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Operating parameters affecting the thermal performance of biomass boilers
Author(s) -
Naz Orang,
Honghi Tran,
A.C. Jones,
Frida Jones
Publication year - 2017
Publication title -
tappi journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.217
H-Index - 45
ISSN - 0734-1415
DOI - 10.32964/tj16.8.453
Subject(s) - raw material , water content , thermal , moisture , boiler (water heating) , pulp and paper industry , environmental science , waste management , volumetric flow rate , biomass (ecology) , chemistry , materials science , engineering , composite material , agronomy , thermodynamics , geotechnical engineering , physics , organic chemistry , biology
Operating data of a bubbling fluidized bed (BFB) boiler and three stoker grate (SG) biomass boilers from different pulp mills were analyzed over a 2-year period. The results show that in all cases, the thermal performance decreases markedly from 5.5 to 4 lb steam/lb dry biomass as the feedstock moisture content increases from 40% to 60%. The BFB boiler had better thermal performance, although it operated in a higher moisture content range compared with the SG boilers. Multivariate analysis was also performed on one of the SG boilers to determine operating parameters that affect thermal performance. The results show that furnace temperature, oil flow rate, and induced draft fan current positively correlate with thermal performance, while the feedstock moisture content, total air flow, and excess oxygen (O2) negatively correlate with thermal performance. This implies that when making modifications to improve thermal performance, it is important to take into account correlations among various parameters. In some cases, one positively correlated parameter might cause an increase in a negatively correlated parameter. The net effect might be a decrease in thermal performance.

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