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Diamond turning tests were also carried out by an industrial partner, and the machined surface finishes and diamond cutter wear condition were evaluated.
His approach is applied here, with design enhancements, to precision diamond turning.
The developed algorithm is general for predicting cutting force in most cylindrical diamond turning processes such as fast tool servo/slow tool servo assisted diamond turning.
In ultra-precision diamond turning (UPDT), the spindle axial drift directly affects the machining accuracy.
Finally, it has been verified by two kinds of designed face-turning tests for comparison carried out in diamond turning.
In this paper, the integration of the carriage positioning system of an ultraprecision diamond turning machine is presented.
The application of a fast tool servo assisted diamond turning process enables the generation of structured optical surfaces.
Simulation results show that diamond turning using nanoscale multi-tip tools offers tremendous shape transferability in machining nanostructures.
In this work, a comprehensive model is established to predict the surface roughness achieved by single point diamond turning.
However, few studies have developed the cutting force prediction algorithm by considering the effect of tool edge radius in ultra-precision diamond turning, including fast tool servo/slow tool servo assisted diamond turning.
Single point diamond turning (SPDT) has remained a superior and viable method to harness process efficiency and freeform shapes on this harder material.
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