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A concept of the gasification plant for selected organic waste

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
It is observed that in the world economy the consumption of the natural resources increases which results in the growth of a stream of municipal and industrial waste. Both of these phenomena belong to the most important civilization problems. One of the potential directions of the waste management should be the recovery of energy from the combustible fraction. One of the possibilities to convert energy from waste into usable power is gasification, i.e. transformation of the municipal waste into syngas. The paper presents a concept of a gasification plant for gasification of selected organic waste. Tests were conducted for selected fractions from the stream of municipal waste. Simulation calculations of the gasification process were performed with the help of software ChemCAD 7.0.0.
Rocznik
Strony
123--129
Opis fizyczny
Bibliogr. 22 poz.
Twórcy
autor
  • PhD Eng; Department of Technologies and Installations for Waste Management, Faculty of Energy and Environmental Engineering, The Silesian University of Technology, Konarskiego18, 44-100 Gliwice, Poland
Bibliografia
  • [1] Malinowski, M., Krakowiak-Bal, A., Sikora, J., Woźniak, A. (2009) Rate of municipal waste production in aspect of communes’ business types in malopolska region. Infrastructure and ecology of rural areas, 9, 181-191.
  • [2] Central Statistical Office (CSO). Environment (2017). Retrieved from file:///C:/Users/Dom/Downloads/ochrona_srodowiska_2017.pdf (accessed on 30.11.2017).
  • [3] Directive 2008/98/EC of the European Parliament and of the Council of 19 November 2008 on waste and repealing certain Directives (Text with EEA relevance)
  • [4] Statistical theme Environment on waste. Retrieved from http://ec.europa.eu/eurostat/statisticsexplained/index.php?title=Waste_statistics (accessed on 11.06.2018).
  • [5] Municipal infrastructure in 2017. Statistical information and elaborations. Retrieved from https://stat.gov.pl/download/gfx/portalinformacyjny/pl/defaultaktualnosci/5492/3/15/1/infrastruktura_komunalna_w_2017_r.pdf.
  • [6] Municipal infrastructure in 2015. Statistical information and elaborations. Retrieved from https://stat.gov.pl/files/gfx/portalinformacyjny/pl/defaultaktualnosci/5492/3/13/1/infrastruktura_komunalna_w_2015.pdf.
  • [7] Generowicz, A., Kowalski, Z., Banach, M., et al. (2012). A Glance at the World, Waste Management, 32(2), 349-350.
  • [8] Czop, M. (2017) Characteristics of selected fuels from wastes in respect to their energetic use. Przem. Chem., 96(8), 1666-1668, DOI: 10.15199/62.2017.8.6.
  • [9] Gaska, K., Generowicz A., Zimoch I., Ciuła J., Siedlarz D. (2018). A GIS based graph oriented algorithmic model for poly-optimization of waste management system. Architecture Civil Engineering Environment, 11(4), 151-159.
  • [10] Pikoń, K. (2008). Recultivation of mining waste dumps - environmental aspects. 8th International Scientific Conference on Modern Management of Mine Producing, Geology and Environmental Protection, Sofia, Bułgaria, 18-20 June 2008, 773-780.
  • [11] Bogacka, M.; Pikoń, K.(2014). Best practice in environmental impact evaluation based on LCA - methodologies review, 14th International Multidisciplinary Scientific Geoconference (SGEM), Albena, Bulgaria, 17-26 June 2014, 101-108.
  • [12] Czop, M; Pikoń, K. (2016). Use Tests of physicochemical properties of fuel and ballast fractions from waste processing installations. Architecture Civil Engineering Environment, 9(3), 113-122.
  • [13] Kosa B., Kicińska A., (2016). Coal from the waste disposal site of the Siersza mine (Trzebinia, Poland) and its properties as a possible alternative fuel. E3S Web of Conferences, Volume: 10 Article Number: UNSP 00039, DOI: 10.1051/e3sconf/20161000039.
  • [14] Molino, A.; Larocca, V.; Chianese, S.; Musmarra, D. (2018). Biofuels Production by Biomass Gasification: A Review, Energies, 11(4), 811, 2-31, DOI:.org/10.3390/en11040811.
  • [15] Al-Salem, S.M.; Lettieri, P.; Baeyens, J. (2009). Recycling and recovery routes of plastic solid waste (PSW): A review. Waste Management, 29(10), 2625-2643, DOI:10.1016/j.wasman.2009.06.004.
  • [16] Kosowska-Golachowska, M.; Kijo-Kleczkowska, A.; Luckos, A.; et al. (2016). Oxy-combustion of biomass in a circulating fluidized bed, Archives of Thermodynamics, 37(1), 17-30, DOI: 10.1515/aoter2016-0002.
  • [17] Kicińska A., Mamak M., (2017). Health risks associated with municipal waste combustion on the example of Laskowa commune (Southern Poland). Human and Ecological Risk Assessment, 23(8): 2087-2096, DOI: 10.1080/10807039.2017.1364131.
  • [18] Czop, M.; Bogacka, M. (2015). Polyolefin waste to energy processes. Ecology, economics, education and legislation, 15th International Multidisciplinary Scientific GeoConference SGEM, Albena, Bulgaria, 18-24 June 2015.
  • [19] Basu, P. Biomass gasification and pyrolysis. Practical design and theory. Publisher: Academic Press, 2010, eBook ISBN: 9780123965431.
  • [20] Czop, M; Pikoń, K. (2017). Use of casing soil from spent mushroom compost for energy recovery purposes in Poland. Architecture Civil Engineering Environment, 10(1), 95-102.
  • [21] Eriksson, O. (2017) Energy and Waste Management, Energies, 10(7), 1072; DOI: 10.3390/en10071072.
  • [22] Czop, M. (2016). Recovery of energy by gasification of plastic wastes, Przem. Chem., 95(8), 1472-1474, DOI: 10.15199/62.2016.8.6.
Uwagi
PL
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-2fffbc63-9ab1-4dd8-8875-66cea6cb37fd
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