References
- A.L. Kowal, M. Świderska-Bróż, Water purification. Polish Scientific Publishers PWN, Warsaw 2007 [Polish-language publication].
- J. Nawrocki, Water treatment. Physical, chemical and biological processes. Part 1. Polish Scientific Publishers PWN, Warsaw 2010 [Polish-language publication].
- A. Pruss, J. Jeż-Walkowiak, M.M. Sozański, Arsenic in Groundwater at Poland and Possibilities of Its Removal, Cost Action 637, 3rd International Conference, Ioannina, Greece, 2009.
- S.R. Wickramasinghe, B. Han, J. Zimborn, Z. Shen, M.N. Karim, Arsenic removal by coagulation and filtration: comparison of groundwaters from the United States and Bangladesh, Desalination, 169 (204) 231–244.
- R.T. Bray, K. Fitobór, Application of PIX 112 to arsenic removal from groundwater by surface coagulation in the quartz sand-pyrolusite filter media, Ochrona Środowiska 38 (2016) 45–48.
- J. Floch, M. Hideg, Application of ZW-1000 membranes for arsenic removal from water sources, Desalination, 162 (2004) 75–83.
- M. Bodzek, K. Konieczny, Inorganic micropollutants removal from water environment by means of membrane techniques, Seidel-Przywecki Press, Warsaw 2011 [Polish-language publication].
- R.T. Bray, Groundwater arsenic removal in integrated coagulation/microfiltration Process, Ochrona Środowiska, 35 (2013) 33–37.
- R.T. Bray, K. Fitobór, Application of Ferric Chloride for Arsenic Removal in the Integrated Process: Coagulation/Microfiltration, Membranes and Membrane Processes in Environmental Protection, M. Bodzek, J.P. Warsaw, (Eds.) Gliwice: Environmental Engineering Committee Polish Academy of Sciences, 2014, pp. 131–141.
- M. Bodzek, K. Konieczny, Utilization of membrane techniques in the treatment of drinking water, Part 1. Removal of inorganic compounds. Technologia Wody, 1 (2010) 9–21.
- M. Rajca, M. Bodzek, K. Konieczny, Application of mathematical models to the calculation of ultrafiltration flux in water treatment, Desalination, 239 (2009) 100–110.
- M. Rajca, M. Bodzek, K. Konieczny, Modeling the efficiency of ultrafiltration and microfiltration in natural water treatment, Ochrona Środowiska, 30 (2008) l3–20.
- M. Rajca, Photocatalytic oxidation of natural organic matter enhanced with microfiltration and nanofiltration, Desal. Water Treat., 57 (2016) 1132–1138.
- B. Jefferson, P. Jarvis, S.A. Parsons, The Effect of Coagulant Type on Natural Organic Matter Floc Structure and Strength, Chemical Water and Wastewater Treatment, IWA Publishing, London, 2004, pp. 151–159.
- A. Lerсh, S. Panglisch, A. Nahrstedt, R. Gimbel, The Influence of Temperature on Size and Structure of Flocs in the Hybrid Process Coagulation/Ultrafiltration, Chemical Water and Wastewater Treatment, IWA Publishing, London, 2004, pp. 265–273.
- J. Gumińska, M. Kłos, Analyzing the consequences of pre-hydrolyzed coagulant overdosage, Ochrona Środowiska, 33 (2011) 15–18.
- P. Zhang, H.H. Hahn, E. Hoffmann, Study on Flocculation Kinetics of Silica Particle Suspensions, Chemical Water and Wastewater Treatment, IWA Publishing, London, 2004, pp. 277–285.
- W. Adamski, J. Maćkiewicz, Modelling of multi-function reactors for water treatment systems, Ochrona Środowiska, 83 (2001) 9–12.
- A. Pruss, P. Pruss, Organic pollutant removal from low alkalinity surface water, Ochrona Środowiska, 35 (2013) 47–50.
- Regulation of the Minister of Health of 13 November 2015 on the quality of water intended for human consumption [Journal of Laws of the Republic of Poland 2015, Item 1989].
- KEMIPOL, Material Safety Data Sheet - Kemira PIX 112, Kemipol (2015), http://www.kemipol.com.pl.
- S.J. Vitton, L.Y. Sadler, Particle size analysis of soils using laser light scattering and X-ray absorption technology, ASTM, Geotech. Test J., 20 (1997) 63–73.
- G. De Boer, C. De Weerd, D. Thoenes, H. Goossens, Laser diffraction spectrometry: Fraunhofer versus Mie scattering, Part. Part. Syst. Char., 4 (1987) 14–19.
- G. Bushell, Forward light scattering to characterize structure of flocs composed of large particles, Chem. Eng. J., 11 (2005) 145–149.
- A. Dereszewska, A. Tuszyñska, S. Cytawa, Granulometric analysis to estimate influence of anionic surfactant on activated sludge structure, Ecol. Chem. Eng. A, 22 (2015) 51–61.