Evaluation of Dewatering Performance and Fractal Characteristics of Alum Sludge
Author(s) -
Yongjun Sun,
Wei Fan,
Huaili Zheng,
Yuxin Zhang,
Fengting Li,
Wei Chen
Publication year - 2015
Publication title -
plos one
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 332
ISSN - 1932-6203
DOI - 10.1371/journal.pone.0130683
Subject(s) - flocculation , dewatering , zeta potential , alum , fractal dimension , turbidity , pulp and paper industry , chemistry , filtration (mathematics) , adsorption , chemical engineering , chromatography , materials science , environmental engineering , fractal , environmental science , mathematics , nanotechnology , nanoparticle , mathematical analysis , geotechnical engineering , organic chemistry , oceanography , statistics , geology , engineering
The dewatering performance and fractal characteristics of alum sludge from a drinking-water treatment plant were investigated in this study. Variations in residual turbidity of supernatant, dry solid content (DS), specific resistance to filtration (SRF), floc size, fractal dimension, and zeta potential were analyzed. Sludge dewatering efficiency was evaluated by measuring both DS and SRF. Results showed that the optimum sludge dewatering efficiency was achieved at 16 mg∙L -1 flocculant dosage and pH 7. Under these conditions, the maximum DS was 54.6%, and the minimum SRF was 0.61 × 10 10 m∙kg -1 . Floc-size measurements demonstrated that high flocculant dosage significantly improved floc size. Correlation analysis further revealed a strong correlation between fractal dimension and floc size after flocculation. A strong correlation also existed between floc size and zeta potential, and flocculants with a higher cationic degree had a larger correlation coefficient between floc size and zeta potential. In the flocculation process, the main flocculation mechanisms involved adsorption bridging under an acidic condition, and a combination between charge neutralization and adsorption-bridging interaction under neutral and alkaline conditions.
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