References
- D. Seckler, R. Barker, U. Amarasinghe, Water scarcity in the
twenty-first century, Int. J. Water Resour. Dev., 5 (1999) 29–42.
- A. Chavez, B. Jimenez, C. Maya, Particle size distribution as a
useful tool for microbial detection, Water Sci. Technol., 50 (2004)
179–186.
- A. Fernández, C. Tejedor, A. Chordi, Effect of different factors on
the die-off of fecal bacteria in a stabilization pond purification
plant, Water Res., 26 (1992) 1093–1098.
- A. Kirjanova, M. Rimeika, R. Dauknys, Start-up of Trickling
Filters Using Novel Filter Medium Under Low Temperature
Conditions, D. Čygas, K.D. Froehner, Eds., The 8th International
Conference on Environmental Engineering, 2011, pp. 578–583.
- I. Ali, F. Hadi, A. Bano, Microbial assisted phytoextraction
of metals and growth of soybean (Glycine max L. merrill) on
industrial waste water contaminated soil, Pak. J. Bot., 44 (2012)
1593–1599.
- Z.U. Khan, I. Naz, A. Rehman, M. Rafiq, N. Ali, S. Ahmed,
Performance efficiency of an integrated stone media fixed
biofilm reactor and sand filter for sewage treatment, Desal. Wat.
Treat., 54 (2015) 2638–2647.
- I. Ali, Z. M. Khan, M. Ali, M. Khan, Effect of season and
organic loading variation on the operation of an indigenously
developed maize cobs trickling filter (MCTF), Int. J. Eng. Works,
1 (2014) 52–55.
- I. Ali, Z. M. Khan, C. Peng, I. Naz, M. Sultan, M. Ali, M.H.
Mahmood, Y. Niaz, Identification and elucidation of the
designing and operational issues of trickling filter systems
for wastewater treatment, Pol. J. Environ. Stud., 26 (2012)
2431–2444.
- E. Loupasaki, E. Diamadopoulos, Attached growth systems for
wastewater treatment in small and rural communities: a review,
J. Chem. Technol. Biotechnol., 88 (2013) 190–204.
- Z. Shareefdeen, A. Singh, Biotechnology for Odor and Air
Pollution Control, Springer, New York, 2005.
- J. Luo, S. Lindsey, The use of pine bark and natural zeolite as
biofilter media to remove animal rendering process odours,
Bioresour. Technol., 97 (2006) 1461–1469.
- C. Yang, H. Chen, G. Zeng, G. Yu, X. Liu, X. Zhang, Modeling
variations of medium porosity in rotating drum biofilter,
Chemosphere, 74 (2009) 245–249.
- I. Naz, N. Khatoon, M.I. Ali, D.P. Saroj, S.A.U. Batool, N. Ali, S.
Ahmed, Appraisal of the tire derived rubber (TDR) medium for
wastewater treatment under aerobic and anaerobic conditions,
J. Chem. Technol. Biotechnol., 89 (2014) 587–596.
- W.W. Barbin, M.B. Rodgers, The Science of Rubber
Compounding, J.E. Mark, B. Erman, F.R. Eirich, Eds., Science
and Technology of Rubber, Academic Press, San Diego, 1994,
pp. 419–469.
- I. Naz, D. Hodgson, A. Smith, J. Marchesi, S. Ahmed, C.
Avignone Rossa, D. Saroj, Effect of the chemical composition of
filter media on the microbial community in wastewater biofilms
at different temperatures, RSC Adv., 6 (2016) 104345–104353.
- A. Assayed, J. Chenoweth, S. Pedley, Drawer compacted sand
filter: a new and innovative method for on-site grey water
treatment, Environ. Technol., 35 (2014) 2435–2446.
- I. Naz, S.A.U. Batool, N. Ali, N. Khatoon, N. Atiq, A. Hameed,
S. Ahmed, Monitoring of growth and physiological activities
of biofilm during succession on polystyrene from activated
sludge under aerobic and anaerobic conditions, Environ. Monit.
Assess., 185 (2013) 6881–6892.
- J.G. Holt, N.R. Krieg, P.H. Sneath, Bergey’s Manual of
Determinative Bacteriology, 9th ed., Lippincott Williams and
Wilkins, Baltimore, USA, 1994.
- I. Naz, D.P. Saroj, S. Mumtaz, N. Ali, S. Ahmed, Assessment of
biological trickling filter systems with various packing materials
for improved wastewater treatment, Environ. Technol., 36
(2015) 424–434.
- APHA, Standard Methods for the Examination of Water and
Wastewater, 20th ed., American Public Health Association,
Washington, DC, USA, 2005.
- W. Wu, Y. Liu, Q. Zhu, C. Wei, Remediation of polluted river
water by biological contact oxidation process using two types
of carriers, Int. J. Environ. Pollut., 38 (2009) 223–234.
- X.Y. Xu, L.J. Feng, L. Zhu, J. Xu, W. Ding, H.J. Qi, Biofilm
formation and microbial community analysis of the simulated
river bioreactor for contaminated source water remediation, J.
Environ. Sci. Pollut. Res., 19 (2012) 1584–1593.
- J. Park, A.E. Eric, T.G. Ellis, Development of a biofilter with
tire-derived rubber particle media for hydrogen sulfide odor
removal, Water Air Soil Pollut., 215 (2011) 145–153.
- H. Harrafi, M. Khedri, K. Karaminejad, Determination of
chemical oxygen demand in spent caustic by potentiometric
determination, Int. J. Chem. Mol. Eng., 6 (2012) 553–555.
- H.L. Leverenz, G. Tchobanoglous, J.L. Darby, Clogging in
intermittently dosed sand filters used for wastewater treatment,
Water Res., 43 (2009) 695–705.
- H. Simsek, M. Kasi, T. Wadhawan, C. Bye, M. Blonigen, E. Khan,
Fate of dissolved organic nitrogen in two stage trickling filter
process, Water Res., 46 (2012) 5115–5126.
- R.J. Buchanan, R.W. Seabloom, Aerobic Treatment of Wastewater
and Aerobic Treatment Units, University Curriculum
Development for Decentralized Wastewater Management
Module, University of Washington, Seattle, WA, 2004.
- I.M.I. Shalaby, A.D. Altalhy, H.A. Mosallam, Preliminary field
study of a model plant for sewage water treatment using gravel
bed hydroponics method, World Appl. Sci. J., 4 (2008) 238–243.
- K.H. Ahn, K.G. Song, E. Choa, J. Cho, H. Yun, S. Lee, J. Me,
Enhanced biological phosphorus and nitrogen removal using
a sequencing anoxic/anaerobic membrane bioreactor (SAM)
process, Desalination, 157 (2003) 345–352.
- J. Van Rijn, Y. Tal, H.J. Schreier, Denitrification in recirculating
systems: theory and applications, Aquacult. Eng., 34 (2006) 364–376.
- D.D. Mara, N.J. Horan, The Handbook of Water and Wastewater
Microbiology, Elsevier, London, UK, 2003.
- B. Zhao, Y.L. He, X.F. Zhang, Nitrogen removal capability
through simultaneous heterotrophic nitrification and aerobic
denitrification by Bacillus sp. LY, Environ. Technol., 31 (2010)
409–416.
- A. Ohki, K. Shinohara, O. Ito, K. Naka, S. Maeda, T. Sato, H.
Akano, N. Kato, Y. Kawamura, A BOD sensor using Klebsiella
oxytoca AS1, Int. J. Environ. Anal. Chem., 56 (1994) 261–269.
- T.K. Stevik, G. Ausland, J.F. Hanssen, Retention and removal of
pathogenic bacteria in wastewater percolating through porous
media: a review, Water Res., 38 (2004) 1355–1367.
- M. Danish, R. Hashim, M. Mohamad Ibrahim, M. Rafatullah,
O. Sulaiman, T. Ahmad, M. Shamsuzzoha, A. Ahmed, Sorption
of copper (II) and nickel (II) ions from aqueous solutions using
calcium oxide activated date (Phoenix dactylifera) stone carbon:
equilibrium, kinetic, and thermodynamic studies, J. Chem.
Eng., 56 (2011) 3607–3619.
- World Health Organization (WHO), Guidelines for the Safe Use
of Wastewater, Excreta and Grey water: Policy and Regulatory
Aspects, Vol. 1, World Health Organization, WHO Press,
Geneva, Switzerland, 2006.
- M. Leonard, Biotransformation of Sewage in a Trickling Filters,
Foundation for Research Science and Technology’s Envirolink
Scheme, Client Report CSC 0906, 2009.
- M. Mahmoud, A. Tawfik, F. El-Gohary, Use of down-flow
hanging sponge (DHS) reactor as a promising post-treatment
system for municipal wastewater, Chem. Eng. J., 168 (2011)
535–543.
- P.L. Clair, P.L. Sawyer Mccarty, F.G. Parkin, Chemistry for
Environmental Engineering and Science, 5th ed., McGraw-Hill,
New York, 2004.
- N. Sundaresan, L. Philip, Performance evaluation of various
aerobic biological systems for the treatment of domestic
wastewater at low temperatures, Water Sci. Technol., 58 (2008)
819–830.
- P.E. Eke, M. Scholz, Benzene removal with vertical‐flow
constructed treatment wetlands, J. Chem. Technol. Biotechnol.,
83 (2008) 55–63.
- P.M. Nacheva, G. Chávez, M. Zuniga, C. Bustos, Y. Orozco,
Comparison of bioreactors with different kinds of submerged
packed beds for domestic wastewater treatment, Water Sci.
Technol., 58 (2008) 29–36.
- C.S.A. Sá, R.A.R. Boaventura, Biodegradation of phenol by
Pseudomonas putida DSM 548 in a trickling bed reactor, Biochem.
Eng. J., 9 (2001) 211–219.
- I. Naz, W. Ullah, S. Sehar, A. Rehman, Z.U. Khan, N. Ali, S.
Ahmed, Performance evaluation of stone-media pro-type
pilot-scale trickling biofilter system for municipal wastewater
treatment, Desal. Water Treat., 57 (2016) 15792–15805.
- M.A. Belmont, E. Cantellano, S. Thompson, M. Williamson, A.
Sanchez, C.D. Metcalfe, Treatment of domestic wastewater in a
pilot-scale natural treatment system in central Mexico, J. Ecol.
Eng., 23 (2004) 299.
- EPA, Bureau of Water Supply and Wastewater Management:
Department of Environmental Protection Agency, Wastewater
Treatment Plant Operator Training (Module 20: Trickling
filters), 2007.
- R. Almstrand, P. Lydmark, F. Sörensson, M. Hermansson,
Nitrification potential and population dynamics of nitrifying
bacterial biofilms in response to controlled shifts of ammonium
concentrations in wastewater trickling filters, Bioresour.
Technol., 201 (2011) 7685–7691.
- G. Ghanizadeh, R. Sarrafpour, The effects of temperature
and pH on settlability of activated sludge flocs, Iran. J. Public
Health, 30 (2001) 139–142.
- T. Sakuma, S. Jinsiriwanit, T. Hattori, M.A. Deshusses, Removal
of ammonia from contaminated air in a biotrickling filter–denitrifying bioreactor combination system, Water Res., 30
(2008) 4507–4513.
- H. Helness, H. Ødegaard, Biological phosphorus removal
in a sequencing batch moving bed biofilm reactor, Water Sci.
Technol., 40 (1999) 161–168.
- USEPA, National Service Center for Environmental Publications
(NSCEP), Phosphorus: Water Quality Standards Criteria
Summaries: A Compilation of State/Federal Criteria, 1980.
- T. Garcia-Armisen, B. Thouvenin, P. Servais, Modelling faecal
coliforms dynamics in the Seine estuary, France, Water Sci.
Technol., 54 (2006) 177–184.
- W. Li, Q.L. Zhao, H. Liu, Sulfide removal by simultaneous
autotrophic and heterotrophic desulfurization–denitrification
process, J. Hazard. Mater., 162 (2009) 848–853.
- A. Rehman, I. Naz, Z.U. Khan, M. Rafiq, N. Ali, S. Ahmed,
Sequential application of plastic media-trickling filter and sand
filter for domestic wastewater treatment at low temperature
condition, Br. Biotechnol. J., 2 (2012) 179–191.
- G.C. Ehlers, S. Turner, Biofilms in Wastewater Treatment
Systems, G. Lear, G.D. Lewis, Eds., Microbial Biofilms-Current
Research and Applications, Casiter Academic Press, Norfolk,
UK, 2012, pp, 99–110.