High-Quality End Milling of CFRP – Inclination Milling with High-Helix End Mill –
Author(s) -
Akira Hosokawa,
Naoya Hirose,
Takashi UEDA,
Tomohiro KOYANO,
Tatsuaki FURUMOTO
Publication year - 2016
Publication title -
international journal of automation technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.513
H-Index - 18
eISSN - 1883-8022
pISSN - 1881-7629
DOI - 10.20965/ijat.2016.p0372
Subject(s) - end mill , materials science , helix angle , composite material , surface integrity , diamond , delamination (geology) , carbide , mill , drilling , tool wear , thermosetting polymer , machining , surface roughness , metallurgy , mechanical engineering , paleontology , engineering , biology , subduction , tectonics
Side milling tests of CFRP (carbon fiber reinforced plastics) containing thermosetting resin are carried out by TiAlN/AlCrN-coated, H 2 -free DLC (diamond-like carbon)-coated, and CVD diamond-coated carbide end mills without coolant. Two types of end mills having different helix angles of 30° and 60° are used. The film thickness and surface smoothness are varied for the DLC-coated end mills. The cutting characteristics are evaluated by tool wear and surface integrity (i.e., 3D profiles of the machined surface, generation of fluffing, delamination, and pull-out of the carbon fibers). The cutting force and tool flank temperature are also examined for the two types of CFRP composites and the helix angle of the end mill. “Inclination milling,”in which the end mill is tilted so that the resultant cutting force acts parallel to the work surface, is proposed as a novel technique to be used with a high-helix angle end mill. This unique approach enables the reduction of tool wear and improves the surface integrity of machined CFRP surfaces.
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