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Mechanical Properties and Micromorphology of Calcium Oxide Expansion Agent on River Sand/Machine-Made Sand Concrete

机译:河砂/机制砂混凝土上氧化钙膨胀剂的力学性能及微观形貌

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Freeze-thaw damage is one of the main factors affecting the service life and durability of concrete. Optimizing the microscopic pore distribution of concrete is an effective measure to improve its frost resistance. This paper takes mixed sand (machine-made sand?+?river sand) concrete as the research object and analyzes the influence mechanism of different content of CaO expansion agent on the physical and mechanical properties and frost resistance of mixed sand concrete. Concrete samples with different calcium oxide contents (0, 6, 8, and 10) were prepared by mass substitution with fly ash. Early air content, slump, compressive strength testing, and other analysis methods are used to determine the physical and mechanical properties of river sand-manufactured sand concrete with different calcium oxide expansion agent blending ratios. Freeze-thaw cycles were observed under X-ray computed tomography, SEM, and EDS to explore the mechanical properties, porosity, and microstructures of the samples. The concrete air content increases, the porosity first decreases and then increases, and its compressive strength decreases as the mixing ratio of calcium oxide expansion agent increases, but the mixing ratio has little effect on the slump. When the content of calcium oxide in concrete is higher than 8, the mass compressive strength and relative dynamic elastic modulus of concrete increase with the increase of substituting calcium oxide expansion agent. The cross section of the concrete sample is a two-dimensional plane before freezing-thawing, and the pore structure densified as CaO content increases. However, new cracks are generated in the sample with 10 expansion agent content. After 400 freezing-thawing cycles, 0 and 6 calcium oxide expansive samples have irregular three-dimensional structures with concave and convex, and many connected holes and penetrating cracks appear. There are a small number of disconnected void clusters in the section of the sample with 8 and 10 content. A large number of calcium hydroxide ((Ca(OH)2) crystals fill the pores and cracks and improve the frost resistance of concrete.
机译:冻融损伤是影响混凝土使用寿命和耐久性的主要因素之一。优化混凝土的微观孔隙分布是提高混凝土抗冻性的有效措施。本文以混砂(机制砂+河砂)混凝土为研究对象,分析了不同CaO膨胀剂含量对混砂混凝土物理力学性能及抗冻性的影响机理。采用粉煤灰大量置换制备不同氧化钙含量(0%、6%、8%、10%)的混凝土样品。采用早期含气率、坍落度、抗压强度试验等分析方法,测定不同氧化钙膨胀剂掺混比例的河砂造砂混凝土的物理力学性能。在X射线计算机断层扫描、SEM和EDS下观察冻融循环,以探究样品的力学性能、孔隙率和微观结构。混凝土掺气量增加,孔隙率先减小后增大,抗压强度随氧化钙膨胀剂拌合比的增加而降低,但拌合比对坍落度影响不大。当混凝土中氧化钙含量高于8%时,混凝土的质量抗压强度和相对动弹性模量随替代氧化钙膨胀剂的增加而增加。混凝土试样的截面在冻融前为二维平面,孔隙结构随着CaO含量的增加而致密化。然而,在膨胀剂含量为10%的样品中会产生新的裂纹。经过400次冻融循环后,0%和6%氧化钙膨胀样品具有凹凸不规则的三维结构,出现许多连接孔和穿透裂缝。样品部分有少量不相连的空隙簇,含量分别为 8% 和 10%。大量的氢氧化钙((Ca(OH)2)晶体填充了孔隙和裂缝,提高了混凝土的抗冻性。

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  • 来源
    《Advances in civil engineering》 |2022年第5期|1.1-1.17|共17页
  • 作者单位

    Department of Civil Engineering School of Civil Engineering Yulin University Yulin 719000;

    School of Energy Engineering Yulin University Yulin 719000 Shaanxi ||School of Civil Engineering Chang’an University Xi’an 710061;

    School of Life Science Yulin University Yulin 719000School of Civil Engineering Chang’an University Xi’an 710061;

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  • 原文格式 PDF
  • 正文语种 英语
  • 中图分类 建筑科学;
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