三丙胺辅助浸出/再生-矿化CO2固存及高纯CaCO3生产工艺

IF 8.9 2区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Kailun Chen, Jinglin Li, Li Lin, Weikai Qin, Yuchen Gao, Endian Hu, Jingwen Chang, Yukun Zhao and Jianguo Jiang*, 
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引用次数: 0

摘要

近年来,处理碱性固体废物和获得CO2固存的联合工艺引起了人们的广泛关注。然而,专注于低化学品消耗和高纯度CaCO3生产的研究仍然有限。提出了CO2矿化的浸出-再生-矿化工艺,同时生产CaCO3。首先,在pH = 10.5、浓度为23,500 mg/L的条件下,在丙化三丙胺(TPA)的辅助下,对城市生活垃圾焚烧飞灰(MSWI FA)中的Ca进行了选择性浸出。同时,质子化后的TPA再生用于后续矿化,在30 min内完成矿化动力学。温度对矿化效率和产物纯度没有显著影响。随着温度的升高,晶型由钙矾石转变为纯方解石。TPA的添加量对矿化性能有显著影响,超过化学计量比可使矿化效率接近100%,并促进产品晶型向纯钒矾转变。根据实验结果和产物表征,提出了一种基于质子转移的浸出/再生-矿化机理。在最佳条件下,CO2固存量达到77.5 g/kgFA,纯CaCO3产率为176 g/kgFA。这项工作为废物处理、二氧化碳封存和CaCO3生产提供了一种有前途的选择,可以节省试剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Tripropylamine-Assisted Leaching/Regeneration-Mineralization Process for CO2 Sequestration with Concurrent High-Purity CaCO3 Production

Tripropylamine-Assisted Leaching/Regeneration-Mineralization Process for CO2 Sequestration with Concurrent High-Purity CaCO3 Production

The combined process of treating alkaline solid wastes and obtaining CO2 sequestration has recently garnered significant attention. However, studies focusing on low chemical consumption alongside high-purity CaCO3 production are still limited. Herein, a leaching/regeneration-mineralization process for CO2 mineralization to concurrently produce CaCO3 was proposed. First, selective leaching of Ca from municipal solid waste incineration fly ash (MSWI FA) was conducted with the assistance of protonated tripropylamine (TPA) at pH = 10.5, with a concentration of 23,500 mg/L. Concurrently, the protonated TPA was regenerated for subsequent mineralization, completing the mineralization kinetics within 30 min. Temperature had no significant effect on mineralization efficiency or product purity. As the temperature increased, the crystal form transitioned from vaterite to pure calcite. The amount of TPA added significantly influenced mineralization performance, exceeding the stoichiometric ratio allowed for nearly 100% of mineralization efficiency and promoted the transformation of the product’s crystal form toward pure vaterite. Based on experimental results and product characterization, a potential proton transfer-based leaching/regeneration-mineralization mechanism was proposed. Under optimal conditions, the CO2 sequestration reached 77.5 g/kgFA, yielding 176 g/kgFA of pure CaCO3. This work offers a promising option for waste disposal, CO2 sequestration, and CaCO3 production in a reagent-saving manner.

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来源期刊
Environmental Science & Technology Letters Environ.
Environmental Science & Technology Letters Environ. ENGINEERING, ENVIRONMENTALENVIRONMENTAL SC-ENVIRONMENTAL SCIENCES
CiteScore
17.90
自引率
3.70%
发文量
163
期刊介绍: Environmental Science & Technology Letters serves as an international forum for brief communications on experimental or theoretical results of exceptional timeliness in all aspects of environmental science, both pure and applied. Published as soon as accepted, these communications are summarized in monthly issues. Additionally, the journal features short reviews on emerging topics in environmental science and technology.
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