References
- L. Ioannou-Ttofa, I. Michael-Kordatou, S.C. Fattas, A. Eusebio,
B. Ribeiro, M. Rusan, A.R.B. Amer, S. Zuraiqi, M. Waismand,
C. Linder, Z. Wiesman, J. Gilron, D. Fatta-Kassinos, Treatment
efficiency and economic feasibility of biological oxidation,
membrane filtration and separation processes, and advanced
oxidation for the purification and valorization of olive mill
wastewater, Water Res., 114 (2017) 1–13.
- M. Cifuentes-Cabezas, C. Carbonell-Alcaina, M.C. Vincent-Vela, J.A. Mendoza-Roca, S. Álvarez-Blanco, Comparison of
different ultrafiltration membranes as first step for the recovery
of phenolic compounds from olive-oil washing wastewater,
Process Saf. Environ. Prot., 149 (2021) 724–734.
- S. Ates, E. Ates, S. Yazıcı Güvenç, E. Can-Güven, S. Aydın,
G. Varank, Removal of COD, phenol, and colour from olive
mill wastewater by iron-activated persulphate process:
multivariate optimisation approach, Int. J. Environ. Anal.
Chem., (2022) 1–23, doi: 10.1080/03067319.2022.2078202.
- P. Kumar, N. Sharma, R. Ranjan, S. Kumar, Z.F. Bhat, D.K. Jeong,
Perspective of membrane technology in dairy industry: a
review, Asian-Australas. J. Anim. Sci., 26 (2013) 1347–1358.
- E. Garcia-Castello, A. Cassano, A. Criscuoli, C. Conidi, E.
Drioli, Recovery and concentration of polyphenols from olive
mill wastewaters by integrated membrane system, Water Res.,
44 (2010) 3883–3892.
- C.M. Sánchez-Arévalo, A. Jimeno-Jiménez, C. Carbonell-Alcaina, M.C. Vincent-Vela, S. Álvarez-Blanco, Effect of the
operating conditions on a nanofiltration process to separate
low-molecular-weight phenolic compounds from the sugars
present in olive mill wastewaters, Process Saf. Environ. Prot.,
148 (2021) 428–436.
- E. Turano, S. Curcio, M. De Paola, V. Calabrò, G. Iorio, An
integrated centrifugation–ultrafiltration system in the treatment
of olive mill wastewater, J. Membr. Sci., 209 (2002) 519–531.
- F. Bazzarelli, E. Piacentini, T. Poerio, R. Mazzei, A. Cassano,
L. Giorno, Advances in membrane operations for water
purification and biophenols recovery/valorization from
OMWWs, J. Membr. Sci., 497 (2016) 402–409.
- A. Malvis, G. Hodaifa, M. Halioui, M. Seyedsalehi, S. Sánchez,
Integrated process for olive oil mill wastewater treatment and
its revalorization through the generation of high added value
algal biomass, Water Res., 151 (2019) 332–342.
- A. El-Abbassi, H. Kiai, J. Raiti, A. Hafidi, Application of
ultrafiltration for olive processing wastewaters treatment,
J. Cleaner Prod., 65 (2014) 432–438.
- E.O. Akdemir, Application of Box–Behnken experimental
design to ultrafiltration of olive oil mill wastewater,
Desal. Water Treat., 287 (2023) 89–95.
- R.B. Baird, A.D. Eaton, Standard Methods for the Examination
of Water and Wastewater, American Public Health Association,
A.B.D., 2017.
- E.O. Akdemir, E. Aygan, Pretreatment of olive mill wastewater
by ultrafiltration process using chitosan, Desal. Water Treat.,
142 (2019) 49–55.
- N. Genç, E. Durna, H.K.K. Cicigün, Response surface modeling
and optimization of microwave-activated persulfate oxidation
of olive oil mill wastewater, Clean Soil Air Water, 48 (2020) 1–11.
- R. Singh, P. Bhunia, R.R. Dash, Optimization of organics removal
and understanding the impact of HRT on vermifiltration of
brewery wastewater, Sci. Total Environ., 651 (2019) 1283–1293.
- L. Hu, G. Zhang, M. Liu, Q. Wang, P. Wang, Optimization of the
catalytic activity of a ZnCo2O4 catalyst in peroxymonosulfate
activation for bisphenol A removal using response surface
methodology, Chemosphere, 212 (2018) 152–161.
- E.O. Akdemir, Application of Box–Behnken statistical design
method in chitosan coagulation of olive mill wastewater,
Bilecik Seyh Edibali Univ. J. Sci., 9 (2022) 241–248.
- T. Mohammadi, A. Esmaeelifar, Wastewater treatment of
a vegetable oil factory by a hybrid ultrafiltration-activated
carbon process, J. Membr. Sci., 254 (2005) 129–137.
- C. Saf, M. Villain-Gambier, M. Belaqziz, I. Ziegler-Devin,
D. Trebouet, N. Ouazzani, Fouling control investigation by
pH optimization during olive mill wastewater ultrafiltration,
Process Saf. Environ. Prot., 164 (2022) 119–128.