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Ex situ mineral carbonation for CO_2 mitigation: Evaluation of mining waste resources, aqueous carbonation processability and life cycle assessment (Carmex project)

机译:用于CO_2缓解的异地矿物碳酸化:采矿废物资源评估,水性碳酸化可加工性和生命周期评估(Carmex项目)

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This article presents the main outputs from the multidisciplinary Carmex project (2009-2012), which was concerned with the possibility of applying ex situ mineral carbonation concepts to mafic/ultramafic mining wastes. Focus points of the project included (i) matching significant and accessible mining wastes to large CO_2 emitters through a dedicated geographical information system (GIS), (ii) analysis of aqueous carbonation mechanisms of mining waste and process development and (iii) environmental assessment of ex situ mining waste carbonation through life cycle assessment (LCA) methodology. With a number of materials associated with the mining sector, the project took a close look at the aqueous carbonation mechanisms for these materials and obtained unexpected carbonation levels (up to 80%) by coupling mechanical exfoliation and reactive carbonation. Results from this work support the possibility of processing serpentine-rich peridotites without applying the classical first step of heat activation. Perspectives are also given for the carbonation of Ni-pyrorhetallurgical slag available closed to ultramafic mining residues. LCA of the mining waste carbonation system as a whole made it clear that the viability of this CO_2 storage option lies with the carbonation process itself and optimisation of its operating conditions. By combining the body of knowledge acquired by this project, it is concluded that New Caledonia, with its insularity and local abundance of 'carbonable' rocks and industrial wastes coupled with significant greenhouse gas (GHG) emissions from world-class nickel pyro and hydrometallurgical industries stands out as a strong potential candidate for application of ex situ mineral carbonation.
机译:本文介绍了多学科的Carmex项目(2009-2012年)的主要产出,该项目关注将异地矿物碳酸化概念应用于铁镁/超音速采矿废物的可能性。该项目的重点包括:(i)通过专用的地理信息系统(GIS)使大量可及的采矿废料与大型CO_2排放者相匹配;(ii)分析采矿废料的含水碳酸化机理并进行工艺开发;以及(iii)通过生命周期评估(LCA)方法进行的异地采矿废物碳化。通过与采矿业相关的多种材料,该项目仔细研究了这些材料的水性碳酸化机理,并通过机械剥落和反应性碳酸化结合获得了意外的碳酸化水平(最高80%)。这项工作的结果支持了无需使用经典的第一步热活化处理富含蛇纹石的橄榄岩的可能性。还提供了对超镁铁矿开采残留物可用的镍焦高温冶金渣碳化的前景。整个采矿废碳酸化系统的LCA清楚表明,这种CO_2储存选项的可行性取决于碳酸化过程本身及其优化的运行条件。通过结合该项目获得的知识,得出的结论是,新喀里多尼亚及其与世隔绝的“可碳化”岩石和工业废料的局部性和局部性,以及来自世界一流的镍焦和湿法冶金行业的大量温室气体(GHG)排放在异地矿物碳酸化中脱颖而出,是一个强大的潜在候选人。

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