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Methane Gas Cofiring Effects on Combustion and NO(x) Emission in 550 MW Tangentially Fired Pulverized-Coal Boiler

[Image: see text] A shift from coal to liquefied natural gas for electricity generation can mitigate CO(2) emissions and respond to the intermittent and variable characteristics of renewable energy. With this objective, numerical simulation was performed in this study to determine the optimal positi...

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Autores principales: Kim, Kang-Min, Kim, Gyu-Bo, Lee, Byoung-Hwa, Jeon, Chung-Hwan, Keum, Joon-Ho
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8613846/
https://www.ncbi.nlm.nih.gov/pubmed/34841155
http://dx.doi.org/10.1021/acsomega.1c04574
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author Kim, Kang-Min
Kim, Gyu-Bo
Lee, Byoung-Hwa
Jeon, Chung-Hwan
Keum, Joon-Ho
author_facet Kim, Kang-Min
Kim, Gyu-Bo
Lee, Byoung-Hwa
Jeon, Chung-Hwan
Keum, Joon-Ho
author_sort Kim, Kang-Min
collection PubMed
description [Image: see text] A shift from coal to liquefied natural gas for electricity generation can mitigate CO(2) emissions and respond to the intermittent and variable characteristics of renewable energy. With this objective, numerical simulation was performed in this study to determine the optimal position of the methane injector and evaluate the achievable reduction in NO(x) emissions before applying methane cofiring to an existing 550 MW tangentially fired pulverized-coal boiler (Boryeong Unit 3). The combustion and NO(x) reduction in the furnace were intensively analyzed based on the methane cofiring rate (up to 40%). The optimal position of the methane injector was found to be inside the oil port based on the spatial distribution of NO(x) and the stoichiometric ratio along the furnace height. The NO(x) reduction rate was logarithmically proportional to the methane cofiring rate, and compared to the base case, a 69.8% reduction was achieved at the 40% cofiring rate. In addition, the fraction of unburned char at the boiler outlet was equivalent to that of the existing boiler as the increase in the flow rates of the close-coupled and separated overfire air improved fuel and air mixing. Simultaneously, methane cofiring led to a reduction in the total fuel loss and CO emissions. Finally, this study showed that the recommended optimum cofiring rate was 20% based on the furnace exit gas temperature. Under the 20% methane cofiring condition, the boiler achieved a 57.3% reduction in NO(x) emissions and a 7.4% improvement in fuel loss.
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spelling pubmed-86138462021-11-26 Methane Gas Cofiring Effects on Combustion and NO(x) Emission in 550 MW Tangentially Fired Pulverized-Coal Boiler Kim, Kang-Min Kim, Gyu-Bo Lee, Byoung-Hwa Jeon, Chung-Hwan Keum, Joon-Ho ACS Omega [Image: see text] A shift from coal to liquefied natural gas for electricity generation can mitigate CO(2) emissions and respond to the intermittent and variable characteristics of renewable energy. With this objective, numerical simulation was performed in this study to determine the optimal position of the methane injector and evaluate the achievable reduction in NO(x) emissions before applying methane cofiring to an existing 550 MW tangentially fired pulverized-coal boiler (Boryeong Unit 3). The combustion and NO(x) reduction in the furnace were intensively analyzed based on the methane cofiring rate (up to 40%). The optimal position of the methane injector was found to be inside the oil port based on the spatial distribution of NO(x) and the stoichiometric ratio along the furnace height. The NO(x) reduction rate was logarithmically proportional to the methane cofiring rate, and compared to the base case, a 69.8% reduction was achieved at the 40% cofiring rate. In addition, the fraction of unburned char at the boiler outlet was equivalent to that of the existing boiler as the increase in the flow rates of the close-coupled and separated overfire air improved fuel and air mixing. Simultaneously, methane cofiring led to a reduction in the total fuel loss and CO emissions. Finally, this study showed that the recommended optimum cofiring rate was 20% based on the furnace exit gas temperature. Under the 20% methane cofiring condition, the boiler achieved a 57.3% reduction in NO(x) emissions and a 7.4% improvement in fuel loss. American Chemical Society 2021-11-15 /pmc/articles/PMC8613846/ /pubmed/34841155 http://dx.doi.org/10.1021/acsomega.1c04574 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Kim, Kang-Min
Kim, Gyu-Bo
Lee, Byoung-Hwa
Jeon, Chung-Hwan
Keum, Joon-Ho
Methane Gas Cofiring Effects on Combustion and NO(x) Emission in 550 MW Tangentially Fired Pulverized-Coal Boiler
title Methane Gas Cofiring Effects on Combustion and NO(x) Emission in 550 MW Tangentially Fired Pulverized-Coal Boiler
title_full Methane Gas Cofiring Effects on Combustion and NO(x) Emission in 550 MW Tangentially Fired Pulverized-Coal Boiler
title_fullStr Methane Gas Cofiring Effects on Combustion and NO(x) Emission in 550 MW Tangentially Fired Pulverized-Coal Boiler
title_full_unstemmed Methane Gas Cofiring Effects on Combustion and NO(x) Emission in 550 MW Tangentially Fired Pulverized-Coal Boiler
title_short Methane Gas Cofiring Effects on Combustion and NO(x) Emission in 550 MW Tangentially Fired Pulverized-Coal Boiler
title_sort methane gas cofiring effects on combustion and no(x) emission in 550 mw tangentially fired pulverized-coal boiler
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8613846/
https://www.ncbi.nlm.nih.gov/pubmed/34841155
http://dx.doi.org/10.1021/acsomega.1c04574
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