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The effects of temperature, mineral composition and physicochemical parameters (model 1)/microbial community structure (model 2)/microbial diversity (model 3) on zinc leaching efficiency, explored with Partial Least Squares Path Modeling (PLS-PM).
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Thermal characteristics including temperature profiles and discharge efficiency are explored.
Thermal characteristics including temperature profiles and cycle efficiency are explored.
The impact of the compression cooling efficiency was explored too.
Boiling two-phase flow patterns, two-phase flow instability, and efficiency are explored.
The performance curves and fundamental optimal relation for the system's output power and efficiency are explored with numerical examples.
Design trade-offs in terms of area and throughput efficiency are explored to find the optimal architecture.
VLSI design space in terms of area/time efficiency is explored extensively for layered parallelism and pipelining with a Catapult C high-level-synthesis methodology.
Considering a real flue gas composition for the simulation, the influences of membrane working temperature, dewatering process and pressure drop in heat exchangers on the whole system efficiency are explored.
A system dynamic model, which captures the spatial electrical and thermal distributions of stack, is developed and optimal operating points to maintain the maximum steady state system efficiency are explored while enforcing four constraints on temperature and temperature gradient.
The effects of foam morphology and heat exchanger size on heat transfer, pressure drop, and process solar-to-fuel efficiency are explored by coupling a computational fluid dynamic model of the heat exchanger, including radiative transport, with the overall reactor energy balance.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com