Mathematical Determination of Thermal Load for Fluidised Bed Furnaces Using Sawdust

For technical applications, a physical model capable of predicting the particle evolution in the burning process along its trajectory through the furnace is very useful. There are two major demands: all the thermo-dynamic processes that describe the particle burning process must be accounted and the...

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Main Authors: Antonescu Nicolae, Stanescu Paul-Dan
Format: Article
Language:English
Published: Sciendo 2014-06-01
Series:Mathematical Modelling in Civil Engineering
Subjects:
Online Access:https://doi.org/10.2478/mmce-2014-0006
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spelling doaj-263348ee064d44b08e7e8d97fd6332ca2021-09-06T19:22:33ZengSciendoMathematical Modelling in Civil Engineering2066-69342014-06-0110211010.2478/mmce-2014-0006mmce-2014-0006Mathematical Determination of Thermal Load for Fluidised Bed Furnaces Using SawdustAntonescu Nicolae0Stanescu Paul-Dan1Professor assistant, PhD, Technical University of Civil Engineering, Faculty of Building ServicesTechnical University of Civil Engineering, Faculty of Building ServicesFor technical applications, a physical model capable of predicting the particle evolution in the burning process along its trajectory through the furnace is very useful. There are two major demands: all the thermo-dynamic processes that describe the particle burning process must be accounted and the model must be written in such equation terms to allow the intervention for parameter settings and particle definition. The computations were performed for the following parameters: furnace average temperature between 700 and 1200 °C, size of the sawdust particle from 4 to 6 mm and fix carbon ignition between 500 and 900 °C. The values obtained for the characteristic parameters of the burning process ranged from 30 to 60 [kg/(h·m3)] for the gravimetrical burning speed WGh and from 150 to 280 [kW/m3] for the volumetric thermal load of the furnace QV. The main conclusion was that the calculus results are in good agreement with the experimental data from the pilot installations and the real-case measurements in the sawdust working boiler furnaces or pre-burning chambers. Another very important conclusion is that the process speed variation, when the furnace temperature changes, confirms the thermo-kinetic predictions, namely that the burning process speed decreases when the furnace temperature increases.https://doi.org/10.2478/mmce-2014-0006particleburning processphysical modelequations
collection DOAJ
language English
format Article
sources DOAJ
author Antonescu Nicolae
Stanescu Paul-Dan
spellingShingle Antonescu Nicolae
Stanescu Paul-Dan
Mathematical Determination of Thermal Load for Fluidised Bed Furnaces Using Sawdust
Mathematical Modelling in Civil Engineering
particle
burning process
physical model
equations
author_facet Antonescu Nicolae
Stanescu Paul-Dan
author_sort Antonescu Nicolae
title Mathematical Determination of Thermal Load for Fluidised Bed Furnaces Using Sawdust
title_short Mathematical Determination of Thermal Load for Fluidised Bed Furnaces Using Sawdust
title_full Mathematical Determination of Thermal Load for Fluidised Bed Furnaces Using Sawdust
title_fullStr Mathematical Determination of Thermal Load for Fluidised Bed Furnaces Using Sawdust
title_full_unstemmed Mathematical Determination of Thermal Load for Fluidised Bed Furnaces Using Sawdust
title_sort mathematical determination of thermal load for fluidised bed furnaces using sawdust
publisher Sciendo
series Mathematical Modelling in Civil Engineering
issn 2066-6934
publishDate 2014-06-01
description For technical applications, a physical model capable of predicting the particle evolution in the burning process along its trajectory through the furnace is very useful. There are two major demands: all the thermo-dynamic processes that describe the particle burning process must be accounted and the model must be written in such equation terms to allow the intervention for parameter settings and particle definition. The computations were performed for the following parameters: furnace average temperature between 700 and 1200 °C, size of the sawdust particle from 4 to 6 mm and fix carbon ignition between 500 and 900 °C. The values obtained for the characteristic parameters of the burning process ranged from 30 to 60 [kg/(h·m3)] for the gravimetrical burning speed WGh and from 150 to 280 [kW/m3] for the volumetric thermal load of the furnace QV. The main conclusion was that the calculus results are in good agreement with the experimental data from the pilot installations and the real-case measurements in the sawdust working boiler furnaces or pre-burning chambers. Another very important conclusion is that the process speed variation, when the furnace temperature changes, confirms the thermo-kinetic predictions, namely that the burning process speed decreases when the furnace temperature increases.
topic particle
burning process
physical model
equations
url https://doi.org/10.2478/mmce-2014-0006
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