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Dehydroxylation of serpentine minerals: Implications for mineral carbonation

机译:蛇纹石矿物质的脱羟基作用:矿物质碳酸化的意义

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摘要

This review examines studies on the dehydroxylation of serpentine minerals published in the open literature from 1945 to 2013, with brief description of earlier work. Presently, the energy cost and technological complications, required to amorphise serpentine minerals by dehydroxylation, prevent their large-scale application for sequestering of CO2. The focus of the review is on thermal dehydroxylation, although mechanical dehydroxylation by grinding and shock, as well as thermomechanical dehydroxylation are also covered. We discuss the chemical and physical transformations involving the proposed mechanisms, thermal stability, reaction kinetics, the formation of intermediates and products, associated heat requirements, factors that influence the reaction, as well as associated enhancements in both dissolution and carbonation. The primary factor controlling the availability of Mg for either extraction or carbonation is structural disorder. The review demonstrates that, activation processes must avoid recrystallisation of disordered phases to fosterite and enstatite, and minimise the partial pressure of water vapour that engenders reverse reaction
机译:这篇综述审查了公开文献中发表于1945年至2013年的蛇纹石矿物质脱羟基的研究,并简要介绍了早期的工作。当前,通过脱羟基使蛇纹石矿物非晶化所需的能量成本和技术复杂性阻止了其大规模用于隔离CO 2。审查的重点是热脱羟基,尽管也涵盖了通过研磨和冲击进行的机械脱羟基以及热机械脱羟基。我们讨论了涉及拟议机制,热稳定性,反应动力学,中间体和产物的形成,相关的热需求,影响反应的因素以及溶解和碳酸化的相关增强的化学和物理转化。控制提取或碳酸化镁的有效性的主要因素是结构紊乱。审查表明,活化过程必须避免无序相再结晶以生成富碱石和顽辉石,并最大程度减少引起逆反应的水蒸气分压。

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