Ni promoted Fe-CaO dual functional materials for calcium chemical dual looping
编号:79 稿件编号:202 访问权限:仅限参会人 更新:2023-03-22 15:33:17 浏览:569次 口头报告

报告开始:2021年08月10日 04:45 (Asia/Shanghai)

报告时间:15min

所在会议:[P] 大会报告 » [2] 分会场一:反应器设计及系统优化

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摘要
Reverse water-gas shift reaction using renewable H2 is a promising route for CO2 upgrade, however, it is restricted by the equilibrium. The chemical looping reverse water-gas shift reaction using oxygen carriers (i.e. Fe) has proven a more effective CO2 utilization process to produce CO. However, CO2 with high purity is needed to obtain concentrated CO. Herein, we propose a calcium chemical dual looping using one-pot sol-gel synthesized Ca-Fe dual functional materials (DFMs). The CO2 in the exhaust gas (~10% CO2) can be captured and transformed into carbonates and then in-situ converted into CO through continuous chemical looping in H2 atmosphere. This process avoids CO2 enrichment, storage and transportation and simultaneously realizes efficient CO2 conversion. The Ca-Fe DFMs possessed significantly improved catalytic efficiency (enhanced real-time CO generation rate) compared to CaO. Furthermore, introducing a small amount of Ni could stabilize the crystallite size of Fe by forming an Ni-Fe alloy. It is found that Ni1Fe9-CaO could optimally achieve 11.3 mmol gDFM-1 CO yield, 82.5% CO2 conversion and 99.9% CO selectivity at 650 °C. Notably, Ni1Fe9-CaO displayed high CO2 conversion (> 80%) and CO selectivity (> 99.9%) during the cycle tests and possessed enhanced stability in relation to CO yield after 10 cycles (20.9% and 35.5% decrease for Ni1Fe9-CaO and CaO, respectively). Herein, Ca2Fe2O5 plays two roles: acting as an oxygen carrier for in-situ chemical looping to produce CO and a thermally stable physical barrier to retard the sintering of CaO. It is noted that Fe-related species could be reduced into the metallic state at the end of hydrogenation, resulting in CO formation in the following CO2 capture process. Introducing steam or air purge before carbonation can significantly inhibit CO formation at the carbonation stage without affecting the catalytic performance at the hydrogenation stage.
 
关键字
chemical looping, calcium looping, dual functional materials
报告人
孙书桩
交流博士生 清华大学

稿件作者
孙书桩 清华大学
WuChunfei Queens University Belfast
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