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Factorial design analysis was applied to study the effect of different batch parameters on the adsorption yield of both mercury species.
To facilitate the optimization of various batch parameters (pH, adsorbent dosage and initial dye concentration), Response Surface Methodology (RSM) was applied.
The present paper deals with optimization of various batch parameters for the simultaneous removal of cadmium (Cd II)), nickel (Ni II)) and zinc (Zn II)) metal ions from aqueous solutions by rice husk ash (RHA) using Taguchi's optimization methodology.
To facilitate the experimentation, the pilot plant was superimposed by a computer-supported experimental environment that enabled: (i) easy access to all data (on-line signals, laboratory measurements, batch parameters) needed for the design of the algorithm, (ii) the immediate application of the algorithm designed off-line in the Matlab™ package also in real-time control.
What makes EB algorithm more attractive is that it corrects batch effects by borrowing information across CpGs and experimental conditions, which leads to better estimation of batch parameters and more stable adjustment, particularly when the number of samples in each batch is small.
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Model based analysis identified no significant difference in batch laboratory parameters vs pilot-scale continuous parameters, and no change in speed or extent of degradation.
Batch kinetic parameters are calculated with the help of logistic and Leudeking Piret Models.
The batch biosorption parameters: pH of solution, biosorbent dose, contact time, initial metal concentration and temperature were found to be effective on the biosorption process.
The batch study parameters, pH of solution, contact time, initial Pb II) concentration and adsorbent dose were found to be effective on the adsorption efficiency of Pb II).
The batch study parameters, pH of solution, contact time, initial Pb II) concentration, adsorbent dose were found to be effective on the adsorption efficiency of Pb II).
In this study, the polyethyleneimine modified activated carbon/Fe (PAF) was prepared and used as an effective magnetic adsorbent to remove uranium (U VI)) ions from aqueous solution as a function of batch adsorption parameters.
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