angle which is variable in ball-end mills.

Objective: This paper presents an approach to determine the polynomial cutting force coefficients.

Methods: In this approach, the cutting force coefficients are expressed as explicit linear equations about the average slotting forces. After analysis of the least square regression method which is utilized in the cutting coefficients evaluation, the principle of cutting parameters choice in calibration experiment and the relationship between the order of polynomial and the number of experiments are presented. Besides, a lot of patents on identification of polynomial cutting coefficients for milling force model were studied.

Results: Finally, a series of semi-slotting verification cutting tests were arranged, the measured force agrees well with the predicted force, which demonstrates the effectiveness of this approach.

Conclusion: Based on the calibration method proposed in this paper, the cutting coefficients can be determined through (m+2) slotting experiments for m-degree shearing coefficients polynomial theoretically.

Keywords: Ball-end mill, cutting force, cutting coefficients, coefficients calibration, polynomial, cutting edge.

Graphical Abstract
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