含相变材料和水的多功能轻骨料混凝土减损

Wenyu Liao, Aditya Kumar, K. Khayat, Hongyan Ma
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引用次数: 23

摘要

提出了一种将相变材料(PCM)加载到轻质砂(LWS)内部并用水密封表面孔隙的多功能轻质骨料的创新概念。加载在LWS中的PCM可以作为混凝土中的温度管理剂,表面孔隙中的水可以实现内部固化。研究发现,破碎后膨胀页岩LWS的颗粒形状和孔隙结构使其成为PCM的理想载体,可以加载足够的PCM,并保持更好的机械联锁(与天然砂相比)。当与内部养护效果相结合时,LWS与水泥浆体形成一个相互渗透的界面过渡区,其抗压强度可与天然砂砂浆相媲美。渗透到表面孔隙中的水化产物也有助于稳定LWS中的PCM。然而,任何在LWS中不稳定的PCM残留物往往会损害强度。在优化方案下,通过级配、PCM浸渍、漂洗和水饱和制备LWS-PCM复合骨料。与此骨料配比的砂浆的28天强度与参考砂浆相当,自强度降低63%
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Multifunctional Lightweight Aggregate Containing Phase Change Material and Water for Damage Mitigation of Concrete
This paper presents an innovative concept of multifunctional lightweight aggregate, which is produced by loading phase change material (PCM) into the interior of lightweight sand (LWS) and sealing the surface pores using water. The PCM loaded in the LWS functionalizes it as a temperature management agent in concrete, and the water in surface pores enables internal curing. It has been found that the particle shape and pore structure of crushed expanded shale LWS makes it an ideal carrier for PCM, loading sufficient PCM and maintaining better (compared to natural sand) mechanical interlocking. When coupled with the internal curing effect, the LWS yields an interpenetrated interfacial transition zone with the cement paste, leading to a compressive strength comparable to natural sand mortar. The hydration products penetrated into the surface pores also helps stabilizing PCM in the LWS. However, any PCM residuum non-stabilized in LWS tends to compromise the strength. Under an optimized scenario, the LWS-PCM composite aggregate is produced by grading, PCM impregnation, rinsing, and water saturation. A mortar proportioned with this aggregate yields comparable 28-day strength to the reference mortar and a 63% lower autogenous
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