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A new bulk material separation mode was identified when two sequential indentations were aligned along the m-axis.
Additionally, since the failure modes have distinct AE signatures, the dominant active fracture mode was identified in real time.
The Turing instability that is, existence of a finite-wavelength linear-instability mode was identified as the origin of formation of LPSO structure.
For the investigated compounds, the polar organic mode was identified as the most favorable mobile phase scenario, producing the highest apparent enantioseparation factors, αapp, in combination with the lowest degree of non-enantioselective adsorption.
The twinning mode was identified as the {10¯11} type using electron diffraction patterns which is one of the twinning modes observed in Ti at temperatures above 350 °C.
After comparison of CI in negative and positive modes, the negative mode was identified as having superior sensitivity for the explosives tested by Parker et al. Lower temperatures were reported to reduce fragmentation of RDX, TNT, tetryl, and PETN [ 39].
Similar(54)
Otherwise, a WZB mode is identified.
Limitations of the former and merits of the latter mode are identified.
A new mode is identified and analyzed having nodal lines coincident with an equilateral triangular pattern.
Determinant parameters in the formation of each mode were identified by introducing internal failure indexes.
Malfunctioning in the conventional protection schemes in islanding mode is identified and models of newly proposed protection schemes are developed.
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