Have a personal or library account? Click to login
Biomass as an energy source and carbon stock Cover

Biomass as an energy source and carbon stock

Open Access
|Dec 2024

References

  1. Basu, P. 2018. Biomass Gasification, Pyrolysis and Torrefaction: Practical Design and Theory. Academic Press, San Diego.
  2. Botnariuc, N., Vădineanu, A. 1982. Ecology. Didactic and pedagogical publishing house, Bucharest.
  3. Durak, H. 2023. comprehensive assessment of thermochemical processes for sustainable waste management and resource recovery. Processes, 2092 (11), 1–39. DOI: 10.3390/pr11072092.
  4. Filipovici, J. 1964. The study of wood: Manual for students of the wood industrialization faculty. The Polytechnic Institute of Brașov, Didactic and Pedagogical Publishing House, Bucharest.
  5. Gheorghe, I.F. 2008. Phytocenology and vegetation of Romania. Didactical and Pedagogical Publishing House, Bucharest.
  6. Gheorghe, I.F., Biriș, I.A., Vâlcu, C.M. 2010. Efficiency of different forest types in carbon storage depends on their internal structure. Acta Societatis Botanicorum Poloniae, 79 (4), 325–332.
  7. Gheorghe, I.F., Strat, D. 2023. Biomass and energy sources with the lowest ecological footprint. Silva-World, 2 (1), 1–9. DOI: 10.29329/silva.2023.518.01.
  8. Gheorghe, I.F., Topa. 2007. The functional role of primary production in carbon cycle – annual balance. Analele ICAS, 50, 121–134.
  9. Giurgiu, V., Decei, I., Armășescu, S. 1972. Dendrometry of trees and stands in Romania: dendrometric tables. Ceres, Bucharest.
  10. Karatzos, S., McMillan, J.D., Saddler, J.N. 2014. The potential and challenges of drop-in biofuels. Task 39. IEA Bioenergy. Available at https://task39.sites.olt.ubc.ca/files/2014/01/Task-39-Drop-in-Biofuels-Report-FINAL-2-Oct-2014-ecopy
  11. Mamvura, T.A., Danha, G. 2020. Biomass torrefaction as an emerging technology to aid in energy production. Heliyon, 6 (3), e03531.
  12. Mitsch, W.J. 1991. Estimating primary productivity of forested wetland communities in different hydrologic landscapes. Landscape Ecology, 5, 75–92.
  13. Özbay, N. et al. 2023. Production of Si-doped biomass-derived materials: effect of support type, activation and doping conditions. Biomass Conversion and Biorefinery. DOI: 10.1007/s13399-023-04786-6.
  14. Pieter, D.K. 2010. Units, conversion factors and formulae for wood for energy. Fisheries and Food Agriculture House, Dublin, Ireland. Available at http://woodenergy.ie/media/coford/content/publications/projectreports/cofordconnects/ht21.pdf (access on 12 December 2023).
  15. Wen, J.L, Sun, S.L, Yuan, T.Q., Xu, F., Sun, R.C. 2014. Understanding the chemical and structural transformations of lignin macromolecule during torrefaction. Applied Energy, 121, 1–9.
  16. Whittaker, R.H., Woodwell, G.M. 1968. Dimension and production relations of trees and shrubs in the Brookhaven forest. Ecology, 56, 1–25.
  17. Ziemiński, K., Frąc, M. 2012. Methane fermentation process as an anaerobic digestion of biomass: Transformations, stages and microorganisms. African Journal of Biotechnology, 11 (18), 4127–4139.
DOI: https://doi.org/10.2478/ffp-2024-0032 | Journal eISSN: 2199-5907 | Journal ISSN: 0071-6677
Language: English
Page range: 410 - 420
Submitted on: Dec 20, 2023
|
Accepted on: May 25, 2024
|
Published on: Dec 11, 2024
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Iuliana Florentina Gheorghe, published by Forest Research Institute
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.