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Residential pellet boilers in Belgium: Standard laboratory and real life performance with respect to European standard and quality labels

Author

Listed:
  • Verma, V.K.
  • Bram, S.
  • Vandendael, I.
  • Laha, P.
  • Hubin, A.
  • De Ruyck, J.

Abstract

Nine residential wood pellet boilers were tested for the emissions of carbon monoxide (CO), nitrogen oxide (NOx), dust and combustion efficiency in real life and standard laboratory conditions and values were compared with the permissible values of Blue Angel, Swan Mark and EN-303-5. The test setup consisted of six boilers equipped with bottom feed burner (BF), one with top feed (TF) and two with horizontally feed burner (HF). Wood pellets used as fuel were DINplus certified. In real life conditions, 20 kW bottom feed boiler had the best performance. Emissions of dust from bottom and horizontal feed boilers were better in real life conditions than in standard laboratory conditions. All boiler technologies had lower combustion efficiencies in real life condition (2-5% less) than in standard laboratory condition. Top feed boiler emitted maximum CO (1566 mg N m-3); and dust particles from concerned boiler contained a considerable amount of elemental carbon. Almost similar NOx emissions were reported with all technologies in real life conditions. All the boilers met emissions and efficiency requirements of Swan Mark (except top feed boilers for CO) and EN-303-5, in both conditions. In laboratory conditions, all bottom feed boilers satisfied emissions and efficiency requirements of Blue Angel, however, in real life situation only 20 kW bottom feed and horizontal feed boilers could meet the concerned requirements. Bottom and horizontal feed boiler technologies have advantage over top feed, having lower emissions and higher efficiency. Keeping in mind minor variation in quality of considered wood pellets, different burner configurations clearly lead to important differences in the emissions and efficiencies.

Suggested Citation

  • Verma, V.K. & Bram, S. & Vandendael, I. & Laha, P. & Hubin, A. & De Ruyck, J., 2011. "Residential pellet boilers in Belgium: Standard laboratory and real life performance with respect to European standard and quality labels," Applied Energy, Elsevier, vol. 88(8), pages 2628-2634, August.
  • Handle: RePEc:eee:appene:v:88:y:2011:i:8:p:2628-2634
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    References listed on IDEAS

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    1. Fiedler, Frank & Persson, Tomas, 2009. "Carbon monoxide emissions of combined pellet and solar heating systems," Applied Energy, Elsevier, vol. 86(2), pages 135-143, February.
    2. Fiedler, Frank, 2004. "The state of the art of small-scale pellet-based heating systems and relevant regulations in Sweden, Austria and Germany," Renewable and Sustainable Energy Reviews, Elsevier, vol. 8(3), pages 201-221, June.
    3. Bram, S. & De Ruyck, J. & Lavric, D., 2009. "Using biomass: A system perturbation analysis," Applied Energy, Elsevier, vol. 86(2), pages 194-201, February.
    4. Chau, J. & Sowlati, T. & Sokhansanj, S. & Preto, F. & Melin, S. & Bi, X., 2009. "Techno-economic analysis of wood biomass boilers for the greenhouse industry," Applied Energy, Elsevier, vol. 86(3), pages 364-371, March.
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