4.11
火山灰是与波特兰水泥混合的硅质或铝质材料。它们与波特兰水泥水化过程中产生的氢氧化钙相互作用,有助于提高混凝土的强度和耐久性。火山灰活性是火山灰有效性的衡量标准,通常使用强度活性指数进行评估,该指数在 ASTM C 618-93 中定义,该指数计算含火山灰和不含火山灰的水泥混合物的抗压强度比。
粉煤灰…
波特兰水泥有时会与火山灰质材料共同粉磨或混合,这些材料为硅质和铝质物质。
在有水分存在的情况下,细分散的火山灰质材料会与水泥水化过程中释放出的氢氧化钙反应,生成具有胶凝性的化合物。
火山灰材料是天然存在的,例如火山灰和浮岩,或者为合成产物,例如粉煤灰,后者是从燃煤电厂的烟道气中获得的。
火山灰材料被添加到用于碾压混凝土、大体积混凝土和耐化学腐蚀混凝土的水泥中。
当以重量比用火山灰材料替代水泥时,由于火山灰材料的比重低于水泥,因此其替代水泥的体积将更大。
火山灰材料的水化速度较硅酸盐水泥慢,导致其水化热释放速率较低、凝结时间较长以及养护周期较长。
最后,可通过强度活性指数评估火山灰材料与水泥的火山灰活性,该指数是指部分掺入火山灰材料的水泥抗压强度与未掺入任何火山灰材料的水泥抗压强度之比。
Q1: What are pozzolans and where do they come from?
Pozzolans are siliceous and aluminous materials blended with Portland cement to improve concrete performance. They occur naturally, such as volcanic ash and pumicite, or are synthesized from industrial by-products like fly ash collected from coal-fired power plant flue gases. Pozzolans react with calcium hydroxide during cement hydration to form cementitious compounds that enhance strength and durability.
Q2: How does pozzolanic activity affect concrete strength development?
Pozzolanic hydration is slower than Portland cement hydration, resulting in longer setting times and extended curing periods. However, Portland-pozzolan cements achieve high long-term strength, depending on the pozzolan proportion used. The strength activity index, defined in ASTM C 618-93, measures a pozzolan's effectiveness by comparing compressive strength of mixtures with and without pozzolan replacement.
Q3: Why does pozzolan replacement require more cement by volume than by weight?
Pozzolans have lower specific gravity compared to Portland cement. When cement is replaced on a weight basis, the volume of pozzolan needed to match that weight is higher. This volumetric difference is important for concrete mix design calculations and material proportioning in construction applications.
Q4: What are the benefits of using pozzolans in different concrete applications?
Pozzolans are added to cement used in roller-compacted concrete, mass concreting, and chemically resistant concrete. Their slower hydration produces low heat development, making them ideal for large-volume pours. Fly ash and other pozzolans also improve sulfate resistance and long-term durability while reducing strength and heat of hydration compared to ordinary Portland cement.
Q5: What types of pozzolanic materials are used in modern concrete?
Common pozzolans include fly ash from coal combustion, rice husks burned between 500 and 700°C to yield amorphous material, metakaolin from calcined kaolinitic clay, and silica fume from silicon and ferrosilicon production. Silica fume consists of highly reactive glassy particles that fill voids in concrete, significantly enhancing its strength and durability.
Q6: How is pozzolanic activity measured and assessed?
Pozzolanic activity is assessed using the strength activity index, which calculates the ratio of compressive strength in cement mixtures partially replaced with pozzolans to that without any replacement. This metric, standardized in ASTM C 618-93, quantifies a pozzolan's effectiveness in contributing to concrete strength development and is essential for quality control in cement blending.
Q7: What chemical reaction occurs between pozzolans and Portland cement?
In the presence of moisture, finely divided pozzolans react with calcium hydroxide released during hydration of cement to produce additional cementitious compounds. This pozzolanic reaction improves concrete's mechanical properties and durability. The reaction proceeds more slowly than primary cement hydration, contributing to extended curing times but ultimately higher long-term strength.