References
- L.E. de-Bashan, Y. Bashan, Recent advances in removing
phosphorus from wastewater and its future use as fertilizer
(1997–2003), Water Res., 38 (2004) 4222–4246.
- P. Battistoni, B. Paci, F. Fatone, P. Pavan, Phosphorus removal
from supernatants at low concentration using packed and
fluidized-bed reactors, Ind. Eng. Chem. Res., 44 (2005)
6701–6707.
- A. Sonoda, Y. Makita, Y. Sugiura, A. Ogata, C. Suh, J.H. Lee,
K. Ooi, Influence of coexisting calcium ions during on-column
phosphate adsorption and desorption with granular ferric
oxide, Sep. Purif. Technol., 249 (2020) 117143.
- D. Cordell, J.O. Drangert, S. White, The Story of Phosphorus:
Global Food Security and Food for Thought, Global Environ.
Change, 19 (2009) 292–305.
- U. Berg, D. Donnert, A. Ehbrecht, W. Bumiller, I. Kusche,
P.G. Weidler, R. Nüesch, Active filtration for the elimination
and recovery of phosphorus from waste water, Colloid Surf.,
A, 265 (2005) 141–148.
- G.K. Morse, S.W. Brett, J.A. Guy, J.N. Lester, Review:
phosphorus removal and recovery technologies, Sci. Total
Environ., 212 (1998) 69–81.
- F. Abbona, H.E. Lundager Madsen, R. Boistelle, The initial
phases of calcium and magnesium phosphates precipitated
from solutions of high to medium concentrations, J. Cryst.
Growth, 74 (1986) 581–590.
- Y. Satoshi, O. Seichiro, H. Hiroyuki, A. Kotaro, Y. Mitoma,
K. Hidetaka, B K. Biswas, Simultaneous crystallization of
phosphate and potassium as magnesium potassium phosphate
using bubble column reactor with draught tube, J. Environ.
Chem. Eng., 1 (2013) 1154–1158.
- P. Pütz, Elimination and Determination of Phosphates, Practice
Report, Laboratory Analysis and Process Analysis, Nutrients
Phosphate, Hach Lange United for Water Quality, 2008, pp. 1–4.
- A T.K. Tran, Y. Zhang, D. De Corte, J.B. Hannes, W. Ye,
P. Mondal, N. Jullok, B. Meesschaert, L. Pinoy, B.V.D. Bruggen,
P-Recovery as calcium phosphate from wastewater using an
integrated selectrodialysis/crystallization process, J. Cleaner
Prod., 77 (2014) 140–151.
- N.Ö. Yigit, S. Mazlum, Phosphate recovery potential from
wastewater by chemical precipitation at batch conditions,
Environ. Technol., 28 (2007) 83–93.
- M.M. Bello, A.A. Abdul Raman, M. Purushothaman,
Applications of fluidized bed reactors in wastewater treatment
– a review of the major design and operational parameters,
J. Cleaner Prod., 141 (2017) 1492–1514.
- F. Tisa, A.A. Abdraman, W.M.A. Wan daud, Applicability of
fluidized-bed reactor in recalcitrant compound degradation
through advanced oxidation processes: a review, J. Environ.
Manage., 146 (2014) 260–275.
- C. Pistocchi, F. Tamburini, L. Savoye, M. Sebilo, I. Baneschi,
D. Lacroix, P. Perney, J.M. Dorioz, Développement d’une
méthode d’extraction et purification des phosphates à partir
de matrices sédimentaires pour l’analyse isotopique de leur
oxygène, Le Cahier des Techniques de l’INRA, 81 (2014) 1–23.
- D. Deronzier, J.M. Choubert, Traitement du phosphore dans
les petites stationsd’épuration à boues activées, Document
Technique, FNDAE n° 29, Cemagref, 2004.
- X. Zhu, J. Ma, Recent advances in the determination of
phosphate in environmental water samples: insights from
practical perspectives, Trends Anal. Chem., 127 (2020) 115908.
- Y. Zhao, L. Guo, W. Shen, Q. An, Z. Xiao, H. Wang, W. Cai,
S. Zhai, Z. Li, Function integrated chitosan-based beads with
throughout sorption sites and inherent diffusion network for
efficient phosphate removal, Carbohydr. Polym., 230 (2020)
115639.
- Y. Lei, E. Geraets, M. Saakes, D. Renata, V. Weijden, Cees.
J.N. Buisman, Electrochemical removal of phosphate in the
presence of calcium at low current density: precipitation or
adsorption, Water Res., 169 (2020) 115207.
- M.M. Seckler, O.S.L. Bruinsma, G.M. Van Rosmalen, Calcium
phosphate precipitation in a fluidized-bed in relation to
process conditions: a black box approach, Water Res., 30 (1996)
1677–1685.
- S. Yeoman, T. Stephenson, J.N. Lester, R. Perry, The removal of
phosphorus during wastewater treatment: a review, Environ.
Pollut., 49 (1988) 183–233.