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The Effect of Fuel Quality on Carbon Dioxide and Nitrogen Oxide Emissions, While Burning Biomass and RDF Cover

The Effect of Fuel Quality on Carbon Dioxide and Nitrogen Oxide Emissions, While Burning Biomass and RDF

Open Access
|Mar 2018

References

  1. 1. Demirbas, A. (2004). Combustion characteristics of different biomass fuels. Prog. Energy Combust. Sci., 30(2), 219–230.10.1016/j.pecs.2003.10.004
  2. 2. Koppmann, R., Von Czapiewski, K., & Reid, J.S. (2005). A review of biomass burning emissions, part I: gaseous emissions of carbon monoxide, methane, volatile organic compounds and nitrogen containing compounds. Atmos. Chem. Phys. Discuss. 5, 10455–10516.10.5194/acpd-5-10455-2005
  3. 3. Health Inspection (in Latvian). (n.d.) Available at http://www.vi.gov.lv/lv/vides-veseliba/gaiss/ara/gaisa-suspendeto-cieto-dalinu-ietekme-uz-veselibu [Accessed: 21.01.2014].
  4. 4. Institute of Forest and Wood Products Research and Development. (2012). Study – Monitoring of the use of wood biomass in energy recovery (in Latvian). Jelgava.
  5. 5. Zhang, X., Chen, Q., Bradford, R., Sharifi, V., & Swithenbank, J. (2010). Experimental investigation and mathematical modelling of wood combustion in a moving grate boiler. Fuel Process. Technol., 91(11), 1491–1499.10.1016/j.fuproc.2010.05.026
  6. 6. Nussbaumer, T. (2003). Combustion and co-combustion of biomass: Fundamentals, technologies primary measures for emission reduction. Energy & Fuels, 17(6), 1510–1521.10.1021/ef030031q
  7. 7. Zandeckis, A., & Blumberga, D. (2010). Methods of nitrogen oxide reduction in pellet boilers. Sci. J. Riga Tech. Univ., 4, 123–129.10.2478/v10145-010-0027-2
  8. 8. European Committee for Standardization. (2011). Solid recovered fuels –Specifications and classes, CEN/TS15359:2011, European Committee for Standardisation.
  9. 9. Iacovidou, E., Hahladakis, J., Deans, T., Velis, C., & Purnell, P. (2017) Technical properties of biomass and solid recovered fuel (SRF) co-fired with coal: Impact on multi-dimensional resource recovery value. Waste Management. DOI: http://dx.doi.org/10.1016/j.wasman.2017.07.00110.1016/j.wasman.2017.07.00128697964
  10. 10. Wilén, C., Salokoski P., Kurkela E., & Sipilä, K. (2004). Finnish expert report on best available techniques in energy production from solid recovered fuels. Finnish Environment Institute, pp. 1–52. Available at https://helda.helsinki.fi/bitstream/handle/10138/40639/FE_688.pdf?sequence=1 [Accessed: 06.01.2018].
  11. 11. Kalnacs, J., Arina, D., & Murashov, A. (2013). Content and properties of mechanically sorted municipal wastes and their suitability for production of alternative fuel. Renewable Energy & Power Quality Journal (RE&PQJ), 11, paper 8, No. 525, ISSN 2172-038X Available at http://www.icrepq.com/icrepq'13/525-kalnacs.pdf [Accessed: 06.01.2018].
  12. 12. United Nations Environment Programme (UNEP). (2005). Solid waste management. Chapter XII. Production of refuse-derived fuel (RDF). CalRecovery, Inc. Available at http://www.unep.or.jp/ietc/publications/spc/solid_waste_management/Vol_I/Binder1.pdf [Accessed: 06.01.2018].
  13. 13. Nithikul, J. (2007). Potential of refuse derived fuel production from Bangkok municipal solid waste. Thesis, Asian Institute of Technology, School of Environment, Resources and Development, Bangkok. Available at http://citeseerx.ist.psu.edu/viewdoc/download?doi=10.1.1.501.4998&rep=rep1&type=pdf [Accessed: 06.01.2018]
  14. 14. Dace, E., & Blumberga, D. (2012). An assessment of the potential of refuse-derived fuel in Latvia. Management of Environmental Quality: An International Journal, 23(5), 503–516. DOI: http://dx.doi.org/10.1108/1477783121125508810.1108/14777831211255088
  15. 15. Garg, A., Smith, R., Hill, D., Simms, N., & Pollard, S. (2007). Wastes as co-fuels: The policy framework for solid recovered fuel (SRF) in Europe, with UK implications. Environmental Science and Technology, 41(14), 4868–4874.10.1021/es062163e17711195
  16. 16. Conesa, J.A., Rey, L., Egea, S., & Rey, M.D. (2011). Pollutant formation and emissions from cement kiln stack using a solid recovered fuel from municipal solid waste. Metrohm. Environ Sci Technol., 45(13), 5878–84. DOI: 10.1021/es200448u10.1021/es200448u21627160
  17. 17. Kim, S.-K., Jang, K.-W., Hong, J.-H., Jung, Y.-W., & Kim, H.-C. (2013). Estimated CO2 emissions and analysis of solid recovered fuel (SRF) as an alternative fuel. Asian Journal of Atmospheric Environment, 7(1), 48–55. DOI: http://dx.doi.org/10.5572/ajae.2013.7.1.048.10.5572/ajae.2013.7.1.048
DOI: https://doi.org/10.2478/lpts-2018-0004 | Journal eISSN: 2255-8896 | Journal ISSN: 0868-8257
Language: English
Page range: 35 - 43
Published on: Mar 24, 2018
Published by: Institute of Physical Energetics
In partnership with: Paradigm Publishing Services
Publication frequency: 6 issues per year

© 2018 J. Kalnacs, R. Bendere, A. Murasovs, D. Arina, A. Antipovs, A. Kalnacs, L. Sprince, published by Institute of Physical Energetics
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.