References
- H.-s. Li, S.-q. Zhou, Y.-b. Sun, P. Feng, J.-d. Li, Advanced
treatment of landfill leachate by a new combination process in a
full-scale plant, J. Hazard. Mater., 172 (2009) 408–415.
- V. Vaclavik, I. Ondrasikova, T. Dvorsky, K. Cerenchova, Leachate
from municipal waste landfill and its natural degradation – a
case study of Zubri, Zlin Region, Int. J. Environ. Res. Public
Health, 13 (2016) 1–12.
- K. Frączek, H. Różycki, D. Popek, Statistical analyses of
bioaerosol concentration at municipal landfill site, Ecol. Chem.
Eng. S, 21 (2014) 229–243.
- Environmental Protection 2005, Statistics Poland (GUS),
Warszawa, 2005, p. 349, Table 30 (348).
- Environmental Protection 2009, Statistics Poland (GUS),
Warszawa, 2009, p. 363, Table 33 (287).
- Environmental Protection 2015, Statistics Poland (GUS),
Warszawa, 2015, p. 338, Table 10 (258).
- Environmental Protection 2019, Statistics Poland (GUS),
Warszawa, 2019, pp. 148–158.
- Council Directive 1999/31/EC of 26 April 1999 on the Landfill
of Waste, Official Journal L 182, 16/07/1999 P. 0001 – 0019.
Available at: http://eur-lex.europa.eu/LexUriServ/LexUriServ.do?uri=CELEX:31999L0031:EN:NOT
- S. Md Iskander, R. Zhao, A. Pathak, A. Gupta, A. Pruden,
J.T. Novak, Z. He, A review of landfill leachate induced
ultraviolet quenching substances: sources, characteristics and
treatment, Water Res., 145 (2018) 297–311.
- A. Fernandes, L. Labiadh, L. Ciriaco, M.J. Pacheco, A. Gadri,
S. Ammar, A. Lopes, Electro-Fenton oxidation of reverse
osmosis concentrate from sanitary landfill leachate: evaluation
of operational parameters, Chemosphere, 184 (2017) 1223–1229.
- D. Dolar, K. Kosutic, T. Strmecky, Hybrid processes for treatment
of landfill leachate: coagulation/UF/NF-RO and adsorption/UF/NF-RO, Sep. Purif. Technol., 168 (2016) 39–46.
- V. Cano, D.V. Vich, Diederik P.L. Rousseau, P.N.L. Lens,
M.A. Nolasco, Influence of recirculation over COD and N-NH4
removals from landfill leachate by horizontal flow constructed
treatment wetland, Int. J. Phytorem., 24 (2019) 1–7.
- Q. Xu, G. Siracusa, S. Di Gregorio, Q. Yuan, COD removal
from biologically stabilized landfill leachate using advanced
oxidation processes (AOPs), Process Saf. Environ. Prot.,
120 (2018) 278–285.
- C. Jung, Y. Deng, R. Zhao, K. Torrens, Chemical oxidation for
mitigation of UV-quenching substances (UVQS) from municipal
landfill leachate: Fenton process versus ozonation, Water Res.,
108 (2017) 260–270.
- M.-h. Zhang, H. Dong, L. Zhao, D.-x. Wang, D. Meng, A review
on Fenton process for organic wastewater treatment based
on optimization perspective, Sci. Total Environ., 670 (2019)
110–121.
- L. Dąbek, E. Ozimina, Oxidation of organic contaminants
adsorbed on active ted carbons, Ochr. Środ. Zasob. Nat.,
41 (2009) 427–436 (in Polish).
- K. Barbusiński, Modification of Fenton Reaction Using Calcium
and Magnesium Peroxides, Scientific works GIG, Nr 869,
Katowice, 2006 (in Polish).
- J. Gawdzik, J. Latosińska, M. Żygadło, Application of Fenton for
the landfill leachate treatment, Arch. J. Waste Manage. Environ.
Prot., 14 (2012) 21–26 (in Polish).
- J. Latosińska, J. Muszyńska, J. Gawdzik, Remediation of
Landfill Leachates with the Use of Modified Ashes from
Municipal Sewage Sludge, A. Krakowiak-Bal, M. Vaverkova,
Eds., Infrastructure and Environment, Springer, Cham, 2019,
pp. 136–143.
- J. Latosińska, Influence of temperature and time of sewage
sludge incineration on the mobility of heavy metals, Environ.
Prot. Eng., 43 (2017) 105–122.
- S.B. Mortazavi, A. Sabzali, A. Rezaee, Sequence-Fenton reaction
for decreasing phenol formation during benzene chemical
conversion in aqueous solution, Iran. J. Environ. Health Sci.
Eng., 2 (2005) 62–71.
- N.R. Mohanty, I.W. Wei, Oxidation of 2,4-dinitrotoluene Rusing
Fenton’s reagent: reaction mechanisms and their practical
application, Hazard. Waste Hazard. Mater., 10 (1993) 171–183.
- A. Babuponnusami, K. Muthukumar, A review on Fenton and
improvements to the Fenton process for wastewater treatment,
J. Environ. Chem. Eng., 2 (2014) 557–572.
- H. Zhang, H.J. Choi, C.-P. Huang, Optimization of Fenton
process for the treatment of landfill leachate, J. Hazard. Mater.,
125 (2005) 166–174.
- K. Barbusiński, Intensification of the Wastewater Treatment
Process and Stabilization of Excessive Sludge Using the
Fenton Reagent, Silesian University of Technology, Scientific
Notebooks, 1603, Gliwice, 2004 (in Polish).
- P. Tang, W. Jiang, S. Lu, X. Zhang, Y. Xue, Z. Qiu, Q. Sui,
Enhanced degradation of carbon tetrachloride by sodium
percarbonate activated with ferrous ion in the presence of ethyl
alcohol, Environ. Technol., 40 (2019) 356–364.
- J. Muszyńska, J. Gawdzik, M. Sikorski, The effect of sodium
percabonate dose on the reduction of organic compounds in
landfill leachate, Ecol. Environ. Eng., 86 (2019) 1–5.
- B. Pieczykolan, I. Płonka, K. Barbusiński, Discoloration of
dye wastewater by modified UV-Fenton process with sodium
percabonate, Arch. Civ. Eng. Environ., 4 (2016) 135–140.
- PN-ISO 5667–10:1997 Water Quality, Sampling, Guideline for
Wastewater Sampling, Polish Version.
- PN-ISO 15705:2005 Water Quality, Determination of the
Chemical Oxygen Demand Index (ST-COD), Small-Scale
Sealed-Tube Method.
- PN-EN 1484:1999 Water Analysis, Guidelines for the
Determination of Total Organic Carbon (TOC) and Dissolved
Organic Carbon (DOC), Polish Version.
- PN-EN ISO 10523:2012 Water Quality, Determination of pH.
- PN-EN ISO 11885:2009 Water Quality, Determination of
Selected Elements by the Inductively Coupled Plasma Optical
Emission Spectrometry (ICP-OES) Method.
- PN-EN ISO 15587–1:2005 Water Quality, Digestion for the
Determination of Selected Elements in Water, Part 1: Aqua
Regia Digestion.