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Mixture Design Approach to optimize the rheological properties of the material used in 3D cementitious material printing

机译:混合物设计方法可优化3D胶凝材料打印中使用的材料的流变性能

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The Mixture Design Approach was adopted in this report to formulate the correlation between the cementitious material components and material rheological properties (static yield stress, dynamic yield stress) and identify the optimal material composition to get a balance between high cementitious material static yield stress and low dynamic yield stress. Cement, sand, fly ash, water and silica fume were blended to form the test materials according to mixture design and the responses (static yield stress, dynamic yield stress) were logged by the Viskomat. Two non-linear mathematic models for responses were experimentally validated based on the ANOVA (Analysis of Variance) analysis. The results indicated that the optimal replacement of supplementary cementitious materials can be determined according to static yield stress and dynamic yield stress based on the ternary components. The Mixture Design Approach is then proven to be an effective method of optimizing the cementitious materials used in 3D cementitious material printing (3DCMP) application. Crown Copyright (C) 2018 Published by Elsevier Ltd. All rights reserved.
机译:本报告采用混合物设计方法来制定胶凝材料成分与材料流变特性(静态屈服应力,动态屈服应力)之间的相关性,并确定最佳材料成分,以在高胶凝材料静态屈服应力与低胶凝材料之间取得平衡。动态屈服应力。根据混合物设计,将水泥,沙子,粉煤灰,水和硅粉混合形成测试材料,Viskomat记录响应(静态屈服应力,动态屈服应力)。基于ANOVA(方差分析)分析,通过实验验证了两个用于响应的非线性数学模型。结果表明,基于三元组分,可以根据静态屈服应力和动态屈服应力来确定补充胶凝材料的最佳替代方案。事实证明,混合物设计方法是优化3D胶凝材料打印(3DCMP)应用中使用的胶凝材料的有效方法。 Crown版权所有(C)2018,由Elsevier Ltd.出版。保留所有权利。

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