Exact(5)
The specimen surface was inspected using non-contact profilometery every minute for the first 10 minutes of testing, with a subsequently increasing inspection interval for a total of 150 minutes.
Graphene was obtained via chemical vapor deposition and a near-full coverage of graphene over the metal surface was inspected via microscopy and by the use of electrochemically active surface redox probes.
The device channel surface was inspected via Scanning Electron Microscopy (SEM) – and it was found that the channel wall consisted of partially un-melted particles, as well as amorphous melt regions; surface characteristics influential on surface/fluid capillarity and heat transfer.
The protein surface was inspected for other solvent-exposed residues that may have functional significance.
The entire surface was inspected for the presence of four discrete pre-specified contaminants dust, tape/tape residue, hair, and moisture as well as a category for any other contaminants identified.
Similar(55)
The crack-initiation term, impact fractured surface and cross-section of the impact surface were inspected to understand the difference in impact behavior between the oriented PP/POE blends and their isotropic counterparts.
Apply the penetrant to the surface being inspected.
Fracture surfaces were inspected to characterize the fretting fatigue crack front indicated by heat tinting.
Subsequently, the surfaces were inspected by SFM in ambient air, simultaneously recording topographic and lateral-force images.
The microstructures and fracture surfaces were inspected by the means of optical microscopy and Scanning Electron Microscopy/Energy Dispersive Spectroscopy (SEM/EDS).
After fabrication, the restoration surfaces were inspected, by using a coordinate measuring machine (CMM), to obtain information on the achieved accuracy.
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