含蔗渣灰大体积混凝土的半绝热温升评定

Amanuel Bersisa, Adil Zekaria
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引用次数: 0

摘要

以往的研究表明,火山灰材料是大体积混凝土中减缓显著热量的明智选择。本研究旨在研究不同环境温度下蔗渣灰混凝土的早期热性能。此外,还评估了不同配合比的混凝土试件的抗压强度。测定了纯硅酸盐水泥、甘蔗渣体积掺量分别为6.5%、13%和20%的四种不同掺量混凝土的半绝热温升数据。混凝土试件尺寸为30cm*30cm*40cm,浇筑后采用聚苯乙烯泡沫塑料保温。每隔30分钟在三个不同的位置测量一次温度。采用能够模拟25.15℃、35.54℃和43.77℃平均环境温度的温度室,研究了环境温度对试件早期热响应的影响。结果表明,在早期强度下降的情况下,甘蔗渣灰替代水泥的最佳替代率为10%。试验结果表明,蔗渣灰的掺入改变了混凝土的温升-时间曲线,降低了水化总热,减小了试件的热梯度。随着环境温度的升高,所有混合物的峰值温度表都升高,但含有甘蔗渣灰的混合物相对于对照组显示出较慢的热释放速率。研究证明,火山灰反应是缓慢的,在很长一段时间内释放热量,而且不早发生。它的优点是在大量的混凝土放置,冷却可能导致开裂后,显著的温度上升。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessment of the Semi-Adiabatic Temperature Rise of Mass Concrete Containing Bagasse Ash
Previous studies show that pozzolan materials are a wise choice for retarding significant heat in mass concrete placements. This research aims at studying the early age thermal property of concrete containing bagasse ash under different ambient temperatures. Moreover, the compressive strength of concrete specimens with varying ratios of the mix is assessed. Semi-adiabatic temperature rise data of four different concrete mixtures (containing pure Portland cement, 6.5%, 13%, and 20% dosage of bagasse ash by volume) are determined. Concrete specimens of size 30cm*30cm*40cm were cast and insulated using Styrofoam. The temperature measurement is taken at three different locations for every 30 minutes of interval. The influence of ambient temperature on specimens' early age thermal response is studied using a temperature chamber capable of simulating 25.15°C, 35.54°C, and 43.77°C average ambient temperatures. The results indicated that bagasse ash could replace the cement up to an optimum replacement level of 10 percent even if an early age strength drop is observed. The experiment revealed that the bagasse ash in the concrete mixture shift the temperature rise-time profile, reduces the total heat of hydration, and decreases the thermal gradient in the specimens. The peak temperature gauge of all mixes elevated as the ambient temperature increased, but mixtures containing bagasse ash show a slower heat liberation rate relative to the control group. The study proves pozzolan reaction is slow, releasing heat over a long period and not taking place early. It has merit in a massive concrete placement where cooling can lead to cracking following a significant temperature rise.
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