Page 220 - AJWEP-v22i2
P. 220

Melnik, et al.

                   rubber waste.  Transp Res Part  D Transp Environ.    possibility  of  car  tires  recycling  as  part  of  coal-water
                   2021;98:102987.                                      composites. J Environ Chem Eng. 2020;9(1):104741.
                   doi: 10.1016/j.trd.2021.102987                       doi: 10.1016/j.jece.2020.104741
                2.  Klimishnina M. State and prospects of development   14.  Vambol  S,  Vambol  V,  Kondratenko  O,  Koloskov  V,
                   of tire recycling technologies and their environmental   Suchikova Y. Substantiation of expedience of application
                   impact.  Technol  Audit Prod Res.  2016;6(2(32)):    of high-temperature utilization of used tires for liquefied
                   57-63.                                               methane  production.  J  Achiev Mater Manuf Eng.
                   doi: 10.15587/2312-8372.2016.86810                   2018;87:77-84.
                3.  Khudyakova  T,  Shmidt  A,  Shmidt  S.  Sustainable      doi: 10.5604/01.3001.0012.2830
                   development  of  smart  cities  in  the  context  of  the   15.  Nie SQ, Chen MQ, Li QH. Evaluation on hydrothermal
                   implementation of the tire recycling program. J Entrep   gasification of waste tires based on chemical equilibrium
                   Sustain Issues. 2020;8(2):698-715.                   analysis. Int J Hydrogen Energy. 2021;47(3):1435-1448.
                   doi: 10.9770/jesi.2020.8.2(42)                       doi: 10.1016/j.ijhydene.2021.10.233
                4.  Rybalova O, Artemiev S, Sarapina M, et al. Development   16.  Subatkevičienė  K,  Tetsman  I,  Gargasas  J.  Research
                   of  methods  for  estimating  the  environmental  risk  of   of  wastewater  treatment  with  sorbents.  Sci Future
                   degradation of the surface water state. Eastern-Europ J   Lithuania. 2019;11:1-6.
                   Enterprise Technol. 2018;2:4-17.                     doi: 10.3846/mla.2019.7086
                   doi: 10.15587/1729-4061.2018.127829              17.  Sivaraman  S,  Anbuselvan  NM,  Venkatachalam  P,
                5.  Loboichenko  VM,  Vasyukov  AE,  Tishakova  TS.     Shanmugam  SR,  Selvasembian  R.  Waste  tire  particles
                   Investigations  of  mineralization  of  water  bodies  on   as  efficient  materials  towards  hexavalent  chromium
                   the example of river waters of ukraine. Asian J Water   removal:   Characterisation,   adsorption   behaviour,
                   Environ Pollut. 2017;14:37-41.                       equilibrium,  and  kinetic  modelling.  Chemosphere.
                   doi: 10.3233/AJW-170035                              2022;295:133797.
                6.  Vasenko  A,  Rybalova  O,  Kozlovskaya  O.  A  study  of      doi: 10.1016/j.chemosphere.2022.133797
                   significant factors affecting the quality of water in the   18.  Rybalova  O,  Bryhada  O,  Ilinskyi  О,  Bondarenko  O,
                   oskil  river  (Ukraine).  Eastern-Europ J Enterprise   Zolotarova S. Phytoremediation methods for wastewater
                   Technol. 2016;3:48-55.                               treatment. Dan Sci J. 2020;41:10-13.
                   doi: 10.15587/1729-4061.2016.72415               19.  Hu  H,  Li  X,  Wu  S,  Yang  C.  Sustainable  livestock
                7.  Torosian  L,  Chernyaev  I.  Method  of  creating  control   wastewater  treatment  via  phytoremediation:  Current
                   framework for environmental safety of car tires. Transp   status  and  future  perspectives.  Bioresour Technol.
                   Res Procedia. 2020;50:689-697.                       2020;315:123809.
                   doi: 10.1016/j.trpro.2020.10.081                     doi: 10.1016/j.biortech.2020.123809
                8.  Shaker A, Mohammed F. Benefits and challenges of waste   20.  Wei W, Tong J, Hu BX. Study on ecological dynamic
                   recycling,  a  field  study  in  al-diwaniyah  governorate.   model for phytoremediation of farmland drainage water.
                   Al-Qadisiyah J Agric Sci. 2021;11(2):85-108.         J Hydrol. 2019;578:124026.
                   doi: 10.33794/qjas.2021.170228                       doi: 10.1016/j.jhydrol.2019.124026
                9.  Dębska  B,  Lichołai  L,  Miąsik  P.  Assessment  of  the   21.  Mahmedov  VH,  Zakharchenko  MA. Manual for the
                   applicability of sustainable epoxy composites containing   use of water bioengineering methods for the treatment of
                   waste  rubber  aggregates  in  buildings.  Buildings.   non-mineralized contaminated waters of the agricultural
                   2019;9(2):31.                                        sector of Ukraine. 1993; 20-24.
                   doi: 10.3390/buildings9020031                    22.  Matsak  A,  Tsytlishvili  K,  Rybalova  O,  Artemiev  S,
                10.  Plewa A.  Use  of  crumb  rubber  from  used  car  tires  in   Romin A, Chynchyk O. Method of agricultural sewage
                   mineral asphalt mixes. Inż Ekol. 2014;40:217-227.    water purification at troughs and a biosorption bioreactor.
                   doi: 10.12912/2081139X.84                            Eastern Europ J Enterp Technol. 2018;5(10(95)):15-24.
                11.  Chen B, Zheng D, Xu R, et al. Disposal methods for used      doi: 10.15587/1729-4061.2018.144138
                   passenger car tires: One of the fastest growing solid wastes   23.  Zakharchenko  MA,  Ryzhykova  IA.  Perekhoplennia  ta
                   in China. Green Energy Environ. 2021;7:1298-1309.    Ochyshchennia  Poverkhnevoho  Stoku  za  dopomohoiu
                   doi: 10.1016/j.gee.2021.02.003                       Sporud  Fitoremediatsii.  In:  V  Mizhnarodna  Naukovo-
                12.  Shahi  A,  Dwivedi  C,  Manjare  S.  Experimental  and   Praktychna   Konferentsiia   Ekolohichna   bezpeka:
                   theoretical investigation on pyrolysis of various sections   Problemy i Shliakhy Vyrishennia: Zb. nauk. st. U 2-kh t.
                   of  the  waste  tire  and  its  components.  Chem Eng  Res   Vol. 2; 2008. p. 298-303.
                   Design. 2022;179:66-76.                          24.  Akansha  J,  Nidheesh  PV,  Gopinath  A,  Anupama  KV,
                   doi: 10.1016/j.cherd.2021.12.022                     Kumar  MS.  Treatment  of  dairy  industry  wastewater
                13.  Kuznetsov  GV,  Syrodoy  SV,  Purin  MV,  Zenkov  AV,   by   combined   aerated   electrocoagulation   and
                   Gvozdyakov  DV,  Larionov  KB.  Justification  of  the   phytoremediation   process.   Chemosphere.   2020;



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