4.7 Article

Better understanding the polymerization kinetics of ultrasonic-template method and new insight on sludge floc characteristics research

Journal

SCIENCE OF THE TOTAL ENVIRONMENT
Volume 689, Issue -, Pages 546-556

Publisher

ELSEVIER
DOI: 10.1016/j.scitotenv.2019.06.475

Keywords

Cationic polyacrylamide; Template copolymerization; Copolymerization kinetics; Sludge condition and dewatering; Flos properties

Funding

  1. National Natural Science Foundation of China [21477010]
  2. Guangdong Provincial Natural Science Foundation [2017A030313321]
  3. Fundamental Research Funds for the Central Universities, CHD [300102289108]
  4. Chongqing Science and Technology Commission Project [cstc2018jcyjAX0699]
  5. Scientific and Technological Research Programof Chongqing Municipal Education Commission [KJQN201801515]
  6. Open Fund of Chongqing Key Laboratory of Industrial Fermentation Microorganism of Chongqing University of Science and Technology [LIFM201709]
  7. Open Research Fund Program of the State Key Laboratory of Geodesy and Earth's Dynamics [SKLGED2018-1-3-E]

Ask authors/readers for more resources

As one of the core technologies employed in the field of sludge conditioning, flocculation has the ability to improve the sludge dewatering performance and reduce its volume and amount, which can accordingly result in lower costs in sludge transportation as well as subsequent disposal. Therefore, the development of new and high-efficiency flocculants is a hot topic in this field. The template copolymer (TPAD) of acryloyloxyethyl trimethyl ammonium chloride (DAC) and acrylamide (AM) was successfully synthesized through ultrasonic template copolymerization using sodium-polyacrylate (NaPAA) as a template. The analysis of FTIR, H-1 (C-13) NMR, TG/DSC and SLM revealed that TPAD had a conspicuously significant cationic segmental structure. In addition, the results obtained from the analysis on the association constant (Km) and the kinetics of the template reaction indicated that the ultrasonic-template was a free radical initiated polymerization and the polymerization mechanism was I Zip-up (ZIP), and which once again confirmed the formation of the cationic fragment structure. This novel cationic fragment structure in TPAD greatly enhanced the ability of charge neutralization, electric patching, adsorption and bridging, thus improving the active sludge conditioning and dewatering performance (FCMC: 72.9%, SRI': 4.0 x 10(12) m.kg(-1), d(50): 228.604 mu m, D-f. 2.02 at 400 r/min). The floc breakage and regeneration experiments showed that the cationic fragment structure in TPAD could make great contribution to the formation of large and dense floc structures, and these flocs were able to regenerate rapidly after breakage. Finally, it was also known that these large and compact floc structures were beneficial to the creation of more channels and voids, thereby decreasing sludge resistance (SRF) and improving sludge dewatering performance. (C) 2019 Elsevier B.V. All rights reserved.

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