Affiliation:
1. Ho Chi Minh University of Technology
Abstract
This paper discusses the experimental study and the mechanism of chip formation, sliding and cutting in processing wood milling surface. The main objective is to determine chip thickness upon the coefficient k and tool tip radius ρ. Technically, when analysing we use FCCCD's second-order response surfaces method and analysis of variance (ANOVA) for determining the coefficient k upon the factors of milling cutter diameter D, the feeding per tooth Sz and tool tip radius ρ. According to the obtained experimental results, we determined the value domain of the machine's working factors so that the cutter tool tip can slide or cut the chip on the milled surface of tropical wood materials. From the coefficient k, we can determine the slide length Lsl which gives reason for the abrasion phenomenon of the front or rear sides of the cutter. The results allow us to choose the geometrical parameters for milling cutter, apart from the working parameters for processing the surface of wood materials with the highest quality as possible.
Publisher
Trans Tech Publications, Ltd.
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science
Reference10 articles.
1. Kryazhev N.A., Wood milling. M.: For. Industry, 1979, 200 p.
2. Alekceev A.V, in: To the issue of chip formation when milling wood with a small dullness, For. Journal 1968, 5, 118-121p.
3. Gawronski T., in: Optimization of CNC routing operations of wooden furniture parts. International Journal Adv, Manuf. Technology, 2013, 67:2259-2267.
4. Wayan, Darmawan and Muhammad, Azhari and Istie, S.Rahayu and Dodi, Nandika and Dumasari, Dumasari and Indra, Malela and Satoru, Nishio, in: The Chips Generated During Up-Milling and Down-Milling of Pine Wood by Helical Router Bits, 2018, Indian Academy of wood Science, 15(2):172-180.
5. Su W-C, Wang Y, in: Effect of the helix angle of router-bits on chip formation and power consumption in milling of solid wood. 2002, J Wood Sci 48:126–131.