References
- G. Borowski, Application of vitrification method for the
disposal of municipal sewage sludge, Annu. Set Environ. Prot.,
15 (2013) 575–583.
- K. Wystalska, J. Sobik-Szołtysek, J. Bień, Vitrification and
devitrification of ash after sewage sludge combustion, Annu.
Set Environ. Prot., 15 (2013) 181–191.
- J.A. Cusidó, L.V. Creades, Environmental effects of using clay
bricks produced with sewage sludge: leachability and toxicity
studies, Waste Manage., 32 (2012) 1202–1208.
- J.-S. Li, Q. Xue, L. Fang, C.S. Poon, Characteristics and metal
leachability of incinerated sewage sludge ash and air pollution
control residues from Hong Kong evaluated by different
methods, Waste Manage., 64 (2017) 161–170.
- W.Y. Lin, W.C. Ng, B.S.E. Wong, S.L. Teo, G.D. Sivananthan,
G.H. Baeg, Y.S. Ok, C.H. Wang, Evaluation of sewage sludge
incineration ash a potential land reclamation material, J. Hazard.
Mater., 357 (2018) 63–72.
- L. Fang, L. Jiang-shan, M.Z. Guo, C.R. Cheeseman, D.C.W. Tsang,
S. Donatello, C.S. Poon, Phosphorus recovery and leaching of
trace elements from incinerated sewage sludge ash (ISSA),
Chemosphere, 193 (2018) 278–287.
- Q. Zhang, J. Hu, D.-J. Lee, Y. Chang, Y.-J. Lee, Sludge treatment:
current research trends, Bioresour. Technol., 243 (2017)
1159–1172.
- R. Kleemann, J. Chenoweth, R. Clift, S. Morse, P. Pearce,
D. Saroj, Comparison of phosphorus recovery from incinerated
sewage sludge ash (ISSA) and pyrolysed sewage sludge char
(PSSC), Waste Manage., 60 (2016) 201–210.
- Y. Pan, Z. Wu, J. Zhou, J. Zhao, X. Ruan, J. Liu, G. Qian, Chemical
characteristic and risc assessment of typical municipal solid
waste incineration (MSWI) fly ash in China, J. Hazard. Mater.,
261 (2013) 269–276.
- M. Cobo, A. Gálvez, J.A. Conesa, C. Montes de Correa,
Characterization of fly ash from a hazardous waste incinerator
in Medellin, Colombia, J. Hazard. Mater., 168 (2009) 1223–1232.
- D. Vamvuka, J. Hahladakis, D. Pentari, Leaching of toxic
elements from lignite and agroresidue ashes in cultivated soils
of Crete, Energy Fuels, 19 (2005) 807–812.
- R. Weltens, K. Deprez, L. Michiels, Validation of Microtox as
a first screening tool for waste classification, Waste Manage.,
34 (2014) 2427–2433.
- P. Hennebert, Proposal of concentration limits for determining
the hazard property HP 14 for waste Rusing ecotoxicological
tests, Waste Manage., 74 (2018) 74–85.
- Polish Norm, PN-EN 12457-2, Characterization of Waste –
Leaching – Compliance Test for Leaching of Granular Waste
and Sludges – Part 2: One Stage Batch Test at a Liquid to Solid
Ratio of 10 l/kg for Materials with Particle Size below 4 mm
(Without or With Size Reduction).
- V. Tsiridis, P. Samaras, A. Kungolos, G.P. Sakellaropoulos,
Application of leaching tests for toxicity evaluation of coal fly
ash, Environ. Toxicol., 21 (2006) 409–416.
- USEPA, Method 1311, Toxicity Characteristic Leaching
Procedure (TCLP), Publication SW 846: Test Methods for
Evaluating Solid Waste, Physical/Chemical Methods, 1992.
Available at: www.epa.gov/epaoswer/hazwaste/test/pdfs/1311.
pdf.
- Regulation of the Minister of Economy of 16 July 2015 on the
Acceptance of Waste for Landfill, Journal of Laws 2015 No. 0,
Item 1277 (in Polish).
- A.V. Filgueiras, I. Lavilla, C. Bendicho, Chemical sequential
extraction for metal partitioning in environmental solid
samples, J. Environ. Monit., 4 (2002) 823–857.
- K. Yin, W.P. Chan, X. Dou, F. Ren, V.W.-C. Chang, Measurements,
factor analysis and modeling of element leaching from
incineration bottom ashes for quantitative component effects,
J. Cleaner Prod., 165 (2017) 477–490.
- V. Tsiridis, M. Petala, P. Samaras, A. Kungolos, G.P. Skellaropoulos,
Environmental hazard assessment of coal fly ashes
using leaching and ecotoxicity tests, Ecotoxicol. Environ. Saf.,
84 (2012) 212–220.
- V. Tsiridis, M. Petala, P. Samaras, G.P. Skellaropoulos, Evaluation
of interaction between soil and coal fly ash leachates using
column percolation tests, Waste Manage., 43 (2015) 255–263.
- S. Stiernström, A. Enell, O. Wik, K. Hemström, M. Breitholtz,
Influence of leaching conditions for ecotoxicological classification
of ash, Waste Manage., 34 (2014) 421–429.
- S. Parvez, C. Venkataraman, S. Mukherji, Toxicity assessment
of organic contaminants: evaluation of mixture effects in model
industrial mixtures using 2n full factorial design, Chemosphere,
73 (2008) 1049–1055.
- R.J. Slack, J.R. Gronow, N. Voulvoulis, Household hazardous
waste in municipal landfills: contaminants in leachate, Sci. Total
Environ., 337 (2005) 119–137.
- G. Skodras, M. Prokopidou, G.P. Sakellaropoulos, Leaching
and toxicity behavior of coal-biomass waste cocombustion
ashes, Environ. Toxicol., 21 (2006) 317–323.
- A. Kuczyńska, L. Wolska, J. Namieśnik, Application of biotests
in environmental research, Crit. Rev. Anal. Chem., 35 (2005)
135–154.
- N. Lapa, R. Barbosa, M.H. Lopes, B. Mendes, P. Abelha, I.
Gulyurtlu, J.S. Oliveira, Chemical and ecotoxicological characterization
of ashes obtained from sewage sludge combustion in
fluidized-bed reactor, J. Hazard. Mater., 147 (2007) 175–183.
- K. Wadhia, K.C. Thompson, Low-cost ecotoxicity testing of
environmental samples using microbiotests for potential
implementation of the Water Framework Directive, Trends
Anal. Chem., 26 (2007) 300–307.
- M.K. Banks, K.E. Schultz, Comparison of plants for germination
toxicity tests in petroleum-contaminated soils, Water Air Soil
Pollut., 167 (2005) 211–219.
- J. Römbke, T. Moser, H. Moser, Ecotoxicological characterization
of 12 incineration ashes using 6 laboratory tests, Waste
Manage., 29 (2009) 2475–2482.
- G. Rosen, A. Osorio-Robayo, I. Rivera-Duarte, D. Lapota,
Comparison of bioluminescent dinoflagellate (QwikLite)
and Bacterial (Microtox) rapid bioassays for the detection of
metal and ammonia toxicity, Arch. Environ. Contam. Toxicol.,
54 (2008) 606–611.
- G. Persoone, B. Marsalek, I. Bilinova, A. Törökne, D. Zarina,
L. Manusadzianas, G. Nalecz-Jawecki, L. Tofan, N. Stepanova,
L. Tothova, B.A. Kolar, A practical and user friendly toxicity
classification system with microbiotests for natural waters and
wastewaters, Environ. Toxicol., 18 (2003) 395–402.
- L. Wolska, A. Sagajdakow, A. Kuczyńska, J. Namieśnik,
Application of ecotoxicological studies in integrated environmental
monitoring: possibilities and problems, Trends Anal.
Chem., 26 (2007) 332–344.
- K. Deprez, J. Robbens, I. Nobels, C. Vanparys, G. Vanermen,
K. Tirez, L. Michiels, R. Weltens, Discriset, A battery of tests for
fast waste classification – application of tests on waste extracts,
Waste Manage., 32 (2012) 2218–2228.
- S. Manzo, F. De Nicola, F. De Luca Picione, G. Maisto,
A. Alfani, Assessment of the effects of soil PAH accumulation
by a battery of ecotoxicological tests, Chemosphere, 71 (2008)
1937–1944.
- J. Sobik-Szołtysek, K. Wystalska, A. Grobelak, Effect of addition
of sewage sludge andcoal sludge on bioavailability of selected
metals in the waste from the zinc and lead industry, Environ.
Res., 156 (2017) 588–596.
- I. Czerniawska-Kusza, G. Kusza, The potential of the
Phytotoxkit microbiotest for hazard evaluation of sediments
in eutrophic freshwater ecosystems, Environ. Monit. Assess.,
179 (2011) 113–121.
- A. Trojanowska, Application of Phytotoxkit microbiotest for
hazard assessment of bottom sediments in the eutrophic dam
reservoir, Limnol. Rev., 10 (2010) 173–180.
- J. Mankiewicz-Boczek, G. Nałęcz-Jawecki, A. Drobniewska,
M. Kaza, B. Sumorok, K. Izydorczyk, M. Zalewski, J. Sawicki,
Application of a microbiotests battery for complete toxicity
assessment of rivers, Ecotoxicol. Environ. Saf., 71 (2008)
830–836.
- H. Ko, K. Kim, H. Kim, C. Kim, C.M. Umeda, Evaluation of
compost parameters and heavy metals contents in composts
made from animals mature, Waste Manage., 28 (2008) 813–820.
- H. Miaomiao, L. Wenhong, L. Xinqiang, W. Donglei, T. Guangming,
Effect of composting process on phytotoxicity and
speciation of copper, zinc and lead in sewage sludge and swine
manure, Waste Manage., 29 (2009) 590–597.
- M. Gao, F. Liang, A. Yu, B. Li, L. Yang, Evaluation of stability
and maturity during forced-aeration composting of chicken
manure and sawdust at different C/N ratio, Chemosphere,
78 (2010) 614–619.
- K.A. Gyekye, An assessment of toxic in urban soils using garden
cress (Lepidium sativum) in Vasileostrovsky Ostrov and Elagin
Ostrov, Saint Petersburg, Russia, 2013, J. Geogr. Geol., 5 (2013)
63–70.
- V.L. Pavel, D.L. Sobariu, M. Diaconu, F. Stătescu, M. Gavrilescu,
Effects of heavy metals on Lepidium sativum germination and
growth, Environ. Eng. Manage. J., 12 (2013) 727–733.
- S. Parvez, C. Venkataraman, S. Mukherji, A review on
advantages of implementing luminescence inhibition test (Vibrio
fischeri) for acute toxicity prediction of chemicals, Environ. Int.,
32 (2006) 265–268.
- A. Baran, M. Tarnawski, Phytotoxkit/Phytotestkit and
Microtox® as tools for toxicity assessment of sediments,
Ecotoxicol. Environ. Saf., 98 (2013) 19–27.
- E.H. Jho, J. Im, K. Yang, Y.J. Kim, K. Nam, Changes in soil toxicity
by phosphate-aided soil washing: Effect of soil characteristics,
chemical forms of arsenic, and cations in washing solutions,
Chemosphere, 119 (2015) 1399–1405.
- J.M. Ribò, K.L. Kaiser, Photobacterium phosphoreum toxicity
bioassay. Test procedures and applications, Environ. Toxicol., 2
(2006) 305–323.
- J. Jensen, M. Mesman, Ecological Risk Assessment of
Contaminated Land. Decision Support for Site Specific Investigations,
RIVM Report 711701047, 2006, p. 138.
- C.A. Ajuzieogu, L.O. Odokuma, C.C. Blaise, Toxicity assessment
of produced water using microtox rapid bioassay, South Asian
J. Res. Microbiol., 1 (2018) 1–9.
- S. Stiernström, K. Hemstrom, O. Wik, G. Carlsson, B.-E. Bengtsson,
M. Breitholtz, An ecotoxicological approach for hazard
identification of energy ash, Waste Manage., 31 (2011) 342–352.
- B. Kołwzan, W. Kołwzan, A.M. Dziubek, G. Pasternak,
Statistical approach to assessing groundwater pollution from
gasworks, Environ. Prot. Eng., 37 (2011) 119–126.
- R. Barbosa, N. Lapa, D. Boavida, H. Lopes, I. Gulyurtlu,
B. Mendes, Co-combustion of coal and sewage sludge: chemical
and ecotoxicological properties of ashes, J. Hazard. Mater.,
170 (2009) 902–909.
- I. Walter, F. Martinez, V. Cala, Heavy metal speciation and
phytotoxic effects of Tyree representative sewage sludge for
agricultural uses, Environ. Pollut., 139 (2006) 507–514.
- S. Ren, P.D. Frymier, Toxicity of metals and organic chemicals
evaluated with bioluminescence assays, Chemosphere, 58 (2005)
543–550.
- F. Conforti, G. Ioele, G.A. Statti, M. Marrelli, G. Ragno,
F. Menichini, Antiproliferative activity against human tumor
cell lines and toxicity test on Mediterranean dietary plants,
Food Chem. Toxicol., 46 (2008) 3325–3332.
- S. Girotti, E.N. Ferri, M.G. Fumo, E. Maiolini, Monitoring of
environmental pollutants by bioluminescent bacteria, Anal.
Chim. Acta, 608 (2008) 2–29.
- S. Stiernström, O. Wik, D. Bendz, Evaluation of frameworks for
ecotoxicological hazard classification of waste, Waste Manage.,
58 (2016) 14–24.
- D. François, C. Criado, Monitoring of leachate at a test road
using treated fly ash from municipal solid waste incinerator,
J. Hazard. Mater., B, 139 (2007) 543–549.
- P. Gong, B.M. Wilke, E. Strozzi, S. Fleischmann, Evaluation
and refinement of a continuous seed’s germination and elary
seedling growth test use in the ecotoxicological assessment of
soil, Chemosphere, 44 (2001) 491–500.
- M. Gouider M. Feki S. Sayadi, Bioassay and use in irrigation
of untreated and treated wastewaters from phosphate fertilizer
industry, Ecotoxicol. Environ. Saf., 73 (2010) 932–938.
- A.D. Khan, M. Libby, D. Winnick, J. Palmer, M. Sumarah,
M.B. Ray, S.M. Macfie, Uptake and phytotoxic effect of
benzalkonium chlorides in Lepidium sativum and Lactuca sativa,
J. Environ. Manage., 206 (2018) 490–497.
- E.J. Calabrese, L.A. Baldwin, Defining hormesis, Hum. Exp.
Toxicol., 21 (2002) 91–97.
- K. Gondek, A. Baran, M. Kopec, The effect of low-temperature
transformation of mixtures of sewage sludge and plant
materials on content, leachability and toxicity of heavy metals,
Chemosphere, 117 (2014) 33–39.