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Separation efficiency is maximum for the vortex finder depth of 7.6 cm.
It is observed that separation efficiency is maximum corresponding to a specific radial position and height of the splitter location.
Multi-objective optimization is applied to determine the optimal design condition in which exergy efficiency is maximum and sum of the unit costs of products is minimum.
The results indicate that an optimal liquid velocity exists that corresponds to the minimal bubble coalescence at which the breaker efficiency is maximum.
By seeking the Bragg angle where diffraction efficiency is maximum and the blank angle where diffraction efficiency drops to the minimum value, the refractive index modulation can be calculated.
The efficiency is maximum at the best efficiency point and gets reduced uniformly to the right of the best efficiency point.
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The catalytic activity and the efficiency are maximum for one composition of deposit which corresponds to 70% IrO2 and 30%Ta2O55.
The transformation efficiency was maximum at 20°C whereas no transfer was observed at temperature above 29°C.
The transfer efficiency was maximum at 20°C (Table 1) whereas no transfer was observed at temperature above 29°C.
When β ≈ 1, NOx removal efficiency is the maximum.
It is shown that there is an optimal set of operating conditions wherein the exergetic efficiency is the maximum.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com