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The simulation results showed that the proposed method can improve the concentration efficiency of SCR systems obviously in some cases.
Mathematical treatments for deriving the flux distribution and the concentration efficiency at the absorber plane are introduced.
Preconcentration factor (PF), consumptive index (CI) and concentration efficiency (CE) were 128.0, 0.16 mL and 25.6 min−1, respectively.
The preconcentration factor (PF), consumptive index (CI) and concentration efficiency (CE) were 232; 0.06 mL and 58 min−1 respectively.
The effect of an enzymatic treatment on protein concentration efficiency was evaluated by quantifying initial and final starch, cellulose and total carbohydrate concentrations.
However, beyond the Stokes number of 0.1 the concentration efficiency decreases linearly as the log of the Stokes number increases independently of the particle size.
The preconcentration factor (PF), consumptive index (CI) and concentration efficiency (CE) were found to be 38.4, 0.39 mL and 14.3 min−1, respectively.
Most public discussions of concentration efficiency improvement of SCR systems focused on astigmatism correction; however, not so many studies were given to reducing cosine loss of heliostats.
The cosine loss and astigmatism of heliostats are two major factors which lead to the low concentration efficiency of SCR systems.
In this paper, we proposed a new sun-tracking and target-aiming method for SCR systems in order to eliminate the cosine loss and enhance the concentration efficiency.
With average concentration efficiency, the amount of energy annually obtained per square meter area (2.4 GJ) can be comparable with about 1.6 t of wood used in traditional stoves.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com