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Combined synthesis of Li4SiO4 sorbent with high CO2 uptake in the indirect carbonation of blast furnace slag process

机译:高二氧化碳吸附在高二氧化碳加吸收中的综合合成高炉矿渣工艺中的间接碳酸盐

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Carbon capture, utilization and storage (CCUS) is one of the most important technological options to mitigate the effect of greenhouse gases on the global climate. A process for indirect mineral carbonation of blast furnace slag (BFS) with (NH4)(2)SO4 as a recyclable reagent has been proposed recently. Preparation of high-performance and high-value-added products from its by-products would further improve economy of the process. In this study, Li4SiO4, a lithium-based high temperature CO2 sorbent, was prepared using Li2CO3 or LiOH center dot H2O and the silica gel derived from the indirect carbonation process. As a comparison, two other silicon sources were also used in the synthesis. The sorbents thus-prepared were compared for their CO2 uptake performances. The results show that the sorbent synthesized with Li2CO3 and the BFS-derived silica gel at Li/Si molar ratio of 4 (Li2CO3-BFS-4) possesses the best CO2 uptake performance with a sorption capacity of 0.329 (g CO2/g sorbent) within 20 min. The replacement of Li+ in the Li4SiO4 crystal lattice by the impurity metal ions, Ti4+ and Al3+, entrained in the silica gel through co-precipitation during the mineralization process, enhanced the diffusion of Li+ and O-2(-), which might be responsible for the excellent CO2 uptake performance. The effect of absorption temperature, Li/ Si ratio, CO2 concentration and the CO2 sorption/desorption cycling stability were also investigated systematically. Compared with other existing synthesis methods, the method presented in this work for high temperature CO2 sorbent of Li4SiO4 through mineral carbonation of blast furnace slag is more environment-friendly and economically attractive, thus with promise in industrial application.
机译:碳捕获,利用和储存(CCU)是减轻温室气体对全球气候影响的最重要的技术选择之一。最近提出了用(NH4)(2)(2)SO4作为可回收试剂的高炉炉渣(BFS)间接矿物碳酸化的方法。从其副产品的高性能和高附加值产品的制备将进一步提高该过程的经济性。在该研究中,使用Li 2 CO 3或LiOH中心点H 2 O和硅胶衍生自间接碳酸化方法的硅胶制备Li4SiO4。作为比较,在合成中也使用了另外两种硅源。将如此制备的吸附剂与其CO 2吸收性能进行了比较。结果表明,用Li 2 CO 3合成的吸附剂和在Li / Si摩尔比为4(Li 2 CO 3-BFS-4)中的BFS衍生的硅胶,具有0.329(G CO 2 / G Sorbent)的吸附能力最佳的CO 2吸收性能。在20分钟内。通过在矿化过程中通过共沉淀夹带在硅胶中的杂质金属离子,Ti4 +和Al3 +中的Li +在Li4SiO4晶格中替换Li +,增强了Li +和O-2( - )的扩散,这可能是负责任的用于优异的CO2摄取性能。还系统地研究了吸收温度,Li / Si比,CO 2浓度和CO2吸附/解吸循环稳定性的影响。与其他现有的合成方法相比,通过高炉矿渣的矿物碳酸化的高温CO2吸附剂在这项工作中提出的方法更加环保,经济上具有经济吸引力,因此在工业应用中承诺。

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