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Agricultural Biogas Plants as a Chance for the Development of the Agri-Food Sector

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Agricultural biogas plants are an important source of energy, where the substrates from agricultural crops can be used. However, these plants need a daily input of biomass in the quantities up to several dozen tons. A few years ago, the most important substrate used for biogas production was maize silage. However, currently, there is a trend to limit the use of the afore-mentioned substrate. This is mainly due to the high cost of the substrate and the conflict over the rational use of valuable soils for biomass production for energy purposes. In the paper, the author undertook the attempts to discuss the possibility of limiting the use of raw vegetable materials for energy production, replacing them with agri-food production waste.
Rocznik
Strony
179--183
Opis fizyczny
Bibliogr. 28 poz., rys.
Twórcy
autor
  • Poznan University of Life Sciences, Wojska Polskiego Str. 28, 60-637 Poznań, Poland
Bibliografia
  • 1. Chatterjee P., Ghangrekar M.M., Rao S. 2017. Biogas Production from Partially Digested Septic Tank Sludge and its Kinetics. Waste and Biomass Valorization, 1–12.
  • 2. Cerda A., Artola A., Font X., Barrena R., Gea T., Sánchez A. 2018. Composting of food wastes: Status and challenges. Bioresource Technology, 248, 57–67.
  • 3. Chen Q., Liu T.: Biogas system in rural China. 2017. Upgrading from decentralized to centralized?. Renewable and Sustainable Energy Reviews, 78, 933–944.
  • 4. Chodkowska-Miszczuk, Szymańska A.: Agricultural biogas plants – A chance for diversification of agriculture in Poland. 2013. Renewable and Sustainable Energy Reviews, 20, 514–518.
  • 5. Ciesielczuk T., Poluszyńska J., Rosik-Dulewska C. 2017. Homemade slow-action fertilizers, as an economic solution for organic food production. Journal of Ecological Engineering 18(2), 78–85.
  • 6. Cieślik M., Dach J., Lewicki A., Smurzyńska A., Janczak D., Pawlicka-Kaczorowska J., Boniecki P., Cyplik P., Czekała W., Jóżwiakowski K. 2016. Methane fermentation of the maize straw silage under meso- and thermophilic conditions. Energy, 115(2), 1495–1502.
  • 7. Czekała W., Pilarski K., Dach J., Janczak D., Szymańska M. 2012. Analysis of management possibilities for digestate from biogas plant. Technika Rolnicza Ogrodnicza Leśna, 4, 13–15.
  • 8. Czekała W., Kozłowski K., Dach J., Boniecki P., Lewicki A., Janczak D., Jóźwiakowski K., Piechota T. 2015. Energy Conversion from Biomass to Hydrogen and Methane. 4th International Conference on Materials Engineering for Advanced Technologies (ICMEAT) London, June 27–28, 2015, 654–657.
  • 9. Czekała W. 2017a. Concept of IN-OIL project based on bioconversion of by-products from food processing industry. Journal of Ecological Engineering, 18(5), 180–185.
  • 10. Czekała W., Dach J., Dong R., Janczak D., Malińska K., Jóźwiakowski K., Smurzyńska A., Cieślik M. 2017b. Composting potential of the solid fraction of digested pulp produced by a biogas plant. Biosystems Engineering 160, 25–29.
  • 11. Dach J., Koszela K., Boniecki P., Zaborowicz M., Lewicki A., Czekała W., Skwarcz J.,Wei Q. Piekarska-Boniecka H., Białobrzewski I. 2016. The use of neural modelling to estimate the methane production from slurry fermentation processes. Renewable and Sustainable Energy Reviews, 56, 603–610.
  • 12. Gizińska-Górna M., Czekała W., Jóźwiakowski K., Lewicki A., Dach J., Marzec M., Pytka A., Janczak D., Kowalczyk-Juśko A., Listosz A. 2016. The possibility of using plants from hybrid constructed wetland wastewater treatment plants for energy purposes. Ecological Engineering, 95, 534–541.
  • 13. http://www.kowr.gov.pl/uploads/pliki/oze/ biogaz/7.%20Rejestr%20wytw%C3%B3rc% C3%B3w%20biogazu%20rolniczego%20z%20 dnia%2005.01.2018%20r..pdf, access on 5th, January 2018.
  • 14. Kazimierowicz J. 2014. Organic waste used in agricultural biogas plants. Journal of Ecological Engineering, 15(2), 88–92.
  • 15. Kowalczyk-Juśko A., Kościk B., Jóźwiakowski K., Marczuk A., Zarajczyk J., Kowalczuk J., Szmigielski M., Sagan A. 2015a. Effects of biochemical and thermochemical conversion of sorghum biomass to usable energy. Przemysł Chemiczny, 94(10), 1838–1840.
  • 16. Kowalczyk-Juśko A., Kościk B., Jóźwiakowski K., Marczuk A., Zarajczyk J., Kowalczuk J., Szmigielski M., Sagan A. 2015b. Effects of biochemical and thermochemical conversion of sorghum biomass to usable energy. Przemysł Chemiczny, 94(10), 1838–1840.
  • 17. Kozłowski K., Lewicki A., Cieslik M., Janczak D., Czekała W., Smurzyńska A., Brzoski M. 2017. The possibility of improving the energy and economic balance of agricultural biogas plant. Technika Rolnicza Ogrodnicza Leśna, 3, 10–13.
  • 18. Maj G., Piekarski W., Kowalczyk-Juśko A., Łukaszczyk A. 2014. Waste from agri-food sector, communal and targeted crops as a source of biogas. Przemysł Chemiczny, 93(5), 732–736.
  • 19. Moreb N.A., Priyadarshini A., Jaiswal A.K. 2017. Knowledge of food safety and food handling practices amongst food handlers in the Republic of Ireland. Food Control, 80, 341–349.
  • 20. Obidziński S., Joka M., Fijoł O. 2017. Two-stage agglomeration of fine-grained herbal nettle waste. Int. Agrophys., 31, 515–523.
  • 21. Przybył J., Kot W., Wojcieszak D., Mioduszewska N., Durczak K. 2013. Biogas yield of maize straw. Agricultural Enginerring 4(148), 103–111.
  • 22. Rama R., Borowski S., Dulcet E. 2013. Biogas from agricultural biogas plants – competition for food market. Inż. Ap. Chem., 52(2), 60–61.
  • 23. Renewable Energy Law of Poland [Dz.U. 2015 poz. 478]
  • 24. Safarzyńska K., van den Bergh J.C.J.M. 2017. Financial stability at risk due to investing rapidly in renewable energy. Energy Policy, 108, 12–20.
  • 25. Sikora J., Niemiec M., Szeląg-Sikora A., Kuboń M., Olech E., Marczuk A. 2017. Biogasification of wastes from industrial processing of carps. Przemysł Chemiczny, 96(11), 2275–2278.
  • 26. Smurzyńska A., Czekała W., Lewicki A., Cieślik M., Kozłowski K., Janczak D. 2016. The biogas output of vegetables utilized in the polish market due to the introduction of the Russian embargo (in Polish). Technika Rolnicza Ogrodnicza Leśna 6, 24–27.
  • 27. Smith M.D., Rabbitt M.P., Coleman- Jensen A. 2017. Who are the World’s Food Insecure? New Evidence from the Food and Agriculture Organization’s Food Insecurity Experience Scale. World Development, 93, 402–412.
  • 28. Voelklein M.A., Shea R.O., Jacob A., Murphy J.D. 2017. Role of trace elements in single and two-stage digestion of food waste at high organic loading rates. Energy, 121, 185–192.
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-9a767aac-9db9-41a8-bbee-e8834fc28357
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