空军基地路面用三元混合地聚合物混凝土性能及环境生命周期评价

Shaik Hussain , John Matthews , Sudhir Amritphale , Niloy Paul , Richard Edwards , Elizabeth Matthews , Avijit Saha , Stuti Khatiwada
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引用次数: 0

摘要

军事空军基地的钢筋混凝土路面经常遭受石油泄漏和随后的涡轮发动机或废气的火焰暴露,随着时间的推移,水泥混凝土的性能迅速恶化,使水泥混凝土成为指定用途的不合格材料。在这种情况下,地聚合物具有更好的机械性能和抗腐蚀性环境的能力。以粉煤灰、高炉矿渣和偏高岭土为原料,经氢氧化钠和水玻璃溶液活化后,设计了多种地聚合物混凝土,对其力学性能和耐久性进行了评价。采用常温养护和700℃24h养护两种养护方式,验证了养护温度对混凝土性能的影响。为了模拟空军基地停机坪的条件,这些样品被浸泡在航空油中,随后暴露在火焰中,以检查它们的机械强度和尺寸稳定性。粉煤灰、矿渣和偏高岭土按重量比分别为20% %、50% %和30% %组合制成的样品,虽然具有较好的力学性能、耐酸性能和航空油试验性能,但其可加工性较差,最小坐实性较差,难以现场应用。粉煤灰、矿渣和偏高岭土的掺量分别为40% %、30% %和30% %,具有良好的耐久性能和机械强度,工作性好,是空军基地应用的理想设计掺量。研究还评价了地聚合物混凝土的环境生命周期评价(从摇篮到闸门),并将其与35 MPa水泥混凝土进行了比较。与水泥混凝土相比,所有地聚合物混凝土的全球变暖潜能值平均降低了60% %。含有偏高岭土的地聚合物混合物与水泥混凝土混合物相比,显示出更高的矿产资源枯竭。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance and environmental life cycle assessment of ternary blended geopolymer concrete for pavements on military airbases
The performance of reinforced concrete pavements in military airbases subjected to regular oil spillage and subsequent flame exposure from turbo engine or exhaust deteriorate rapidly over time making cement concrete a substandard material for the designated purpose. Geopolymers offer better mechanical performance and resistance to aggressive environments under these circumstances. The present study evaluates the mechanical and durability performance of various geopolymer concretes designed from fly ash, blast furnace slag and metakaolin activated by sodium hydroxide and sodium silicate solutions. Two curing regimes, ambient room curing and 700 C curing for 24hrs have been adopted to verify the influence of curing temperature on the concrete properties. To mimic the airbase apron conditions, the samples have been submerged in aviation oils and subsequently exposed to flame to check their mechanical strength and dimensional stability. Though samples made from combination of fly ash, slag and metakaolin in the ratio of 20 %, 50 % and 30 % by weight respectively, displayed better mechanical performance, resistance to acid and aviation oils test, it offered poor workability with minimal setting making it difficult for field applications. Geopolymer mix with fly ash, slag and metakaolin in 40 %, 30 % and 30 % by weight have displayed acceptable durability performance and superior mechanical strength with good workability making it an ideal design mix for airbase applications. The study also evaluates the environmental life cycle assessment (cradle to gate) of the geopolymer concrete and compares them with a 35 MPa cement concrete. All geopolymer concrete mixes on average displayed 60 % less global warming potential in comparison with cement concrete. Geopolymer mixes containing metakaolin, displayed higher mineral resource depletion compared to their cement concrete counterpart.
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