References
- M.K. Purkait, R. Singh, Membrane Technology in Separation
Science, Taylor and Francis Group, LLC, London, New York,
2018.
- D. Liang, J. Huang, H. Zhang, H. Fu, Y. Zhang, H. Chen,
Influencing factors on the performance of tubular ceramic
membrane supports prepared by extrusion, Ceram. Int.,
47 (2021) 10464–10477.
- L. Kang, Ceramic Membranes for Separation and Reaction,
John Wiley & Sons, Ltd., England, 2007.
- C. Das, S. Bose, Advanced Ceramic Membrane and
Application, Taylor and Francis Group, LLC, London, New
York, 2017.
- B. Yuzer, M. Guida, F. Ciner, B. Aktan, M. Iberia Aydin, S. Meric,
H. Selcuk, A multifaceted aggregation and toxicity assessment
study of sol–gel-based TiO2 nanoparticles during textile
wastewater treatment, Desal. Water Treat., 57 (2016) 4966–4973.
- A. Zanurin, N.A. Johari, J. Alias, H. Mas Ayu, N. Redzuan, S.
Izman, Research progress of sol-gel ceramic coating: a review,
Mater. Today:. Proc., 48 (2022) 1849–1854.
- M.N. Rahaman, Sintering of Ceramics, Taylor and Francis
Group, LLC, London, New York, 2007.
- R.L. Plackett, J.P. Burman, The design of optimum multifactorial
experiments, Biometrika, 33 (1946) 305–325.
- J. Goupy, L. Creighton, Introduction to the Experimental
Design, Dunod, Paris, 2006.
- R. Venkataraghavan, R. Thiruchelvi, D. Sharmila, Statistical
optimization of textile dye effluent adsorption by Gracilaria
edulis using Plackett-Burman design and response surface
methodology, Heliyon, 6 (2020) e05219, doi: 10.1016/j.
heliyon.2020.e05219.
- Y. Achour, A. El Kassimi, I. Nadir, H. Yazid, A. Hafid, M. Khouili,
M. El Himri, M.R. Laamari, M. El Haddad, Simultaneous
removal of binary mixture of cationic dyes onto Bombax
Buonopozense Bark: Plackett–Burman and central composite
design, Biointerface Res. Appl. Chem., 12 (2022) 326–338.
- A. Azari, M. Yeganeh, M. Gholami, M. Salari, The superior
adsorption capacity of 2,4-dinitrophenol under ultrasoundassisted
magnetic adsorption system: modeling and process
optimization by central composite design, J. Hazard. Mater.,
418 (2021) 126348, doi: 10.1016/j.jhazmat.2021.126348.
- A. Azari, M.H. Mahmoudian, M.H. Niari, I. Eş, E. Dehganifard,
A. Kiani, A. Javid, H. Azari, Y. Fakhri, A.M. Khaneghah, Rapid
and efficient ultrasonic assisted adsorption of diethyl phthalate
onto FeIIFe2
IIIO4@GO: ANN-GA and RSM-DF modeling,
isotherm, kinetic and mechanism study, Microchem. J.,
150 (2019) 104144, doi: 10.1016/j.microc.2019.104144.
- S.Y. Hashemi, A. Azari, M. Raeesi, K. Yaghmaeian, Application
of response surface methodology (RSM) in optimization
of fluoride removal by magnetic chitosan/graphene oxide
composite: kinetics and isotherm study, Int. J. Environ. Anal.
Chem., (2021), doi: 10.1080/03067319.2021.1938021.
- M. Ait Baih, H. Saffaj, K. Aziz, A. Bakka, N. El baraka,
H. Zidouh, R. Mamouni, N. Saffaj, Statistical optimization of
the elaboration of ceramic membrane support using Plackett–
Burman and response surface methodology, Mater. Today:.
Proc., 52 (2022) 128–136.
- M. Ait Baih, N. Saffaj, A. Bakka, R. Mamouni, N. El baraka,
H. Zidouh, N. El Qacimi, Clay ceramic support membrane
optimization using factorial design approach, J. Appl. Membr.
Sci. Technol., 25 (2021) 1–15.
- M. Ait Baih, H. Saffaj, A. Adam, A. Bakka, N. El baraka,
H. Zidouh, R. Mamouni, N. Saffaj, Application of the
experimental design for the optimization of microfiltration
membrane, J. Appl. Membr. Sci. Technol., 26 (2022) 95–106.
- A. Ait Taleb, N. El Baraka, N. Saffaj, A. Laknifli, R. Mamouni,
A. Fatni, A. El Hammadi, N. El Qacimi, New tubular ceramic
membranes from natural Moroccan clay for microfiltration
application, E3S Web Conf., 37 (2018) 01011, doi: 10.1051/
e3sconf/20183701011.
- E.S. Akpan, M. Dauda, L.S. Kuburi, D.O. Obada, Box–Behnken
experimental design for the process optimization of catfish
bones derived hydroxyapatite: a pedagogical approach, Mater.
Chem. Phys., 271 (2021) 124916, doi: 10.1016/j.matchemphys.
2021.124916.
- G.E. Box, D.W. Behnken, Some new three level designs for the
study of quantitative variables, Technometrics, 2 (1960) 455–475.
- J.N. Miller, J.C. Miller, Statistics and Chemometrics for
Analytical Chemistry, Pearson Education Limited, England,
2010.
- E. del Castillo, Process Optimization: A Statistical Approach,
Spring, Pennsylvania, USA, 2007.
- W. Misrar, M. Loutou, L. Saadi, M. Mansori, M. Waqif,
C. Favotto, Cordierite containing ceramic membranes from
smectetic clay using natural organic wastes as pore-forming
agents, J. Asian Ceram. Soc., 5 (2017) 199–208.
- M. Loutou, M. Hajjaji, M. Mansori, C. Favotto, R. Hakkou,
Heated blends of clay and phosphate sludge: microstructure
and physical properties, J. Asian Ceram. Soc., 4 (2016) 11–18.
- M. Loutou, M. Hajjaji, M. Mansori, C. Favotto, R. Hakkou, Heated
blends of phosphate waste: microstructure characterization,
effects of processing factors and use as a phosphorus source
for alfalfa growth, J. Environ. Manage., 177 (2016) 169–176.
- J.D. de Oliveira Henriques, M.W. Pedrassani, W. Klitzke,
A.B. Mariano, J.V.C. Vargas, R.B. Vieira, Thermal treatment
of clay-based ceramic membranes for microfiltration of
Acutodesmus obliquus, Appl. Clay Sci., 150 (2017) 217–224.
- N. El Qacimi, N. El Baraka, N. Saffaj, R. Mamouni, A. Laknifli,
S. Alami Younssi, A. Faouzi, H. Zidouh, Preparation and
characterization of flat membrane support based on Sahara
Moroccan clay: application to the filtration of textile effluents,
Desal. Water Treat., 143 (2019) 111–117.
- M.-M. Lorente-Ayza, M.J. Orts, V. Pérez-Herranz, S. Mestre,
Role of starch characteristics in the properties of low-cost
ceramic membranes, J. Eur. Ceram. Sci., 35 (2015) 2333–2341.
- M.-M. Lorente-Ayza, E. Sanchez, V. Sanz, S. Mestre, Influence
of starch content on the properties of low-cost microfiltration
ceramic membranes, Ceram. Int., 41 (2015) 13064–13073.
- M. Messaoudi, N. Tijani, S. Baya, A. Lahnafi, H. Ouallal,
H. Moussout, L. Messaoudi, Characterization of ceramic pieces
shaped from clay intended for the development of filtration
membranes, S. Afr. J. Chem. Eng., 37 (2021) 1–11.