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This concept is implemented in this work using a diamond tip as the cutting tool and coated silicon wafer and metal specimens as the workpiece.
Figure 4 Topography (left) and resistance maps (right) of raw CNTs and CNTs with AuNPs using a diamond tip for various polarizations in the range 1 to 6 V (scan size of 1 × 1 μm 2 ). Figure 5 Topography (left) and resistance maps (right) of raw CNTs and CNTs with AuNPs using a diamond tip for various polarizations between ±3 V.
Nanomechanical properties of the films were measured by a nanoindentation interfaced with an atomic force microscopy (AFM) using a diamond tip.
In addition, nanoscratch technique can be used to characterize the nanotribological properties of ZnO thin films by scratching the ZnO surface using a diamond tip and recording the coefficient of friction, in situ scratch depth and residual depth.
Lateral oscillation wear experiments were performed using the lateral modulation friction force microscopy (LM-FFM) mode in the load range of 2280 nN, at a scanning speed of 3 Hz and a vibration frequency of 1 kHz, using a diamond tip of approximately 26 nm radius.
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A drill press was used to extract 25 20 mm diameter cylinders from the core using a diamond tipped coring bit.
A grid drawn manually on the NIMS chip using a diamond-tip scribe helped in spotting and identification of sample spots in the spectrometer.
It involves material removal by shearing mechanism using a diamond tool tip, shearing of material results in generation of thermal energy which causes adverse impact on the tool wear, dimensional accuracy, and surface quality of work piece and on the cost of production.
The holes were drilled immersed in water at 17,000 rpm using a diamond coated tip.
This nanoscratch technology, which directly processes the surfaces of materials using a diamond particle or tip of nano size, is attractive for several reasons: the free selection of materials, the simple alternation of the design principles, and the convenient initial facilities [17, 18].
Reciprocating microscratch tests were performed using a diamond indenter with a tip radius of 50 μm and a range of normal loads between 0.2 mN and 5.0 mN.
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