The catalytic effect of calcium and potassium on CO2 gasification of Shengli lignite: the role of carboxyl

The CO2 gasification of Chinese Shengli lignite (SL) catalysed by K+ and Ca2+ was studied. The results showed that calcium could greatly decrease the gasification reaction temperature of SL, and the gasification reaction rates of acid-treated SL catalysed by calcium were significantly higher than th...

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Main Authors: Yanpeng Ban, Yan Wang, Na Li, Runxia He, Keduan Zhi, Quansheng Liu
Format: Article
Language:English
Published: The Royal Society 2018-01-01
Series:Royal Society Open Science
Subjects:
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.180717
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spelling doaj-d5d0f2a49f0042cab3f4f8d4748635d12020-11-25T04:10:00ZengThe Royal SocietyRoyal Society Open Science2054-57032018-01-015910.1098/rsos.180717180717The catalytic effect of calcium and potassium on CO2 gasification of Shengli lignite: the role of carboxylYanpeng BanYan WangNa LiRunxia HeKeduan ZhiQuansheng LiuThe CO2 gasification of Chinese Shengli lignite (SL) catalysed by K+ and Ca2+ was studied. The results showed that calcium could greatly decrease the gasification reaction temperature of SL, and the gasification reaction rates of acid-treated SL catalysed by calcium were significantly higher than that catalysed by potassium. Kinetic analysis showed that the activation energy of the reaction catalysed by calcium was much lower than that catalysed by potassium, which was the reason for the higher catalytic activity of calcium. Fourier transform infrared characterization showed that, compared with acid-treated SL, the addition of K+/Ca2+ resulted in the significant weakening of C=O bond, and new peaks attributed to carboxylate species appeared. X-ray photoelectron spectroscopy results indicated that the numbers of C=O decreased after the metal ions were added, indicating the formation of metal–carboxylate complexes. Raman characterization showed that the ID1/IG values increased, suggesting more structural defects, which indicated that the reactivity of coal samples had a close relation with amorphous carbon structures. Ca2+ could interact with the carboxyl structure in lignite by both ionic forces and polycarboxylic coordination, while K+ interacted with carboxyl structure mainly via ionic forces.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.180717shengli lignitecalciumpotassiumco2 gasificationcatalysis mechanism
collection DOAJ
language English
format Article
sources DOAJ
author Yanpeng Ban
Yan Wang
Na Li
Runxia He
Keduan Zhi
Quansheng Liu
spellingShingle Yanpeng Ban
Yan Wang
Na Li
Runxia He
Keduan Zhi
Quansheng Liu
The catalytic effect of calcium and potassium on CO2 gasification of Shengli lignite: the role of carboxyl
Royal Society Open Science
shengli lignite
calcium
potassium
co2 gasification
catalysis mechanism
author_facet Yanpeng Ban
Yan Wang
Na Li
Runxia He
Keduan Zhi
Quansheng Liu
author_sort Yanpeng Ban
title The catalytic effect of calcium and potassium on CO2 gasification of Shengli lignite: the role of carboxyl
title_short The catalytic effect of calcium and potassium on CO2 gasification of Shengli lignite: the role of carboxyl
title_full The catalytic effect of calcium and potassium on CO2 gasification of Shengli lignite: the role of carboxyl
title_fullStr The catalytic effect of calcium and potassium on CO2 gasification of Shengli lignite: the role of carboxyl
title_full_unstemmed The catalytic effect of calcium and potassium on CO2 gasification of Shengli lignite: the role of carboxyl
title_sort catalytic effect of calcium and potassium on co2 gasification of shengli lignite: the role of carboxyl
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2018-01-01
description The CO2 gasification of Chinese Shengli lignite (SL) catalysed by K+ and Ca2+ was studied. The results showed that calcium could greatly decrease the gasification reaction temperature of SL, and the gasification reaction rates of acid-treated SL catalysed by calcium were significantly higher than that catalysed by potassium. Kinetic analysis showed that the activation energy of the reaction catalysed by calcium was much lower than that catalysed by potassium, which was the reason for the higher catalytic activity of calcium. Fourier transform infrared characterization showed that, compared with acid-treated SL, the addition of K+/Ca2+ resulted in the significant weakening of C=O bond, and new peaks attributed to carboxylate species appeared. X-ray photoelectron spectroscopy results indicated that the numbers of C=O decreased after the metal ions were added, indicating the formation of metal–carboxylate complexes. Raman characterization showed that the ID1/IG values increased, suggesting more structural defects, which indicated that the reactivity of coal samples had a close relation with amorphous carbon structures. Ca2+ could interact with the carboxyl structure in lignite by both ionic forces and polycarboxylic coordination, while K+ interacted with carboxyl structure mainly via ionic forces.
topic shengli lignite
calcium
potassium
co2 gasification
catalysis mechanism
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.180717
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