References

  1. N. Al-Jadabi, Study of the efficacy of coagulation–flocculation process in domestic wastewater treatment plant (WWTP) from the City of Hattane (MOROCCO), J. Adv. Res. Dyn. Control Syst., 12 (2020) 147–157.
  2. S. Relle, S.B. Grant, One-step process for particle separation by magnetic seeding, Langmuir, 14 (1998) 2316–2328.
  3. H. Demissie, G. An, R. Jiao, T. Ritigala, S. Lu, D. Wang, Modification of high content nanocluster-based coagulation for rapid removal of dye from water and the mechanism, Sep. Purif. Technol., 259 (2021) 117845, doi: 10.1016/j.seppur. 2020.117845.
  4. T. Ritigala, Y. Chen, J. Zheng, H. Demissie, L. Zheng, D. Yu, Q. Sui, M. Chen, J. Zhu, H. Fan, J. Li, Q. Gao,
    S.K. Weragoda, R. Weerasooriya, K.B.S.N. Jinadasa, Y. Wei, Comparison of an integrated short-cut biological nitrogen removal process with magnetic coagulation treating swine wastewater and food waste digestate, Bioresour. Technol., 329 (2021) 124904, doi: 10.1016/j.biortech.2021.124904.
  5. M.H. Mohamed Noor, S. Wong, N. Ngadi, I. Mohammed Inuwa, L.A. Opotu, Assessing the effectiveness of magnetic nanoparticles coagulation/flocculation in water treatment: a systematic literature review, Int. J. Environ. Sci. Technol., (2021), doi: 10.1007/s13762-021-03369-0.
  6. C. Chang, P. Lin, W. Höll, Aluminum-type superparamagnetic adsorbents: synthesis and application on fluoride removal, Colloids Surf., A, 280 (2006) 194–202.
  7. W.S. Chen, H.S. Lin, S.F. Zhang, Study on treatment of printing and dyeing wastewater by magnetic seed coagulation – high gradient magnetic separation, Appl. Mech. Mater., 71–78 (2011) 2689–2694.
  8. T.J. Wan, S.M. Shen, S.H. Siao, C.F. Huang, C.Y. Cheng, Using magnetic seeds to improve the aggregation and precipitation of nanoparticles from backside grinding wastewater, Water Res., 45 (2011) 6301–6307.
  9. Y. Chen, M. Luo, W. Cai, Influence of operating parameters on the performance of magnetic seeding flocculation, Environ. Sci. Pollut. Res., 23 (2016) 2873–2881.
  10. A. Hatamie, H. Parham, B. Zargar, Z. Heidari, Evaluating magnetic nano-ferrofluid as a novel coagulant for surface water treatment, J. Mol. Liq., 219 (2016) 694–702.
  11. D. Cai, T. Zhang, F. Zhang, Evaluation of oilfield-produced water treated with a prepared magnetic inorganic polymer: poly(silicate aluminum)/magnetite, J. Appl. Polym. Sci., 135 (2018) 45735, doi: 10.1002/app.45735.
  12. M. Lv, D. Li, Z. Zhang, B.E. Logan, J. Peter Van Der Hoek, M. Sun, F. Chen, Y. Feng, Magnetic seeding coagulation: effect of Al species and magnetic particles on coagulation efficiency, residual Al, and floc properties, Chemosphere, 268 (2021) 129363, doi: 10.1016/j.chemosphere.2020.129363.
  13. T. Ritigala, H. Demissie, Y. Chen, J. Zheng, L. Zheng, J. Zhu, H. Fan, J. Li, D. Wang, S.K. Weragoda, R. Weerasooriya, Y. Wei, Optimized pre-treatment of high strength food waste digestate by high content aluminum-nanocluster based magnetic coagulation, J. Environ. Sci.-China, 104 (2021) 430–443.
  14. R.D. Ambashta, M. Sillanpää, Water purification using magnetic assistance: a review, J. Hazard. Mater., 180 (2010) 38–49.
  15. M. Lv, Z. Zhang, J. Zeng, J. Liu, M. Sun, R.S. Yadav, Y. Feng, Roles of magnetic particles in magnetic seeding coagulationflocculation process for surface water treatment, Sep. Purif. Technol., 212 (2019) 337–343.
  16. C.M. Chin, P. Chen, L. Wang, Removal of nanoparticles from CMP wastewater by magnetic seeding aggregation, Chemosphere, 63 (2006) 1809–1813.
  17. J. Tang, J. Wang, H. Jia, H. Wen, J. Li, W. Liu, J. Li, The investigation on Fe3O4 magnetic flocculation for high efficiency treatment of oily micro-polluted water, J. Environ. Manage., 244 (2019) 399–407.
  18. Y. Chen, Q. Sui, D. Yu, L. Zheng, M. Chen, T. Ritigala, Y. Wei, Development of a short-cut combined magnetic coagulation–sequence batch membrane bioreactor for swine wastewater treatment, Membranes, 11 (2021) 83, doi: 10.3390/membranes11020083.
  19. S.C.N. Tang, I.M.C. Lo, Magnetic nanoparticles: essential factors for sustainable environmental applications, Water Res., 47 (2013) 2613–2632.
  20. G. Zhu, Y. Bian, A.S. Hursthouse, S. Xu, N. Xiong, P. Wan, The role of magnetic MOFs nanoparticles in enhanced iron coagulation of aquatic dissolved organic matter, Chemosphere, 247 (2020) 125921, doi: 10.1016/j.chemosphere.2020.125921.
  21. A. Fathi, T. Mohamed, G. Claude, G. Maurin, B.A. Mohamed, Effect of a magnetic water treatment on homogeneous and heterogeneous precipitation of calcium carbonate, Water Res., 40 (2006) 1941–1950.
  22. L. Zheng, Y. Jiao, H. Zhong, C. Zhang, J. Wang, Y. Wei, Insight into the magnetic lime coagulation-membrane distillation process for desulfurization wastewater treatment: from pollutant removal feature to membrane fouling, J. Hazard. Mater., 391 (2020) 122202, doi: 10.1016/j.jhazmat.2020.122202.
  23. R.L.H. Liu, H. Chiu, R.Y.L. Yeh, Colloid interaction and coagulation of dye wastewater with extra application of magnetites, Int. J. Environ. Stud., 59 (2002) 143–158.
  24. M.S. Yusoff, H.A. Aziz, M.F.M.A. Zamri, F. Suja’, A.Z. Abdullah, N.E.A. Basri, Floc behavior and removal mechanisms of crosslinked Durio zibethinus seed starch as a natural flocculant for landfill leachate coagulation-flocculation treatment, Waste Manage., 74 (2018) 362–372.
  25. F. Xiao, M.F. Simcik, J.S. Gulliver, Mechanisms for removal of perfluorooctane sulfonate (PFOS) and perfluorooctanoate (PFOA) from drinking water by conventional and enhanced coagulation, Water Res., 47 (2013) 49–56.
  26. D. Ibarra-Rodríguez, J. Lizardi-Mendoza, E.A. López- Maldonado, M.T. Oropeza-Guzmán, Capacity of ‘nopal’ pectin as a dual coagulant-flocculant agent for heavy metals removal, Chem. Eng. J., 323 (2017) 19–28.
  27. H. Yang, X. Chen, F. Wu, Z. Yue, Q. Zhu, X. Yan, Study on Coagulation Effects of PAC and PAFC on Urban Rainwater Treatment, 2012 International Symposium on Geomatics for Integrated Water Resource Management, IEEE, Lanzhou, China, 2012, pp. 1–4.
  28. Z. Wang, J. Nan, M. Yao, Y. Yang, Effect of additional polyaluminum chloride and polyacrylamide on the evolution of floc characteristics during floc breakage and re-growth process, Sep. Purif. Technol., 173 (2017) 144–150.
  29. X. Jin, W. Zhang, Z. Ji, L. Zhou, P. Jin, X.C. Wang, Y. Zhang, Application and mechanism of nucleation-induced pelleting coagulation (NPC) in treatment of fracturing wastewater with high concentration of dissolved organic matter, Chemosphere, 211 (2018) 1082–1090.
  30. Y. Li, J. Wang, Y. Zhao, Z. Luan, Research on magnetic seeding flocculation for arsenic removal by superconducting magnetic separation, Sep. Purif. Technol., 73 (2010) 264–270.
  31. C. Zhao, J. Zhou, Y. Yan, L. Yang, G. Xing, H. Li, P. Wu, M. Wang, H. Zheng, Application of coagulation/flocculation in oily wastewater treatment: a review, Sci. Total Environ., 765 (2020) 142795, doi:10.1016/j.scitotenv.2020.142795.
  32. S.C.N. Tang, I.M.C. Lo, Magnetic nanoparticles: essential factors for sustainable environmental applications, Water Res., 47 (2013) 2613–2632.
  33. S.V. Serrao, C. Corniciuc, T.M. Ribau, The effect of TiO2 nanoparticles removal on drinking water quality produced by conventional treatment C/F/S, Water Res., 109 (2017) 1–12.
  34. N. Karapinar, Magnetic separation of ferrihydrite from wastewater by magnetic seeding and high-gradient magnetic separation, Int. J. Miner. Process., 71 (2003) 45–54.
  35. W. Xu, Y. Chen, H. Liang, G. Sang, D. Wei, D. Wang, B. Du, A comparison study of in-situ coagulation and magnetic ion exchange (MIEX) as pre-treatments for ultrafiltration: evaluating effectiveness of organic matters removals and fouling mitigation, Chemosphere, 214 (2019) 633–641.
  36. J. Wang, L. Liu, J. Yang, S. Yang, H. Zhang, H. Jia, X. Guo, Using magnetic powder to enhance coagulation membrane filtration for treating micro-polluted surface water, Water Supply, 16 (2016) 104–114.
  37. Q. Wang, F. Zhang, S. Liao, Y. Zheng, Q. Ke, H. Wang, Q. Hu, M. Zhao, Study on optimization of magnetic coagulation process for treatment of municipal sewage treatment wastewater, Environ. Prot. Circular Economy, 37 (2017) 23–26.
  38. T. Yao, T. Cui, X. Fang, J. Yu, F. Cui, J. Wu, Preparation of yolk/shell Fe3O4@polypyrrole composites and their applications as catalyst supports, Chem. Eng. J., 225 (2013) 230–236.
  39. X. Zhang, X. He, M. Wei, F. Li, P. Hou, C. Zhang, Magnetic flocculation treatment of coal mine water and a comparison of water quality prediction algorithms, Mine Water Environ., 38 (2019) 391–401.
  40. M. Stolarski, C. Eichholz, B. Fuchs, H. Nirschl, Sedimentation acceleration of remanent iron oxide by magnetic flocculation, China Particuology, 5 (2007) 145–150.
  41. M. Zhang, F. Xiao, D. Wang, X. Xu, Q. Zhou, Comparison of novel magnetic polyaluminum chlorides involved coagulation with traditional magnetic seeding coagulation: coagulant characteristics, treating effects, magnetic sedimentation efficiency and floc properties, Sep. Purif. Technol., 182 (2017) 118–127.
  42. N. Wang, Z. Xu, W. Xu, J. Xu, Y. Chen, M. Zhang, Comparison of coagulation and magnetic chitosan nanoparticle adsorption on the removals of organic compound and coexisting humic acid: a case study with salicylic acid, Chem. Eng. J., 347 (2018) 514–524.
  43. X. Ren, X. Xu, Y. Xiao, W. Chen, K. Song, Effective removal by coagulation of contaminants in concentrated leachate from municipal solid waste incineration power plants, Sci. Total Environ., 685 (2019) 392–400.