References
- H.I. Abdel-Shafy, M.A. El-Khateeb, M. Shehata, Greywater
treatment using different designs of sand filters, Desal. Water
Treat., 52 (2014) 5237–5242.
- H.I. Abdel-Shafy, M.A. El-Khateeb, M. Regelsberger,
R. El-Sheikh, M. Shehata, Integrated system for the treatment
of blackwater and greywater via UASB and constructed
wetland in Egypt, Desal. Water Treat., 8 (2009) 272–278.
- C.N. Aonghusa, N.F. Gray, Laundry detergents as a source
of heavy metals in Irish domestic wastewater, J. Environ. Sci.
Health. Part A Toxic/Hazard. Subst. Environ. Eng., 37 (2002)
1–6.
- E. Eriksson, K. Auffarth, A.M. Eilersen, M. Henze, A. Ledin,
Household chemicals and personal care products as sources for
xenobiotic organic compounds in grey wastewater, Water SA,
29 (2003) 135–146.
- J. Ottoson, T.A. Stenström, Faecal contamination of greywater
and associated microbial risks, Water Res., 37 (2003) 645–655.
- M. Oteng-Peprah, M.A. Acheampong, N.K. deVries, Greywater
characteristics, treatment systems, reuse strategies and user
perception—a review, Water Air Soil Pollut., 229 (2018) 1–16,
doi:10.1007/s11270-018-3909-8.
- A. Jamrah, A. Al-Omari, L. Al-Qasem, N.A. Ghani, Assessment
of availability and characteristics of greywater in Amman,
Water Int., 31 (2006) 210–220.
- J.E. Flack, Residential water conservation, J. Water Resour.
Plann. Manage. Div. ASCE, 107 (1981) 85–95.
- T. Asano, A.D. Levine, Wastewater reclamation, recycling and
reuse: past, present, and future, Water Sci. Technol., 33 (1996)
1–14.
- E. Friedler, R. Kovalio, N.I. Galil, On-site greywater treatment
and reuse in multi-storey buildings, Water Sci. Technol.,
51 (2005) 187–194.
- E.V. Vinitha, M. Mansoor Ahammed, M.R. Gadekar, Chemical
coagulation of greywater: modeling using artificial neural
networks, Water Sci. Technol., 2017 (2018) 869–877.
- L. Hernández-Leal, H. Temmink, G. Zeeman, C.J.N. Buisman,
Removal of micropollutants from aerobically treated grey water
via ozone and activated carbon, Water Res., 45 (2011) 2887–2896.
- J. Wang, T.T. Xiao, R. Bao, T. Li, Y.Q. Wang, D.X. Li, X.M. Li,
T. He, Zwitterionic surface modification of forward osmosis
membranes using N-aminoethyl piperazine propane sulfonate
for grey water treatment, Process Saf. Environ. Prot., 116 (2018)
632–639.
- M. Sanchez, M.J. Rivero, I. Ortiz, Photocatalytic oxidation of
grey water over titanium dioxide suspensions, Desalination,
262 (2010) 141–146.
- M. Lamine, L. Bousselmi, A. Ghrabi, Biological treatment
of grey water using sequencing batch reactor, Desalination,
215 (2007) 127–132.
- S. Arden, X. Ma, Constructed wetlands for greywater recycle
and reuse: a review, Sci. Total Environ., 630 (2018) 587–599.
- A.Y. Katukiza, M. Ronteltap, C.B. Niwagaba, F. Kansiime,
P.N.L. Lens, A two-step crushed lava rock filter unit for grey
water treatment at household level in an urban slum, J. Environ.
Manage., 133 (2014) 258–267.
- T.A. Elmitwalli, R. Otterpohl, Anaerobic biodegradability and
treatment of grey water in upflow anaerobic sludge blanket
(UASB) reactor, Water Res., 41 (2007) 1379–1387.
- A.M. Abdel-Kader, Studying the efficiency of grey water
treatment by using rotating biological contactors system,
J. King Saud Univ.- Eng. Sci., 25 (2013) 89–95.
- A. Ding, H. Liang, G.B. Li, I. Szivak, J. Traber, W. Pronk, A low
energy gravity-driven membrane bioreactor system for grey
water treatment: permeability and removal performance of
organics, J. Membr. Sci., 542 (2017) 408–417.
- M. Spychala, J. Nieć, P. Zawadzki, R. Matz, T.H. Nguyen,
Removal of volatile solids from greywater using sand filters,
Appl. Sci., 9 (2019) 770, doi: 10.3390/app9040770.
- M. Bahgat, A. Dewedar, A. Zayed, Sand-filters used
for wastewater treatment: buildup and distribution of
microorganisms, Water Res., 33 (1999) 1949–1955.
- M.G. Healy, M. Rodgers, J. Mulqueen, Performance of a
stratified sand filter in removal of chemical oxygen demand,
total suspended solids and ammonia nitrogen from highstrength
wastewaters, J. Environ. Manage., 83 (2007) 409–415.
- S.M. Oakley, A.J. Gold, A.J. Oczkowski, Nitrogen control
through decentralized wastewater treatment: process
performance and alternative management strategies, Ecol. Eng.,
36 (2010) 1520–1531.
- Q.H. Zhang, W.N. Yang, H.H. Ngo, W.S. Guo, P.K. Jin,
M. Dzakpasu, S.J. Yang, Q. Wang, X.C. Wang, D. Ao, Current
status of urban wastewater treatment plants in China, Environ.
Int., 92–93 (2016) 11–22.
- W. Luo, C.P. Yang, H.J. He, G.M. Zeng, S. Yan, Y. Cheng, Novel
two-stage vertical flow biofilter system for efficient treatment
of decentralized domestic wastewater, Ecol. Eng., 64 (2014)
415–423.
- W.C. Tang, X. Li, H.Y. Liu, S.H. Wu, Q. Zhou, C. Du, Q. Teng,
Y.Y. Zhong, C.P. Yang, Sequential vertical flow trickling filter
and horizontal flow multi-soil-layering reactor for treatment
of decentralized domestic wastewater with sodium dodecyl
benzene sulfonate, Bioresour. Technol., 300 (2020) 122634,
doi:10.1016/j.biortech.2019.122634.
- K. Chaillou, C. Gérente, Y. Andrès, D. Wolbert, Bathroom
greywater characterization and potential treatments for reuse,
Water Air Soil Pollut., 215 (2011) 31–42.
- S. Iwai, T. Kitao, Wastewater Treatment with Microbial Films,
CRC Press, Basel, 1995.
- V. Lazarova, J. Manem, ChemInform abstract: innovative biofilm
treatment technologies for water and wastewater treatment,
ChemInform, 31 (2010) 159–206, doi: 10.1002/chin.200032279.
- APHA, AWWA, WEF, Standard Methods for the Examination
of Water and Wastewater, 22nd ed., American Public Health
Association, American Water Works Association, Water
Environment Federation, Washington, D.C., USA, 2012.
- A.A. Alomary, S. Belhadj, Determination of heavy metals
(Cd, Cr, Cu, Fe, Ni, Pb, Zn) by ICP-OES and their speciation
in Algerian Mediterranean Sea sediments after a five-stage
sequential extraction procedure, Environ. Monit. Assess.,
135 (2007) 265–280.
- D.K. Jha, G.D. Sharma, R.R. Mishra, Ecology of soil microflora
and mycorrhizal symbionts in degraded forests at two
altitudes, Biol. Fertil. Soils, 12 (1992) 272–278.
- G. Antonopoulou, A. Kirkou, A.S. Stasinakis, Quantitative and
qualitative greywater characterization in greek households
and investigation of their treatment using physicochemical
methods, Sci. Total Environ., 454–455 (2013) 426–432.
- K. Kaetzl, M. Lübken, E. Nettmann, S. Krimmler, M. Wichern,
Slow sand filtration of raw wastewater using biochar as an
alternative filtration media, Sci. Rep., 10 (2020) 1229, doi:10.1038/
s41598-020-57981-0.
- N. Shivhare, M. Roy, Gravel bed constructed wetland for
treatment of sewage water, Pollut. Res., 32 (2013) 415–419.
- H.-C. Flemming, Wastewater treatment with microbial films
Von Shigehisa Iwai und Takane Kitao Technomic Publishing
AG, Basel, 1994, ISBN 1-56676-112-3, 183 S., softcover, sfr 103,—,
Acta Hydrochimica et Hydrobiologica, 23 (1995) 188.
- K. Sato, T. Masunaga, K. Inada, T. Tanaka, Y. Arai, S. Unno,
T. Wakatsuki, The development of high speed treatment
of polluted river water by the multi-soil-layering method:
examination of various materials and structures (program for
2005 annual meeting of japanese society of soil science and
plant nutrition), J. Sci. Soil Manure, Japan, 76 (2005) 449–458.
- S. Luanmanee, T. Attanandana, T. Masunaga, T. Wakatsuki,
The efficiency of a multi-soil-layering system on domestic
wastewater treatment during the ninth and tenth years of
operation, Ecol. Eng., 18 (2001) 185–199.
- K. Sato, N. Iwashima, T. Wakatsuki, T. Masunaga, Clarification
of water movement properties in a multi-soil-layering system,
Soil Sci. Plant Nutr., 57 (2011) 607–618.
- M.M. Manyuchi, C. Mbohwa, E. Muzenda, Potential to use
municipal waste bio char in wastewater treatment for nutrients
recovery, Phys. Chem. Earth, 107 (2018) 92–95.
- O.R. Al-Jayyousi, Greywater reuse: towards sustainable water
management, Desalination, 156 (2003) 181–192.
- S. Chidambaram, A.L. Ramanathan, S. Vasudevan, Fluoride
removal studies in water using natural materials, Water SA,
29 (2003) 339–343.
- S. Sharmila, L. Rebecca Jeyanthi, M. Saduzzaman,
Biodegradation of tannery effluent using Prosopis juliflora,
Int. J. ChemTech Res., 5 (2013) 2186–2192.
- S. Apte, A. Shruti, V.S. Kore, S. Kore, Chloride removal from
wastewater by biosorption with the plant biomass, Univ.
J. Environ. Res. Technol., 1 (2011) 416–422.
- M. Koch, W. Rotard, On the contribution of background sources
to the heavy metal content of municipal sewage sludge, Water
Sci. Technol., 43 (2001) 67–74.
- E. Eriksson, E. Donner, Metals in greywater: sources, presence
and removal efficiencies, Desalination, 248 (2009) 271–278.
- M.E. Argun, S. Dursun, M. Karatas, Removal of Cd(II), Pb(II),
Cu(II) and Ni(II) from water using modified pine bark,
Desalination, 249 (2009) 519–527.
- S. Babel, T.A. Kurniawan, Cr(VI) removal from synthetic
wastewater using coconut shell charcoal and commercial
activated carbon modified with oxidizing agents and/or
chitosan, Chemosphere, 54 (2004) 951–967.
- M. Poonkothai, M. Saravanan, Antibacterial activity of Aegle
marmelos against leaf, bark and fruit extracts, Anc. Sci. Life,
27 (2008) 15–158.
- Y.R.R. Reddy, C.K. Kumari, O. Lokanatha, S. Mamatha,
C.D. Reddy, Antimicrobial activity of Azadirachta indica (neem)
leaf, bark and seed extracts, Int. J. Res. Phytochem. Pharmacol.,
3 (2013) 1–4.
- S. Sasidharan, S. Torkzaban, S.A. Bradford, R. Kookana,
D. Page, P.G. Cook, Transport and retention of bacteria and
viruses in biochar-amended sand, Sci. Total Environ., 548–549
(2016) 100–109.
- L.F. Perez-Mercado, C. Lalander, A. Joel, J. Ottoson, S. Dalahmeh,
B. Vinnerås, Biochar filters as an on-farm treatment to
reduce pathogens when irrigating with wastewater-polluted
sources, J. Environ. Manage., 248 (2019) 109295, doi:10.1016/j.
jenvman.2019.109295.
- R.B. Singh, J. Sai Priya, K. Amrutha Varshini, S. Praneeth Kumar,
Greywater Recycle and Reuse for Domestic and Irrigation
Purposes, G. Zhang, N. Kaushika, S. Kaushik, R. Tomar, Eds.,
Advances in Energy and Built Environment, Lecture Notes
in Civil Engineering, Vol. 36, Springer, Singapore, 2020,
pp. 195–202.
- U. Pinto, B.L. Maheshwari, H.S. Grewal, Effects of greywater
irrigation on plant growth, water use and soil properties
resources, conservation and recycling effects of greywater
irrigation on plant growth, water use and soil properties,
Resour. Conserv. Recycl., 54 (2010) 429–435.