Erchao Li, Jianan Zheng, Junjie Lin, Tao Wang, Kun Luo* and Jianren Fan,
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引用次数: 0
摘要
二氧化碳矿化是二氧化碳捕获、封存和利用的关键技术,有望将工业废物转化为有价值的工业产品。然而,其复杂的反应机理和限速过程仍未得到充分阐明。在设计工业产品时,应明确合适的反应条件。在本研究中,我们通过反应分子动力学模拟全面考察了 C3S 在不同条件和分散度下的反应动力学和转化率。此外,我们还建立了一个复杂的模型,描述了包裹在水膜中的 C3S,反映了其在潮湿环境中的普遍构型。结果表明,当温度为 328 K 时,反应速度很快;当压力大于 1.0 MPa 时,转化率在高压下趋于下降,而温度的影响很小。固体废物的破碎可以增加分散度,破坏晶体结构,扩大反应表面积,从而加速反应。水膜的存在会阻碍传质,从而降低反应速度。本研究揭示了二氧化碳矿化过程的反应机理。
Molecular Insights into the CO2 Mineralization Process with Tricalcium Silicate
CO2 mineralization, a pivotal technology in CO2 capture, storage, and utilization, promises to convert industrial waste into valuable industrial products. However, the intricate reaction mechanism and rate-limiting process remain inadequately elucidated. The suitable reaction conditions should be clarified when designing industrial produce. In this study, we comprehensively examined the reaction kinetics and conversion rates of C3S under varying conditions and degrees of dispersion by reactive molecular dynamics simulation. Furthermore, we set up a sophisticated model depicting C3S encased within a water film, mirroring its prevalent configuration in moist environments. The results show that the reaction is fast when the temperature is 328 K. The conversion rate tends to decrease under elevated pressure when it is higher than 1.0 MPa, while the temperature has a minimal impact. Fragmentation of solid waste can increase the degree of dispersion, disrupting the crystal structure and expanding the reaction surface area, thereby accelerating the reaction. The presence of a water film impedes mass transfer, consequently reducing the reaction speed. The present study sheds light on the reaction mechanism of the CO2 mineralization process.
ACS OmegaChemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍:
ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.