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Under optimized doping conditions, power conversion efficiencies increase almost universally by a factor of 2.5.
To demonstrate under what conditions power induced ITPC differences can arise, the comparison of ITPC between low and high power 10 Hz oscillations was repeated under different amounts of SNR, ITPC and power.
Each group of samples was deposited under the same experimental conditions (power supply, Ar/N2 gas mixture and substrate temperature), except the d.c.
Finally, the effects of boundary conditions, power law index, plate thickness, annularity and sector angle on the critical buckling temperature of functionally graded annular sector plates are discussed in details.
At the best conditions (power level, 50%; process time, 20 min; activated carbon, 10 wt%; catalyst, 4 wt%), API, viscosity, and amount of asphaltenes have been increased 17.56% and reduced 33.73% and 30.5%, respectively.
The first step (LLD-1) physics design encompasses the desired plasma requirements, the experimental capabilities and conditions, power handling, radial location, pumping capability, operating temperature, lithium filling, MHD forces, and diagnostics for control and characterization.
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Natural frequencies and buckling loads are calculated numerically for different boundary conditions, power-law indices, and span-to-height ratios.
Natural frequencies and buckling loads are calculated numerically for different end conditions, power-law indices, and span-to-depth ratios.
The effects of the boundary conditions, power-law exponents, and shell segments on the free vibrations of the spherical shells are also investigated, and some interesting insights into the parameter effects on frequency behaviors are illustrated.
Effects of the boundary conditions, power-law index, span-to-depth ratio and skin-core-skin thickness ratios on the critical buckling loads and natural frequencies of the FG beams are discussed.
Significantly extend the performance specifications of power electronic circuits used to condition power for electronic loads, interface energy sources like solar and fuel cells, and provide motion control for actuators.
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