References
- MOHC (The Minister of Health of the People’s Republic of
China), Standard for Drinking Water Quality, GB5749-2006.
Standards Press of China, China, 2006.
- J. Wilhelmi, R. Bopp, R. Brown, J. Cherwinka, J. Cummings,
E. Dale, M. Diwan, J. Goett, R.W. Hackenburg, J. Kilduff,
L. Littenberg, G.S. Li, X.N. Li, J.C. Liu, H.Q. Lu, J. Napolitano,
C. Pearson, N. Raper, R. Rosero, P. Stoler, Q. Xiao, C.G. Yang,
Y. Yang, M. Yeh, The water purification system for the Daya Bay
Reactor Neutrino Experiment, J. Water Process Eng., 5 (2015)
127–135.
- A.K. Misra, Influence of stone quarries on groundwater quality
and health in Fatehpur Sikri, India, Int. J. Sustain. Built Environ.,
2 (2013) 73–88.
- H.-m. Cai, G.-j. Chen, C.-y. Peng, Z.-z. Zhang, Y.-y. Dong,
G.-z. Shang, X.-h. Zhu, H.-j. Gao, X.-c. Wan, Removal of fluoride
from drinking water using tea waste loaded with Al/Fe oxides:
a novel, safe and efficient biosorbent, Appl. Surf. Sci., 328 (2015)
34–44.
- M. Vithanage, P. Bhattacharya, Fluoride in the environment:
sources, distribution and defluoridation, Environ. Chem. Lett.,
13 (2015) 131–147.
- X. Xu, Q. Li, H. Cui, J. Pang, L. Sun, H. An, J. Zhai, Adsorption
of fluoride from aqueous solution on magnesia-loaded fly ash
cenospheres, Desalination, 272 (2011) 233–239.
- Y. Ma, F. Shi, X. Zheng, J. Ma, C. Gao, Removal of fluoride
from aqueous solution using granular acid-treated bentonite
(GHB): batch and column studies, J. Hazard. Mater., 185 (2011)
1073–1080.
- C.J. Huang, J.C. Liu, Precipitate flotation of fluoride-containing
wastewater from a semiconductor manufacturer, Water Res.,
33 (1999) 3403–3412.
- M.D.G. de Luna, Warmadewanthi, J.C. Liu, Combined
treatment of polishing wastewater and fluoride-containing
wastewater from a semiconductor manufacturer, Colloids Surf.,
A, 347 (2009) 64–68.
- C. Su, Y. Wang, X. Xie, J. Li, Aqueous geochemistry of highfluoride
groundwater in Datong Basin, Northern China,
J. Geochem. Explor., 135 (2013) 79–92.
- A. Narsimha, V. Sudarshan, Data on fluoride concentration
levels in semi-arid region of Medak, Telangana, South India,
Data Brief, 16 (2018) 717–723.
- M. Mirzabeygi, M. Yousefi, H. Soleimani, A.A. Mohammadi,
A.H. Mahvi, A. Abbasnia, The concentration data of fluoride
and health risk assessment in drinking water in the Ardakan
city of Yazd province, Iran, Data Brief, 18 (2018) 40–46.
- S.K. Gautam, C. Maharana, D. Sharma, A.K. Singh, J.K. Tripathi,
S.K. Singh, Evaluation of groundwater quality in the Chotanagpur
plateau region of the Subarnarekha river basin, Jharkhand
State, India, Sustain. Water Quality Ecol., 6 (2015) 57–74.
- M.A. Alghobar, S. Suresha, Evaluation of metal accumulation
in soil and tomatoes irrigated with sewage water from Mysore
city, Karnataka, India, J. Saudi Soc. Agric. Sci., 16 (2017) 49–59.
- C.-M. Leung, J.J. Jiao, Heavy metal and trace element
distributions in groundwater in natural slopes and highly
urbanized spaces in Mid-Levels area, Hong Kong, Water Res.,
40 (2006) 753–767.
- Z. Elouear, J. Bouzid, N. Boujelben, M. Feki, F. Jamoussi,
A. Montiel, Heavy metal removal from aqueous solutions
by activated phosphate rock, J. Hazard. Mater., 156 (2008)
412–420.
- J. Zheng, K.-h. Chen, X. Yan, S.-J. Chen, G.-C. Hu, X.-W. Peng,
J.-g. Yuan, B.-X. Mai, Z.-Y. Yang, Heavy metals in food, house
dust, and water from an e-waste recycling area in South China
and the potential risk to human health, Ecotoxicol. Environ.
Saf., 96 (2013) 205–212.
- M. Rosales, O. Coreño, J.L. Nava, Removal of hydrated silica,
fluoride and arsenic from groundwater by electrocoagulation
using a continuous reactor with a twelve-cell stack, Chemosphere,
211 (2018) 149–155.
- V.L. Dhadge, C.R. Medhi, M. Changmai, M.K. Purkait, House
hold unit for the treatment of fluoride, iron, arsenic and
microorganism contaminated drinking water, Chemosphere,
199 (2018) 728–736.
- N.N. Dil, M. Sadeghi, Free radical synthesis of nanosilver/
gelatin-poly (acrylic acid) nanocomposite hydrogels employed
for antibacterial activity and removal of Cu(II) metal ions,
J. Hazard. Mater., 351 (2018) 38–53.
- M. Sarioglu, Ü.A. Atay, Y. Cebeci, Removal of copper from
aqueous solutions by phosphate rock, Desalination, 181 (2005)
303–311.
- X. Cao, L.Q. Ma, D.R. Rhue, C.S. Appel, Mechanisms of lead,
copper, and zinc retention by phosphate rock, Environ. Pollut.,
131 (2004) 435–444.
- L. Deng, X. Zhang, T. Huang, J. Zhou, Investigation of fluorapatite
crystallization in a fluidized bed reactor for the removal
of fluoride from groundwater, J. Chem. Technol. Biotechnol.,
94 (2019) 569–581.
- S. Shanmugam, B. Gopal, Copper substituted hydroxyapatite
and fluorapatite: synthesis, characterization and antimicrobial
properties, Ceram. Int., 40 (2014) 15655–15662.
- A. Davis, K. Heatwole, B. Greer, R. Ditmars, R. Clarke,
Discriminating between background and mine-impacted
groundwater at the Phoenix mine, Nevada USA, Appl.
Geochem., 25 (2010) 400–417.
- K.S. Le Corre, E. Valsami-Jones, P. Hobbs, S.A. Parsons, Kinetics
of struvite precipitation: effect of the magnesium dose on
induction times and precipitation rates, Environ. Technol.,
28 (2007) 1317–1324.
- L. Deng, Y. Liu, T. Huang, T. Sun, Fluoride removal by induced
crystallization using fluorapatite/calcite seed crystals, Chem.
Eng. J., 287 (2016) 83–91.
- W. Stumm, J.J. Morgan, Aquatic Chemistry: Chemical Equilibria
and Rates in Natural Waters, Wiley, New York, 1996.
- Y. Wang, R. Dong, Y. Zhou, X. Luo, Characteristics of
groundwater discharge to river and related heavy metal
transportation in a mountain mining area of Dabaoshan,
Southern China, Sci. Total Environ., 679 (2019) 346–358.
- N.M. Burri, R. Weatherl, C. Moeck, M. Schirmer, A review of
threats to groundwater quality in the anthropocene, Sci. Total
Environ., 684 (2019) 136–154.