Transformation of coal mineral matter during pulverized coal combustion

The theoretical development of a sequence of mathematical sub-models capable of calculating the fouling tendency of a coal based on microscopic analysis of the coal mineral matter is described. The sub-models interpret computer controlled-scanning electron microscope analysis data in terms of...

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Main Authors: Beer, Janos M., Sarofim, Adel F.
Format: Technical Report
Language:en_US
Published: MIT Energy Lab 2005
Online Access:http://hdl.handle.net/1721.1/27224
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author Beer, Janos M.
Sarofim, Adel F.
author_facet Beer, Janos M.
Sarofim, Adel F.
author_sort Beer, Janos M.
collection MIT
description The theoretical development of a sequence of mathematical sub-models capable of calculating the fouling tendency of a coal based on microscopic analysis of the coal mineral matter is described. The sub-models interpret computer controlled-scanning electron microscope analysis data in terms of mineral size and chemical composition distributions; follow the transformation of these mineral property distributions during the combustion of the coal; determine the probability of the resultant fly ash particles impacting on boiler-tube surfaces and of their sticking upon impaction. The sub-models are probabilistic, and take account of the particle-to-particle variation of coal mineral matter and fly ash properties by providing mean values and variances for particle size, chemical composition and viscosity. The various sub- models are combined into a Coal Fouling Tendency (CFT) computer code. Comparison of CFT modeling results obtained for any coal or coal blend with those obtained for a coal whose behavior in a given boiler plant is known, can give useful information on their relative fouling tendencies. The report also includes data on the deposition characteristics of five coals or coal blends, obtained from combustion experiments in the 1-2 MW flame tunnel at MIT. The measurement data were used for validation of the CFT calculations, and for ranking the five fuels with respect to their fouling behavior. Similar ranking of other coals, without combustion testing, can be based solely on results from the CFT model, and examples are given in the report.
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spelling mit-1721.1/272242019-04-11T02:44:51Z Transformation of coal mineral matter during pulverized coal combustion Beer, Janos M. Sarofim, Adel F. The theoretical development of a sequence of mathematical sub-models capable of calculating the fouling tendency of a coal based on microscopic analysis of the coal mineral matter is described. The sub-models interpret computer controlled-scanning electron microscope analysis data in terms of mineral size and chemical composition distributions; follow the transformation of these mineral property distributions during the combustion of the coal; determine the probability of the resultant fly ash particles impacting on boiler-tube surfaces and of their sticking upon impaction. The sub-models are probabilistic, and take account of the particle-to-particle variation of coal mineral matter and fly ash properties by providing mean values and variances for particle size, chemical composition and viscosity. The various sub- models are combined into a Coal Fouling Tendency (CFT) computer code. Comparison of CFT modeling results obtained for any coal or coal blend with those obtained for a coal whose behavior in a given boiler plant is known, can give useful information on their relative fouling tendencies. The report also includes data on the deposition characteristics of five coals or coal blends, obtained from combustion experiments in the 1-2 MW flame tunnel at MIT. The measurement data were used for validation of the CFT calculations, and for ranking the five fuels with respect to their fouling behavior. Similar ranking of other coals, without combustion testing, can be based solely on results from the CFT model, and examples are given in the report. New England Power Service Co., ABB-Combustion Engineering, Public Service Electric & Gas Co., Empire State Electric Energy Research Corp., ENEL S.p.A., and Electric Power Research Institute 2005-09-15T14:12:16Z 2005-09-15T14:12:16Z 1992 Technical Report http://hdl.handle.net/1721.1/27224 en_US MIT-EL 92-008 12497557 bytes application/pdf application/pdf MIT Energy Lab
spellingShingle Beer, Janos M.
Sarofim, Adel F.
Transformation of coal mineral matter during pulverized coal combustion
title Transformation of coal mineral matter during pulverized coal combustion
title_full Transformation of coal mineral matter during pulverized coal combustion
title_fullStr Transformation of coal mineral matter during pulverized coal combustion
title_full_unstemmed Transformation of coal mineral matter during pulverized coal combustion
title_short Transformation of coal mineral matter during pulverized coal combustion
title_sort transformation of coal mineral matter during pulverized coal combustion
url http://hdl.handle.net/1721.1/27224
work_keys_str_mv AT beerjanosm transformationofcoalmineralmatterduringpulverizedcoalcombustion
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