INFORMAZIONI SU QUESTO ARTICOLO

Cita

[1] SWEEP-NET, Country report on the solid waste management in JORDAN. 2014. Search in Google Scholar

[2] DEPARTMENT OF STATISTICS, Statistical Yearbook of Jordan 2019. Department of Statistics, Jordan, 2019. Search in Google Scholar

[3] AL-NAWAISEH, A. R. - ALJBOUR, S. H. - AL-HAMAIEDEH, H. - EL-HASAN, T. - HEMIDAT, S. -NASSOUR, A.: Composting of Organic Waste: Sustainable Alternative Solution for Solid Waste Management in Al-Karak Governorate/Jordan. Jordan Journal of Civil Engineering, Vol. 15, 2021, pp. 363-377. Search in Google Scholar

[4] AL-HAMAMRE, Z. - SAIDAN, M. - HARARAH, M. - RAWAJFEH, K. - ALKHASAWNEH, H. E. - ALSHANNAG, M.: Wastes and biomass materials as sustainable-renewable energy resources for Jordan. Renewable and Sustainable Energy Reviews, Vol. 67, 2017, pp. 295–314.10.1016/j.rser.2016.09.035 Search in Google Scholar

[5] KUMAR, A. - SAMADDER, S. R.: Performance evaluation of anaerobic digestion technology for energy recovery from organic fraction of municipal solid waste: A review. Energy, Vol. 197, 2020, p. 117253.10.1016/j.energy.2020.117253 Search in Google Scholar

[6] MOHAN, S. V. Waste to renewable energy: a sustainable and green approach towards production of biohydrogen by acidogenic fermentation. Sustainable biotechnology, Springer 2010, pp. 129–164.10.1007/978-90-481-3295-9_7 Search in Google Scholar

[7] ALJBOUR, S. H. - EL-HASAN, T. - AL-HAMIEDEH, H. - HAYEK, B. - ABU-SAMHADANEH, K.: Anaerobic co-digestion of domestic sewage sludge and food waste for biogas production: A decentralized integrated management of sludge in Jordan. Journal of Chemical Technology and Metallurgy, Vol. 56, 2021, pp. 1030–1038. Search in Google Scholar

[8] ALJBOUR, S. H. - AL-HAMAIEDEH, H. - EL-HASAN, T. - HAYEK, B. O. - ABU-SAMHADANEH, K. - AL-MOMANY, S. - ABURAWAA, A.: Anaerobic co-digestion of domestic sewage sludge with food waste: incorporating food waste as a co-substrate under semi-continuous operation. Journal of Ecological Engineering, Vol. 22, 2021, pp. 1–10.10.12911/22998993/137442 Search in Google Scholar

[9] ALJBOUR, S. H.: Catalytic pyrolysis of olive cake and domestic waste for biofuel production. Energy Sources, Part A. Recovery, Utilization, and Environmental Effects, Vol. 40, 2018, pp. 2785–2791.10.1080/15567036.2018.1511649 Search in Google Scholar

[10] ALJBOUR, S. H. - KAWAMOTO, K.: Bench-scale gasification of cedar wood–Part I: Effect of operational conditions on product gas characteristics. Chemosphere, Vol. 90, 2013, pp. 1495–1500.10.1016/j.chemosphere.2012.08.029 Search in Google Scholar

[11] ALJBOUR, S. H. - KAWAMOTO, K.: Bench-scale gasification of cedar wood–Part II: Effect of operational conditions on contaminant release. Chemosphere, Vol. 90, 2013, pp. 1501–1507.10.1016/j.chemosphere.2012.08.030 Search in Google Scholar

[12] HEMIDAT, S. - SAIDAN, M. - AL-ZU’BI, S. - IRSHIDAT, M. - NASSOUR, A. - NELLES, M.: Potential utilization of RDF as an alternative fuel to be used in cement industry in Jordan. Sustainability, Vol. 11, 2019, pp. 5819.10.3390/su11205819 Search in Google Scholar

[13] DEPARTMENT OF STATISTICS, Estimated Population of the Kingdom by Municipality and Sex, at End-year 2019. Department of Statisitics, Jordan, 2019. Search in Google Scholar

[14] MULAY, B. N. - REDDY, K. R.: Study of Biofilter Planted with Basil for Removal of Ammonia in Aquaponic Water. Civil and Environmental Engineering, Vol. 17, Iss.1, 2021, pp. 242–251.10.2478/cee-2021-0025 Search in Google Scholar

[15] YOUNES, M. K. - NOPIAH, Z. M. - NADI, B. - BASRI, N. E. A. - BASRI, H. - MOHAMMED, F. M. -SHATANAWI, K.: Investigation of solid waste characterization, composition and generation using management of environmental systems in Zarqa, Jordan. Asian Journal of Chemistry, Vol. 25, 2013, p. 9523.10.14233/ajchem.2013.15057 Search in Google Scholar

[16] BATARSEH, E. - HARARAH, M. A. - HADDAD, A.: Analysis of Refuse Derived Fuel Utilization from Aqaba Municipal Solid Waste. Jordan Journal of Civil Engineering, Vol. 12, 2018, pp. 245–253. Search in Google Scholar

[17] SAKRI, A. - AOUABED, A. - NASSOUR, A. - NELLES, M.: Refuse-derived fuel potential production for co-combustion in the cement industry in Algeria. Waste Management and Research, Vol. 2021, p. 0734242X20982277.10.1177/0734242X20982277 Search in Google Scholar

[18] REZA, B. - SOLTANI, A. - RUPARATHNA, R. - SADIQ, R. - HEWAGE, K.: Environmental and economic aspects of production and utilization of RDF as alternative fuel in cement plants: A case study of Metro Vancouver Waste Management. Resources Conservation and Recycling, Vol. 81, 2013, pp. 105–114.10.1016/j.resconrec.2013.10.009 Search in Google Scholar

[19] GALLARDO, A. - CARLOS, M. - BOVEA, M. - COLOMER, F. J. - ALBARRÁN, F.: Analysis of refuse-derived fuel from the municipal solid waste reject fraction and its compliance with quality standards. Journal of Cleaner Production, Vol. 83, 2014, pp. 118–125.10.1016/j.jclepro.2014.07.085 Search in Google Scholar

[20] KARA, M. - GÜNAY, E. - TABAK, Y. - DURGUT, U. - YıLDıZ, Ş. - ENC, V.: Development of refuse derived fuel for cement factories in Turkey. Combustion Science and Technology, Vol. 183, 2010, pp. 203–219.10.1080/00102202.2010.512580 Search in Google Scholar

[21] ZHAO, L. - GIANNIS, A. - LAM, W. Y. - LIN, S. X. - YIN, K. - YUAN, G. A. - WANG, J. Y.: Characterization of Singapore RDF resources and analysis of their heating value. Sustainable Environment Research, Vol. 26, 2016, pp. 51–54.10.1016/j.serj.2015.09.003 Search in Google Scholar

[22] SPRENGER, C. J.: Classification and Densification of Municipal Solid Waste for Biofuels Applications. Chemical and Biological Engineering, University of Saskatchewan, Canada, 2017. Search in Google Scholar

[23] KIMAMBO, O. N. - SUBRAMANIAN, P.: Energy efficient refuse derived fuel (RDF) from municipal solid waste rejects: a case for Coimbatore. International Journal of Environment, Vol. 3, 2014, pp. 205–215.10.3126/ije.v3i2.10530 Search in Google Scholar

[24] AZAM, M. - JAHROMY, S. S. - RAZA, W. - JORDAN, C. - HARASEK, M. - WINTER, F.: Comparison of the combustion characteristics and kinetic study of coal, municipal solid waste, and refuse-derived fuel: Model-fitting methods. Energy Science and Engineering, Vol. 7, 2019, pp. 2646–2657.10.1002/ese3.450 Search in Google Scholar

[25] INFIESTA, L. R. - FERREIRA, C. R. N. - TROVÓ, A. G. - BORGES, V. L. - CARVALHO, S. R.: Design of an industrial solid waste processing line to produce refuse-derived fuel. Journal of Environmental Management, Vol. 236, 2019, pp. 715–719.10.1016/j.jenvman.2019.02.017 Search in Google Scholar

[26] KHAIRIL - IRWANSYAH - EDHY, H. S. - RIZAL, S., Fundamental study on the carbonization characteristics of low rank coal under low temperature and its application on traditional blacksmith. Advanced Materials Research, Trans Tech Publ, 2012, pp. 615–618.10.4028/www.scientific.net/AMR.576.615 Search in Google Scholar

[27] MA, W. - HOFFMANN, G. - SCHIRMER, M. - CHEN, G. - ROTTER, V. S.: Chlorine characterization and thermal behavior in MSW and RDF. Journal of Hazardous Materials, Vol. 178, 2010, pp. 489–498.10.1016/j.jhazmat.2010.01.108 Search in Google Scholar

[28] RADA, E. C. - RAGAZZI, M.: RDF/SRF evolution in the MSW sector: Coexistence of BMT and selective collection. International Journal of Sustainable Development and Planning, Vol. 10, 2015, pp. 109–119.10.2495/SDP-V10-N1-109-119 Search in Google Scholar

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