Leachate treatment via electrocoagulation-coal-based powdered activated carbon process: Efficiencies, mechanisms, kinetics, and costs
Creators
- 1. Munzur Univ, Civil Engn Dept, Tunceli, Turkiye
- 2. Ataturk Univ, Environm Engn Dept, TR-25240 Erzurum, Turkiye
Description
This study aims to improve COD, NH3-N, and turbidity removal from Bingol's leachate using a single-reactor integrated electrocoagulation (EC)-coal-based powdered activated carbon (CBPAC) process under various experimental conditions. In the EC-CBPAC process, three stainless-steel cathodes and three aluminum electrodes were connected to the negative and positive terminals of the power supply, respectively. The initial concentrations in the leachate were 1044 mg O-2/L for COD, 204 mg/L for NH3-N, and 57 NTU (or 71.25-mg (NH2) 2H(2)SO(4)/L) for turbidity, respectively. After a 40-min EC-CBPAC process, with a CBPAC dosage of 5 g/L and pH of 5 for COD and turbidity, and 9.5 for NH3-N, the optimum removal efficiencies for COD, NH3-N, and turbidity were achieved at 92%, 40%, and 91%, respectively. When the EC process was applied without CBPAC under the same experimental conditions, the removal efficiencies of COD, NH3-N, and turbidity were 87%, 28%, and 54%, respectively. Before and after the EC-CBPAC process, the Brunauer-Emmett-Teller (BET) surface area, pore volume, and mean pore diameter of the CBPAC were found to be (888 m(2)/g, 0.498 cm(3)/g, and 22.28 A) and (173 m(2)/g, 0.18 cm(3)/g, and 42.8 A), respectively. The optimum pseudo-first-order (PFO) rate constants for COD, turbidity, and NH3-N were determined to be 3.15 x 10(-2), 4.77 x 10(-2), and 8.8 x 10(-3) min(-1), respectively. With the current density increasing from 15 to 25 mA/cm(2), energy consumption, unit energy consumption, and total cost increased from 68.7 to 122.4 kWh/m(3), 6.948 to 15.226 kWh/kg COD, and 0.85 to 1.838 $/kg COD, respectively.
Practitioner points
EC-CBPAC process has greater COD, NH3-N, and turbidity removal efficiency than EC process.
COD and turbidity achieved their optimum disposal efficiencies at 92% and 91%, respectively, at pH 5
The most efficient disposal efficiency for NH3-N was observed to be 40% at pH 9.5.
EC-CBPAC process increased removal efficiencies for COD, NH3-N, and turbidity by 20%, 19%, and 38%, respectively, compared with EC alone.
The turbidity, NH3-N, and COD disposal fitted PSO model due to high correlation values (R-2 0.94-0.99).
Files
bib-ae6bb182-75bb-4b8c-b592-47c2757e90cb.txt
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