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Biomass calcium looping gasification via cement-modified carbide slag in fluidized bed: an examination on enhanced multi-cycle CO2capture and hydrogen production

Authors :
Han, Long
Wu, Yuelun
Rong, Nai
Ma, Kaili
Wu, Pingjiang
Qi, Zhifu
Ding, Haoran
Zhao, Jianglin
Xin, Changjian
Source :
Biomass Conversion and Biorefinery; September 2024, Vol. 14 Issue: 17 p20485-20497, 13p
Publication Year :
2024

Abstract

Biomass calcium looping gasification (CLG) for CO2capture and H2production is rather attractive but still needs developing low-cost CaO-based sorbent with enhanced mechanical strength, cyclic CO2absorption reactivity, and multi-cycle gasification performance. In this work, cement-modified carbide slag was developed as a type of cheap CaO sorbent which was prepared by an economical method of wet mixing. Characterization of modified carbide slag revealed that mayenite (Ca12Al14O33) was successfully synthesized which played important role in promoting sintering resistance and mechanical strength of carbide slag sorbent. Cyclic CO2capture tests with a thermogravimetric analyzer (TGA) verified that cement-modified carbide slag showed much higher CO2absorption capacity than natural carbide slag. Modified carbide slag with 15 wt% cement (CS15) presented the best CO2capture performance in this work, and the CaO conversion approached 58.3% after 15 cycles. Biomass calcium looping gasification tests for H2production were also conducted in a fluidized bed reactor under different conditions, with special attention to the cyclic gasification performance of CS15. Gasification results proved that adding carbide slag not only apparently increased H2concentration and H2yield but also reduce the yield of tar species. Cement-modified carbide slag showed better gasification performance than natural carbide slag. Although increasing gasification temperature was beneficial to promote biomass conversion and H2yield, too high temperature should be avoided which would inhibit water gas shift reaction, CO2capture, and result in the conversion of tar species to polycyclic aromatic hydrocarbons (PAHs). Moreover, results of cyclic gasification tests presented great potential to adopt modified carbide slag in fluidized bed calcium looping gasification. After 8 cycles of gasification/regeneration, H2concentration and H2yield with CS15 were stabilized at 49.8% and 32.7 mg/gbiomass, which were increased by 11.5% and 17.7% in comparison to those with CS.

Details

Language :
English
ISSN :
21906815 and 21906823
Volume :
14
Issue :
17
Database :
Supplemental Index
Journal :
Biomass Conversion and Biorefinery
Publication Type :
Periodical
Accession number :
ejs62583281
Full Text :
https://doi.org/10.1007/s13399-023-04061-8