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Evaluation of compressive strength development and carbonation depth of high volume slag-blended concrete

机译:大体积矿渣掺合混凝土抗压强度发展及碳化深度评估

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Compressive strength development and carbonation are critical topics for using high volume slag concrete rationally. The objective of this study is to present a numerical procedure that evaluates compressive strength and carbonation depth of high volume slag concrete. This numerical procedure consists of a blended hydration model and a carbonation reaction model. The amount of carbonatable materials, such as calcium hydroxide (CH) and calcium silicate hydrate (CSH), is calculated using the blended hydration model. Compressive strength development of cement-slag blends is evaluated from CSH content. By considering the effects of material properties and environmental conditions, the carbonation reaction model analyzes the diffusivity of carbon dioxide and the carbonation depth of concrete. The results of the analysis show that regarding compressive strength, the contribution of slag mixes prepared at a lower water to binder ratio was greater than the contribution of slag mixes prepared at a higher water to binder ratio. Regarding carbonation, with an increase in slag content or reducing the initial curing period, carbonation depth increases. The results of this study are useful for optimum mixing proportional design and carbonation durability design of concrete incorporating a high volume slag. (C) 2016 Elsevier Ltd. All rights reserved.
机译:抗压强度的发展和碳化是合理使用大量矿渣混凝土的关键主题。这项研究的目的是提出一种数值程序,以评估高体积矿渣混凝土的抗压强度和碳化深度。该数值过程由混合水合模型和碳酸化反应模型组成。使用混合水化模型计算可碳酸化材料的量,例如氢氧化钙(CH)和水合硅酸钙(CSH)。由CSH含量评估水泥-矿渣共混物的抗压强度。通过考虑材料特性和环境条件的影响,碳化反应模型分析了二氧化碳的扩散率和混凝土的碳化深度。分析结果表明,关于抗压强度,以较低的水与粘结剂的比例制备的矿渣混合物的贡献大于以较高的水与粘结剂的比例制备的矿渣混合物的贡献。关于碳化,随着炉渣含量的增加或初始固化时间的减少,碳化深度增加。这项研究的结果对于掺入大量矿渣的混凝土的最佳混合比例设计和碳化耐久性设计很有用。 (C)2016 Elsevier Ltd.保留所有权利。

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