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Autogenous Shrinkage, Microstructure, and Strength of Ultra-High Performance Concrete Incorporating Carbon Nanofibers

机译:掺碳纳米纤维的超高性能混凝土的自发收缩,微观结构和强度

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摘要

The mix design of ultra-high performance concrete (UHPC) is complicated by the presence of many “ingredients.” The fundamental packing density allows a simpler mix design with fewer ingredients to achieve optimum packing density and dense microstructure. The optimum particle grading increases the flowability of UHPC and eliminates entrapped air. This study presents a simplified particle grading design approach that positively influences the strength, autogenous shrinkage, and microstructure characteristics of UHPC. Carbon nanofibers (CNFs) of superior mechanical properties were added to enhance the strength of UHPC and to reduce its autogenous shrinkage. In addition, ground granulated blast-furnace slag (GGBS) was used as a cement replacement material to reduce the amount of cement in UHPC mixes. Test results showed that the presence of homogeneously dispersed CNF increased the compressive strength and compensated the autogenous shrinkage of UHPC. The findings indicated that an ideal particle distribution, which is close to the modified Andreasen and Andersen grading model, contributed to achieving high compressive strength and CNFs were capable of providing nano-bridges to compensate the shrinkage caused by GGBS.
机译:由于存在许多“成分”,超高性能混凝土(UHPC)的混合设计变得复杂。基本的堆积密度允许使用更少的成分进行更简单的混合设计,以实现最佳的堆积密度和致密的微观结构。最佳的颗粒分级可增加UHPC的流动性并消除残留的空气。这项研究提出了一种简化的颗粒分级设计方法,可对UHPC的强度,自发收缩和微观结构特征产生积极影响。添加了具有优异机械性能的碳纳米纤维(CNF),以增强UHPC的强度并减少其自发收缩。此外,将磨碎的高炉矿渣(GGBS)用作水泥替代材料,以减少UHPC混合物中水泥的含量。测试结果表明,均匀分散的CNF的存在增加了抗压强度并补偿了UHPC的自发收缩。研究结果表明,理想的粒子分布接近于改进的Andreasen和Andersen渐变模型,有助于实现高抗压强度,而CNF能够提供纳米桥来补偿GGBS引起的收缩。

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