4.5 Article

The design and optimization of micro polycrystalline diamond ball end mill for repairing micro-defects on the surface of KDP crystal

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.precisioneng.2015.08.015

Keywords

KDP crystal; Micro PCD ball end mill; Micro-defects repairing; Geometrical parameters of tool; Maximal tensile stress; Cutting force

Funding

  1. National Natural Science Foundation of China [51275113]
  2. National Major Numerical Control Project [2013ZX04001000-215]

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Micro-milling is a promising approach to repair the micro-defects on the surface of KH2PO4 (KDP) crystal. The geometrical parameters of micro ball end mill will greatly influence the repairing process as a result of the soft brittle properties of KDP crystal. Two types of double-edged micro ball end mills were designed and a three-dimensional finite element (FE) model was established to simulate the micro milling process of KDP crystal, which was validated by the milling experiments. The rake angle of -45 degrees, the relief angle of 45 degrees and the cutting edge radius of 1.5-2 mu m were suggested to be the optimal geometrical parameters, whereas the rake angle of -25 degrees and the relief angle of 9 degrees were optimal just for micro ball end mill of Type I, the configuration with the rake angles ranging from 0 degrees to 35 degrees, by fully considering the cutting force, and the stress-strain distribution over the entire tool and the cutting zone in the simulation. Moreover, the micro polycrystalline diamond (PCD) ball end mills adopting the obtained optimal parameters were fabricated by wire electro-discharge machining (WEDM) and grinding techniques, with the average surface roughness Ra of tool rake face and tool flank face similar to 0.10 mu m, and the cutting edge radius of the tool similar to 1.6 mu m. The influence of tool's geometrical parameters on the finished surface quality was verified by the cutting experiments, and the tool with symmetric structure was found to have a better cutting performance. The repairing outlines with Ra of 31.3 nm were processed by the self-fabricated tool, which could successfully hold the growth of unstable damage sites on KDP crystal. (C) 2015 Elsevier Inc. All rights reserved.

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