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18th International Conference on Fluidized Bed Combustion | 2005

An Improved Model of Sulfur Self-Retention by Coal Ash During Coal Combustion in FBC

Vasilije Manovic; Borislav Grubor

During combustion of coal a significant amount of sulfur may be retained in ash due to the reactions between mineral matter in coal and sulfur oxides. This process is known as sulfur self-retention and its significance lies in the fact that a part of sulfur oxides, one of the main pollutants during combustion of coal, is not released in the atmosphere. Sulfur self-retention is influenced by parameters that depend on coal characteristics and combustion conditions. The interest for this process was enhanced with the introduction of fluidized bed combustion (FBC) technology since the temperatures and other conditions are favorable for sulfur self-retention. Investigation of this process, primarily modeling, is the subject of this work. The presented model is based on the previously developed model for the combustion of porous char particles under FBC conditions, along with a changing grain size model of sulfation of the CaO grains dispersed throughout the char particle volume. Incorporating the phenomena of sintering, reduction of the produced CaSO4 with CO, thermal decomposition of the produced CaSO4, as well as allowing for the different reactivity of various forms of calcium make major improvements of the model. A temperature dependent relation for the CaO grain radius takes sintering into account. Reductive and thermal decomposition were taken into account by the corresponding reaction rate constants of the Arrhenius type. The reactivity of the calcium forms in coal was considered by different initial radius of the CaO grains. The model was verified by the experimental results of sulfur self-retention of three Serbian coals during combustion in a fluidized bed combustion reactor. The comparison with the experimentally obtained results showed that the model can adequately predict the levels of the obtained values of sulfur self-retention efficiencies, as well as the influence of temperature, coal type and coal particle size.Copyright


Energy | 2012

Dynamical simulation of PV/Wind hybrid energy conversion system

Vukman Bakić; Milada Pezo; Žana Stevanović; Marija Živković; Borislav Grubor


Chemical Engineering Journal | 2003

An experimental and modeling study of the contribution of coal ash to SO2 capture in fluidized bed combustion

Borislav Grubor; Vasilije Manovic; Simeon N. Oka


Chemical Engineering Science | 2006

Modeling of inherent SO2 capture in coal particles during combustion in fluidized bed

Vasilije Manovic; Borislav Grubor; Davor Lončarević


Thermal Science | 2007

Mapping the potential for decentralized energy generation based on RES in Western Balkans

R Daniel Schneider; Neven Duić; Igor Raguzin; Zeljko Bogdan; Marko Ban; Borislav Grubor; Predrag Stefanović; Dragoljub Dakic; Branislav Repić; Zarko Stevanovic; Ana Zbogar; Maja Studović; Stevan Nemoda; Nikola Oka; Dejan Djurovic; Nikola Kadić; Vuk Bakic


Energy & Fuels | 2002

Influence of Non-Uniformity of Coal and Distribution of Active Calcium on Sulfur Self-Retention by AshA Case Study of Lignite Kolubara

Borislav Grubor; Vasilije Manovic


Thermal Science | 2004

The state of biomass energy in Serbia

Mladen Ilic; Borislav Grubor; Milos Tesic


Thermal Science | 2002

Sulfur self-retention in ash a grain model approach

Vasilije Manovic; Borislav Grubor; Mladen Ilic


Journal of The Serbian Chemical Society | 2003

Sulfur retention by ash during coal combustion. Part I. A model of char particle combustion

Mladen Ilic; Borislav Grubor; Vasilije Manovic


Thermal Sciences 2000. Proceedings of the International Thermal Science Seminar Bled, Slovenia, June 11 - 14 , 2000<br>Volume 1 | 2000

SINGLE COAL PARTICLE BEHAVIOR IN FLUIDIZED BED COMBUSTION Recent results achieved in Vinca Institute

Simeon N. Oka; Mladen S. Ilic; Dragoljub V. Dakic; Borislav Grubor; Mirko Komatina; Vesna B. Barisic; Branislava T. Arsic; Vasilije M. Manovic

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Mladen Ilic

University of Belgrade

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