References
- C. Kendall, E.M. Elliott, S.D. Wankel, Tracing Anthropogenic
Inputs of Nitrogen to Ecosystems, Chapter 12, R.H. Michener,
K. Lajtha, Eds., Stable Isotopes in Ecology and Environmental
Science, 2nd ed., Blackwell Publishing, New Jersey, USA, 2007,
pp. 375–449.
- WHO, Guidelines for Drinking-Water Quality, World Health
Organization, Geneva, Switzerland, 2011.
- A. Bhatnagar, M. Sillanpää, A review of emerging adsorbents
for nitrate removal from water, Chem. Eng. J., 168 (2011)
493–504.
- American Concrete Institute, Concrete Technology, 2013, ACI
CT-13.
- A. Rafique Bhutta, M. Hasanah, N. Farhayu, N. Hussin, T. Mohd
Warid, M.M. Mirza, Properties of porous concrete from waste
crushed concrete (recycled aggregate), Constr. Build. Mater., 47
(2015) 1243–1248.
- A.S. Agar-Ozbek, J. Weerheijm, E. Schlangen, K. van Breugel,
Investigating porous concrete with improved strength: testing
at different scales, Constr. Build. Mater., 41 (2013) 480–490.
- R. Zhong, K. Wille, Material design and characterization of high
performance pervious concrete, Constr. Build. Mater., 98 (2015)
51–60.
- P. Shafigh, M.A. Nomeli, U.J. Alengaram, H.B. Mahmud,
M.Z. Jumaat, Engineering properties of lightweight aggregate
concrete containing limestone powder and high volume fly ash,
J. Cleaner Prod., 135 (2016) 148–157.
- X. Liu, K.S. Chia, M.H. Zhang, Water absorption, permeability,
and resistance to chloride-ion penetration of lightweight
aggregate concrete, Constr. Build. Mater., 25 (2011) 335–343.
- Y. Zaetang, A. Wongsa, V. Sata, P. Chindaprasirt, Use of
lightweight aggregates in pervious concrete, Constr. Build.
Mater., 48 (2013) 585–591.
- M.S. Baei, H. Esfandian, A.A. Nesheli, Removal of nitrate from
aqueous solutions in batch systems using activated perlite:
an application of response surface methodology, Asia-Pac. J.
Chem. Eng., 11 (2016) 437–447.
- N. Öztürk, T.E. Bektas, Nitrate removal from aqueous solution
by adsorption onto various materials, J. Hazard. Mater., 1 (2004)
155–162.
- H. Golestanifar, A. Asadi, A. Alinezhad, B. Haybati, M.
Vosoughi, Isotherm and kinetic studies on the adsorption of
nitrate onto nanoalumina and iron-modified pumice, Desal.
Wat. Treat., 57 (2016) 5480–5487.
- A. Alighardashi, H.R. Gharibi, S. Raygan, A. Akbarzadeh, Study
of novel mechano-chemical activation process of red mud to
optimize nitrate removal from water, Water Sci. Technol., 73
(2016) 890–908.
- R. Rezaei Kalantary, R. Dehghanifard, E. Mohseni-Bandpi, A.
Rezaei, L. Esrafili, A. Kakavandi, B. Azari, Nitrate adsorption
by synthetic activated carbon magnetic nanoparticles: kinetics,
isotherms and thermodynamic studies, Desal. Wat. Treat., 57
(2016) 16445–16455.
- J.Y. Kim, M.S. Balathanigaimani, H. Moon, Adsorptive removal
of nitrate and phosphate using MCM-48, SBA-15, chitosan, and
volcanic pumice, Water Air Soil Pollut., 226 (2015) 431.
- A. Sowmya, S. Meenakshi, Effective removal of nitrate and
phosphate anions from aqueous solutions using functionalised
chitosan beads, Desal. Wat. Treat., 52 (2014) 2583–2593.
- Q. Hu, N. Chen, C. Feng, W. Hu, Kinetic studies for nitrate
adsorption on granular chitosan–Fe(III) complex, Desal. Wat.
Treat., 57 (2016) 27783–27793.
- ASTM C566-89, Standard Method for Total Moisture Content of
Aggregate by Drying, ASTM International, West Conshohocken,
PA, 2013.
- ASTM C127-88, Standard Test Method for Density, Relative
Density (Specific Gravity), and Absorption of Coarse Aggregate,
4.08, ASTM International, West Conshohocken, PA, 2001.
- ASTM C1260-05, Accelerated Laboratory Testing for Alkali-
Silica Reaction, Standard Test Method for Potential Alkali-Silica
Reactivity of Aggregates (Chemical Method), 4.02, Annual
Book of ASTM Standards, Philadelphia, PA, 2008.
- R. Henkensiefken, J. Castro, D. Bentz, T. Nantung, J. Weiss,
Water absorption in internally cured mortar made with waterfilled
lightweight aggregate, Cem. Concr. Res., 39 (2009)
883–892.
- P. Krivenko, R. Drochytka, A. Gelevera, E. Kavalerova,
Mechanism of preventing the alkali–aggregate reaction in alkali
activated cement concretes, Cem. Concr. Compos., 45 (2014)
157–165.
- A.A. Ramezanianpour, Cement Replacement Materials,
Springer Geochemistry/Mineralogy, London, UK, 2014.
- P. Kundu, V. Kumar, I.M. Mishra, Experimental and numerical
investigation of fluid flow hydrodynamics in porous media:
characterization of pre-Darcy, Darcy and non-Darcy flow
regimes, Powder Technol., 303 (2016) 278–291.
- X.M. Li, W. Zheng, Q. Yang, J.B. Cao, X. Yue, T.T. Shen, G.M.
Zheng, Removal of Pb (II) from aqueous solutions by adsorption
onto modified areca waste: kinetic and thermodynamic studies,
Desalination, 258 (2010) 148–153.
- B. Boulinguiez, P. Le Cloirec, D. Wolbert, Revisiting the
determination of Langmuir parameters—application to
tetrahydrothiophene adsorption onto activated carbon,
Langmuir, 24 (2008) 6420–6424.
- M. Fazeli, M.J. Kazemi Balgeshiri, A. Alighardashi, Water
pollutants adsorption through an enhanced activated carbon
derived from agricultural waste, Arch. Hyg. Sci., 5 (2016)
286–294.
- G. Crini, Non-conventional low-cost adsorbents for dye
removal: a review, Bioresour. Technol., 97 (2006) 1061–1085.
- Y. Liu, R. Naidu, H. Ming, Red mud as an amendment for
pollutants in solid and liquid phases, Geoderma, 163 (2011)
1–12.