掺合水泥自密实混凝土性能及热应力分析

Benson Kipkemboi, S. Miyazawa
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摘要

自密实混凝土是一种能够在自身重量下流动和巩固的混凝土,即使在存在密集钢筋的情况下也能完全填满模板,同时保持均匀性,无需任何额外的压实。自密实混凝土是通过使用高比例的粉末含量和超级增塑剂来实现的。因此,预计会出现明显的热裂。混凝土结构中的热裂是人们关注的问题。本研究的目的是开展实验,研究使用普通硅酸盐水泥和磨碎的粒状高炉矿渣(GGBFS)的混合物开发的SCC的新鲜和硬化性能。为评价日本混凝土协会(JCI)模型方程的适用性,找出自密实混凝土与法振混凝土的异同点——b级波特兰高炉矿渣混凝土,采用三维有限元法对所提出的自密实混凝土与法振混凝土进行了热应力模拟分析。为了实现这些目标,通过实验确定了混凝土的自收缩、绝热温升、干燥收缩、弹性模量、劈裂抗拉强度和抗压强度等性能。实验结果表明,在水胶比相近的情况下,自密实混凝土除具有新鲜性能外,其硬化性能与普通振动混凝土相似。研究还表明,自密实混凝土在W/B为32%时,掺加50%的磨粒级炉渣,其抗热裂性能优于掺加30% GGBFS的自密实混凝土。如果相关常数由试验数据导出,则JCI模型方程可以成功地用于评价自密实混凝土的硬化性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Properties and Thermal Stress Analysis of Blended Cement Self-Compacting Concrete
Self-Compacting concrete is a concrete that is able to flow and consolidate under its own weight, completely fill the formwork even in the presence of dense reinforcement, whilst maintaining homogeneity and without the need for any additional compaction. Self-Compacting concrete is achieved by using high proportions of powder content and super plasticizers. Due to this, pronounced thermal cracking is anticipated. Thermal cracking in concrete structures is of great concern. The objective of this research is to carry out experiments and investigate fresh and hardened properties of SCC developed using a blend of ordinary Portland cement and ground granulated blast furnace slag (GGBFS), to evaluate the applicability of Japan Concrete Institute (JCI) model equations and to find out any similarities and differences between Self- Compacting concrete and normal vibrated concrete—Portland blast furnace slag concrete class B. Thermal stress analysis of the proposed Self-Compacting concrete and normal vibrated concretes were investigated by simulation using 3D FEM analysis. To carry out these objectives, concrete properties such as autogenous shrinkage, adiabatic temperature rise, drying shrinkage, modulus of elasticity, splitting tensile strength and compressive strength were determined through experiments. From experimental results, it was observed that except for the fresh properties, the hardened properties of Self-Compacting exhibit similar characteristics to those of normal vibrated concrete at almost similar water to binder ratios. It was also established that Self-Compacting concrete at W/B of 32% with a 50% replacement of ground granulated blast furnace slag has better thermal cracking resistance than SCC with 30% GGBFS replacement. It is also found that provided the relevant constants are derived from experimental data, JCI model equations can be applied successfully to evaluate hardened properties of Self-Compacting concrete.
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