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首页> 外文期刊>Journal of Cleaner Production >Development of carbon-capture binder using stainless steel argon oxygen decarburization slag activated by carbonation
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Development of carbon-capture binder using stainless steel argon oxygen decarburization slag activated by carbonation

机译:利用碳化活化的不锈钢氩氧脱碳渣研制碳捕集剂

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摘要

The study aims at evaluating the possibility of using stainless-steel argon oxygen decarburization (AOD) slag containing gamma-C2S as a carbon-capture construction material. For this purpose, the physicochemical changes of paste specimens with different levels of AOD slag replacement up to 70% were investigated by means of carbonation curing. gamma-C2S is non-hydraulic, and hence, does not react with water at room temperature. After carbonation, however, gamma-C2S yields reaction products such as calcite and silica gel that fill up the pores within the cement paste creating a high-density microstructure. As a result, the carbonated specimens demonstrate increased compressive strength. Due to its relatively insoluble property under typical carbonation curing conditions, silica gel is formed on the surfaces of reacting gamma-C2S particles. Therefore, crystalline calcite and highly polymerized silica, formed as a result of CO2 curing, play an important role in achieving the desired strength. Their role could be considered similar to that of calcium silicate hydrates (C-S-H), which are formed when concrete produced from Portland cement is hardened. (C) 2018 Elsevier Ltd. All rights reserved.
机译:该研究旨在评估使用含有γ-C2S的不锈钢氩氧脱碳(AOD)炉渣作为碳捕获建筑材料的可能性。为此,通过碳化固化研究了不同水平的AOD炉渣替代量高达70%的糊状样品的理化变化。 γ-C2S是非液压的,因此在室温下不会与水反应。但是,碳化后,γ-C2S会生成方解石和硅胶之类的反应产物,它们会填满水泥浆中的孔,从而形成高密度的微观结构。结果,碳酸化的样品显示出增加的抗压强度。由于其在典型的碳酸固化条件下相对不溶的特性,在反应的γ-C2S颗粒表面形成了硅胶。因此,由于CO 2固化而形成的方解石晶体和高度聚合的二氧化硅,在获得所需强度方面起着重要作用。可以认为它们的作用与硅酸盐水合物(C-S-H)相似,后者是由波特兰水泥生产的混凝土硬化后形成的。 (C)2018 Elsevier Ltd.保留所有权利。

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