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Torrefaction of composite biofuel in the atmosphere of its own gaseous environment

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Torrefied pellets of composite fuel made from a mixture (1:1) of pine wood with lowland peat and pine wood were studied by TGA and DTA methods. Torrefaction was carried out at atmospheric pressure in a gaseous environment, which was formed in a limited space during the partial thermal decomposition of organic substances of fuel. An increase in the torrefaction temperature from 250°C to 290°C leads to an increase in the degree and temperature range of fuel decomposition. The presence of wood in the composite fuel has a positive effect on the results of torrefaction: the heat of thermal decomposition increases, ash content and hydrophilicity decrease. The method of torrefaction without the use of inert gases has shown its effectiveness and the possibility of application in the production of torrefied fuel.
Rocznik
Strony
75--82
Opis fizyczny
Bibliogr. 20, rys., tab., wykr.
Twórcy
  • Institute of Engineering Thermophysics of National Academy of Sciences of Ukraine, 2a, Marii Kapnist Str., Kyiv, 03057, Ukraine
  • Institute of Engineering Thermophysics of National Academy of Sciences of Ukraine, 2a, Marii Kapnist Str., Kyiv, 03057, Ukraine
  • Institute of Engineering Thermophysics of National Academy of Sciences of Ukraine, 2a, Marii Kapnist Str., Kyiv, 03057, Ukraine
Bibliografia
  • [1] Instruktsiia iz zastosuvannia Klasyfikatsii zapasiv i resursiv korysnykh kopalyn derzhavnoho fondu nadr do torfovykh rodovyshch, zatverdzhena nakazom Derzhavnoi komisii Ukrainy po zapasakh korysnykh kopalyn pry Derzhavnomu komiteti pryrodnykh resursiv Ukrainy vid 25.10.2004 No 224, available: https://zakon.rada.gov.ua/laws/show/z1418-04#Text.
  • [2] Mykhailyk V.A., Snezhkin Yu.F., Korinchuk D.M., 2014, Termichne rozkladannia hranul palyva na osnovi torfu ta derevyny. Promyslova teplotekhnika. 36(2), pp. 11-19.
  • [3] Tumuluru J.S., Sokhansanj S., Hess J.R., Wright C.T, Boardman R.D., 2011, A review on biomass torrefaction process and product properties for energy applications. Industrial Biotechnology. 7(5), pp. 384-401. https://doi.org/10.1089/ind.2011.7.384.
  • [4] Granados Morales D., 2017, Studies of the Torrefaction of Sugarcane Bagasse and Poplar Wood, thesis. Universidad Nacional de Colombia, Sede Medellín Facultad de Minas, Escuela de Procesos y Energía.
  • [5] Maryandyishev P.A., Popova E.I., Chernov A.A., Lyubov V.K., 2016, Izotermicheskoe issledovanie drevesnogo topliva i ego organicheskih komponentov. Vestnik Cherepovetskogo gosudarstvennogo universiteta. 2, pp. 15-18.
  • [6] Torf. Wikipedia, the free encyclopedia, available: https://uk.wikipedia.org/wiki/%D0%A2%D0%BE%D1%80%D1%84.
  • [7] Shafizadeh F., 1985, Pyrolytic reactions and products of biomass, in: Overend R.P., Milne T.A., Mudge L.K. (Eds.), Fundamentals of Biomass Thermochemical Conversion.: Elsevier, London, pp. 183-217.
  • [8] Basu P., 2013, Torrefaction, in: Basu P. (Ed.), Biomass Gasification, Pyrolysis and Torrefaction, second ed. Academic Press, Boston. pp. 87-145. https://doi.org/10.1016/B978-0-12-396488-5.00004-6.
  • [9] Ciolkosz D., Wallace R., 2011, A review of torrefaction for bioenergy feedstock production. Biofuels, Bioprod. Bioref. 5, pp. 317-329. https://doi.org/10.1002/bbb.275.
  • [10] Bergman P.C.A., Boersma A.R., Zwart R.W.R, Kiel J.H.A., 2005, Torrefaction for biomass co-firing in existing coal-fired power stations "Biocoal", Report ECN-C-05-013. Petten, The Netherlands, Energy Research Center of the Netherlands.
  • [11] Prins M.J., Ptasinski K.J., Janssen F.J.J.G., 2006, Torrefaction of wood Part 1. Weight loss kinetics. J. Anal. Applied Pyrolysis. 77, pp. 28-34. https://doi.org/10.1016/j.jaap.2006.01.002.
  • [12] Prins M.J., Ptasinski K.J., Janssen F.J.J.G., 2006, More efficient biomass gasification via torrefaction. Energy. 31, pp. 3458-3470. https://doi.org/10.1016/j.energy.2006.03.008.
  • [13] Phanphanich M., Mani S., 2011, Impact of torrefaction on the grindability and fuel characteristics of forest biomass. Bioresource Technology. 102, pp. 1246-1253. https://doi.org/10.1016/j.biortech.2010.08.028.
  • [14] Arias B., Pevida C., Fermoso J., Plaza M.G., Rubiera F., Pis J.J., 2008, Influence of torrefaction on the grindability and reactivity of woody biomass. Fuel Process Technol. 89, pp. 169-75. https://doi.org/10.1016/J.FUPROC.2007.09.002.
  • [15] Medic D., Darr M., Shah A., Potter B., Zimmerman J., 2012, Effects of torrefaction process parameters on biomass feedstock upgrading. Fuel. 91, pp. 147-154. DOI:10.1016/j.fuel.2011.07.019.
  • [16] Kim D., Park K.Y., Yoshikawa K., 2017, Conversion of Municipal Solid Wastes into Biochar through Hydrothermal Carbonization, in: Huang W. (Ed.), Engineering Applications of Biochar, IntechOpen, London. https://doi.org/10.5772/intechopen.68221.
  • [17] Byichkov A.L., Denkin A.I., Tihova V.D., Lomovskiy O.I., 2014, Raschet teplotyi sgoraniya lignotsellyulozyi na osnovanii dannyih elementnogo analiza. Himiya rastitelnogo syirya. 3, pp. 99-104. DOI:10.14258/jcprm.1403099.
  • [18] Ermochenkov M.G., Evstigneev A.G., 2017, Izmenenie teplotyi sgoraniya drevesnogo topliva pri torrefikatsii. Lesnoy vestnik / Forestry bulletin, 21 (1), pp. 64-68. DOI: 10.18698/2542-1468-2017-1-64-68.
  • [19] Muafah A.A., Khalik M.S., Yoshimitsu U., Lukman I.A., 2012, Study on Torrefaction of Oil Palm Biomass. Journal of Applied Sciences. 12(11), pp. 1130-1135. https://dx.doi.org/10.3923/jas.2012.1130.1135.
  • [20] Mykhailyk V.A., Snezhkin Yu.F., Dmitrenko N.V., 2015, Investigation of the State of Water in Energy Trees in the Process of Drying by Differential Scanning Calorimetry. Journal of Engineering Physics and Thermophysics. 88(5), pp. 1093-1099. https://doi.org/10.1007/s10891-015-1288-1.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e949ad37-5ea3-4940-944c-aec2a75fc22b
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