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Depending on the processing parameters and powder type, either hypoeutectic or hypereutectic microstructures were obtained in coated surfaces.
Results showed that that the fines fractions ranged from 49±8%8% to 86 ± 2% depending on the powder type and plant operating conditions.
In this study, the effects of powder type carbon based additives including eight graphite and carbon black on asphaltic composites are investigated.
The findings of the study will provide fundamental backgrounds in using carbon based powder type conductive additives for multifunctional applications of asphaltic composites.
Microstructures of the clad layers are greatly affected by the processing parameters: powder size; powder type; shielding gas; degree of dilution; and geometry of the clad layer.
The proposed composite structure namely MAX-MIL was synthesized by in situ incorporation of activated carbon powder (type Maxsorb-III) in MIL-101(Cr) MOF structure via fluorine free hydrothermal reaction method.
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The results also show the minimum exposure time that can be used with different powder types and layer thicknesses.
Two powder types were investigated to compare a commercial, off-the-shelf, fused-and-crushed powder to a specially-processed, spherical plasma-spray powder.
Different powder types could be introduced into the processing zone simultaneously and the required powder distribution and concentration could be reached.
Principal Component Analysis (PCA) on AMT spectra derived from this type of imagery is used here to illustrate the power of this new technique, specifically to discriminate between powder types.
Teeth were processed to graft materials in block, chip, or powder types immediately after extraction.
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