Engleski

  • Ana Matin Sveučilište u Zagrebu Agronomski fakultet
  • Tajana Krička
  • Mateja Grubor
  • Vanja Jurišić
  • Tugomir Majdak
  • Karlo Špelić
  • Božidar Matin
  • Nives Jovičić
  • Alan Antonović
  • Ivan Brandić
Ključne reči: Engleski

Sažetak


At the beginning and during the development of civilization, natural sources were the only available source of energy. With the development of society and industry, they were replaced by intensive use of fossil fuels. Non-renewability and negative impact on the environment called into question the rationality of using such sources. Therefore, natural sources of energy are becoming more and more important, especially biomass, which is becoming an important source of energy due to its ecological advantages. There are numerous ways to convert agricultural biomass into different forms of biofuel. Thermochemical conversion includes a process of pyrolysis in which, under the influence of a high temperature of 400 to 600 °C without the presence of oxygen, very valuable products are obtained in the form of biochar. Agricultural biomass of the main agricultural crops (corn, wheat, barley, oats, triticale, rye, soybeans, oilseeds and sunflower) was used for this research. The obtained results show that the pyrolysis process improves its energy properties and that agricultural biomass is very suitable as a raw material for direct combustion. Moreover, the mentioned raw materials are characterized by significant pyrolytic conversion potential, i.e. biochar production ranges from 30.03% to 47.0%. Similarly, the heating value (HHV) of biochar after the pyrolysis process increased to 27.11 MJ/kg, which proves that agricultural biomass is a good source of energy per unit mass.

Reference

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Book:


Boboulos, M. (2010). Biomass properties and fire prediction tools. Bookboon.


Francescato, V., Antonini, E., Bergomi, L. Z. (2008). Priručnik o gorivima iz drvne biomase. Regionalna energetska agencija Sjeverozapadne Hrvatske. Fuel price responses. Energy Policy, 103, 258-264.


Ok, Y.S., M.Uchimiya, S., X.Chang, S., Bolan, N. (2016.): Biochar: Production, Characterization, and Applications. CRC Press, 432. Chapter 9: Biochar Effects on Soil Fertility and Nutrient Cycling, Cai, Y., Chang, S.X., 252.-255


Roos, C. J. (2008). Biomass drying and dewatering for clean heat & power (1-35). Olympia, WA, USA: Northwest CHP Application Center.


 


Chapter in an edited book:


Rahman, M.S., Al-Saidi, G.S. (1995). Thermal Conductivity Prediction of Foods. In Rahman, M.S. (Eds.) Food Properties Handbook (2nd ed., pp. 623-648). Taylor & Francis Group, CRC Press.


 


Symposiums, Congresses:


Antonović, A., Krička, T., Jurišić, V., Bilandžija, N., Voća, N.,  Stanešić, J. (2016). Biochar quantification and its properties in relation to the raw material. In Proceedings of the 51st Croatian and 11th International Symposium on Agriculture, 15-18.02.2016. Opatija, Croatia; 15-18.


Jurišić V., Krička T., Matin A., Bilandžija N., Antonović A., Voća N., &  Torić T. (2016). Proizvodnja energije i proizvoda dodane vrijednosti pirolizom koštica trešnje i višnje. In Proceedings of the 51st Croatian and 11th International Symposium on Agriculture, 15-18.02.2016. Opatija, Croatia; 475-480.


Stamenković, Z., Pavkov, I., Radojčin, M., Kešelj, K., Vakula, A., Novaković, T. (2019). Convective drying kinetics of strawberry pulp in a thin stagnant layer. Proceedings of Sixth Intenational Conference Sustainable Postharvest and Food Technologies - INOPTEP 2019. 07-12. april, 2019. Kladovo, Republic of Serbia; 94-99.


 


Software:


STASTICA SAS® 9.3 Software - SAS version 9.3 (USA)


 


ISO Standard References:


International Organization for Standardization. (2017). Solid biofuels — Sample preparation (EN ISO 14780:2017) https://www.iso.org/standard/66480.html


International Organization for Standardization. (2017). Determination of moisture content - Oven dry method -- Part 2: Total moisture -- Simplified method (EN ISO 18134-2:2017) Solid biofuels https://www.iso.org/standard/71536.html


International Organization for Standardization. (2015). Determination of ash content – EN ISO 18122:2015 Solid biofuels https://www.iso.org/standard/61515.html


International Organization for Standardization. (2023). Determination of volatile matter – EN ISO 18123:2023 Solid biofuels https://www.iso.org/standard/83192.html


International Organization for Standardization. (2017). Determination of calorific value (HRN EN ISO 18125:2017) Solid biofuels https://www.iso.org/standard/61517.html


International Organization for Standardization. (2015). Determination of minor elements (HRN EN ISO 16968:2015) Solid biofuels https://www.iso.org/standard/58067.html


 


 

Objavljeno
2023/04/13
Rubrika
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