详细信息
Chemical Engineering Solution for Carbon Neutrality in Cement Industry: Tailor a Pathway from Inevitable Co2 Emission into Syngas ( EI收录)
文献类型:期刊文献
英文题名:Chemical Engineering Solution for Carbon Neutrality in Cement Industry: Tailor a Pathway from Inevitable Co2 Emission into Syngas
作者:Shao, Bin[1,2]; Zhu, Yuanming[2]; Hu, Jun[4]; Zong, Yuan[3]; Xie, Zhicheng[1]; Li, Su[1]; Du, Wenli[2]; Wang, Meihong[4]; Liu, Honglai[1,3]; Qian, Feng[2]
机构:[1] School of Chemistry and Molecular Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai, 200237, China; [2] Key Laboratory of Smart Manufacturing in Energy Chemical Process, Ministry of Education, School of Information Science and Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai, 200237, China; [3] State Key Laboratory of Chemical Engineering, School of Chemical Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai, 200237, China; [4] Department of Chemical and Biological Engineering, The University of Sheffield, Sheffield, S1 3JD, United Kingdom
年份:2023
外文期刊名:SSRN
收录:EI(收录号:20240002204)
语种:英文
外文关键词:Calcination - Calcite - Calcium carbonate - Carbon - Carbon dioxide - Cements - Economic analysis - Energy conservation - Industrial emissions - Limestone - Methane - Synthesis gas - Thermoanalysis - Thermodynamic properties - Thermolysis
摘要:Cement production is one of the largest industrial sources of CO2 emissions due to the thermal decomposition of limestone (CaCO3). We integrate the chemical engineering strategy into the cement production and propose a novel process of "Carbonate Dry Reforming of Methane (CaDRM)" that converts the limestone (CaCO3) directly into the cement clinker precursor (CaO) and syngas (CO+H2) through reacting with methane (CH4). Thermodynamic analysis indicates the reaction temperature of CaDRM is lowered by at least 200°C compared with CaCO3 thermal decomposition. Lab scale experimental studies show a 95% CaO yield at a 91% syngas selectivity and 90% CH4 conversion in CaDRM using cement raw meal at 700°C. Process simulation scale-up and economic analysis indicate CaDRM pathway can reduce 37.2% CO2 emission in comparison with the conventional CaCO3 thermal decomposition pathway. More significantly, the net profit of $271.0/t (clinker) can be achieved by the value-added syngas products and the energy saving. The economic and environmental benefits of the proposed CaDRM strategy can help its future commercial deployment. ? 2023, The Authors. All rights reserved.
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