Knowledge Agora



Similar Articles

Title Parametric study of coagulant recovery from water treatment sludge toward water circular economy
ID_Doc 20605
Authors Shawal, NBM; Razali, NA; Hairom, NHH; Yatim, NII; Kasan, N; Hamzah, S
Title Parametric study of coagulant recovery from water treatment sludge toward water circular economy
Year 2023
Published Water Science And Technology, 88, 12
Abstract The aim of this study was to recover coagulants from water treatment sludge (WTS) of water treatment plants. The morphology and chemical composition of WTS were investigated using scanning electron microscopy and Fourier-transform infrared spectroscopy analysis, respectively. For coagulant recovery, an acidification method using different normality of sulfuric acid was used to solubilize the alum sludge and polyaluminum chloride (PAC) sludge. The performance of the recovered coagulant was evaluated for the removal of turbidity in surface water treatment at different coagulant dosages and pH values. It was found that the optimum normality of sulfuric acid for coagulant recovery was 1.5 N for alum sludge and 1.0 N for PAC sludge, in which the percentage of turbidity removal achieved more than 70%. In the next stage, the turbidity removal seems to increase with the increase of coagulant dose, which is more than 86% at 30-60 mg/L. The best pH values that promoted high turbidity removal for both recovered coagulants are between pH 5 and 7. Therefore, the overall results show that PAC as the recovered coagulant achieved higher results in the efficiency of turbidity removal than alum and is beneficial for water treatment plants to save costs.
PDF https://iwaponline.com/wst/article-pdf/doi/10.2166/wst.2023.398/1338096/wst2023398.pdf

Similar Articles

ID Score Article
13886 Mora-León, AG; Castro-Jiménez, CC; Saldarriaga-Molina, JC; García, EF; Correa-Ochoa, MA Aluminium recovered coagulant from water treatment sludge as an alternative for improving the primary treatment of domestic wastewater(2022)
15019 Gulhan, H; Dizaji, RF; Hamidi, MN; Abdelrahman, AM; Basa, S; Kurt, ES; Koyuncu, I; Guven, H; Ozgun, H; Ersahin, ME; Ozturk, I Use of water treatment plant sludge in high-rate activated sludge systems: A techno-economic investigation(2023)
15156 Koul, B; Bhat, N; Abubakar, M; Mishra, M; Arukha, AP; Yadav, D Application of Natural Coagulants in Water Treatment: A Sustainable Alternative to Chemicals(2022)Water, 14, 22
14562 Pasciucco, F; Pasciucco, E; Castagnoli, A; Iannelli, R; Pecorini, I Comparing the effects of Al-based coagulants in waste activated sludge anaerobic digestion: Methane yield, kinetics and sludge implications(2024)Heliyon, 10, 7
33148 Zahari, NM; Hua, CK; Sidek, LM Feasibility of Alum Sludge as Phosphate Removal(2014)
21374 Castro-Jiménez, CC; Saldarriaga-Molina, JC; García, EF; Correa-Ochoa, MA Primary Treatment of Domestic Wastewater with the Use of Unmodified and Chemically Modified Drinking Water Treatment Sludge(2022)Sustainability, 14.0, 16
25115 Kurniawan, SB; Ahmad, A; Imron, MF; Abdullah, SRS; Abu Hasan, H; Othman, AR; Kuncoro, EP Performance of Chemical-Based vs Bio-Based Coagulants in Treating Aquaculture Wastewater and Cost-Benefit Analysis(2023)Polish Journal Of Environmental Studies, 32, 2
13981 Heiderscheidt, E; Leiviskä, T Evaluating the influence of pH adjustment on chemical purification efficiency and the suitability of industrial by-products as alkaline agents(2018)
28272 Bougrine, O; El Fellah, I; Kada, I; Rabie, FA; Lanjri, AF; Ammari, M; Ben Allal, L Advancing circular economy: A study of drinking water sludge for potential uses(2024)
24518 Rajaniemi, K; Heponiemi, A; Hu, T; Bergna, D; Tuomikoski, S; Lassi, U Use of Fe and Al Containing Electrocoagulation Sludge as an Adsorbent and a Catalyst in Water Treatment(2023)Journal Of Environmental Engineering, 149, 3
Scroll