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Application of ultra-high performance concrete for thermal resistance materials

机译:超高性能混凝土在耐热材料中的应用

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This paper investigates the thermal resistance of ultra-high performance concrete (UHPC) composites using different fillers of low thermal conductivity. The development of new concrete for energy saving facilities is more demanding for climate change threat to human. The use of UHPC composite with expanded polystyrene (EPS) beads as well as different fillers of low thermal conductivity has shown a viable option of architectural sandwich walls of insulation. The optimum fillers of thermal resistance for UHPC are determined by the tradeoff of compressive strength between heat conductivity. Better thermal properties of some UHPC composites make lower compressive strength of UHPC. To evaluate the varying thermal and mechanical characteristics of UHPC composites with the quantity of fillers, the method of volumetric substitution for UHPC was investigated in this paper. The UHPC composite of thermal resistance with comparable compressive strength can be possibly used for concrete blocks to transfer flexural compression force in efficient thermal breaker systems. Test results show that the strength of the concrete is greatly influenced by the curing method and the most important factors affecting the strength of concrete are curing temperature and curing time. Structural UHPC walls of thermal resistance serve as both load transfer and barrier to external temperature. To investigate the mechanical behavior of composite sandwich panels, the panels for the study are fabricated by new concrete as core and face sheets and the influence of the three components - the mechanical properties of the core material, the strength of the face sheet material, and the bond strength adhesive material - was evaluated. The flexural capacity of the specimens UHPC with EPS core showed high strength in a stable linear behavior before core cracking.
机译:本文研究了使用不同低导热填料的超高性能混凝土(UHPC)复合材料的热阻。针对气候变化对人类的威胁,节能设施用新型混凝土的开发提出了更高的要求。使用UHPC复合材料、发泡聚苯乙烯(EPS)珠以及不同的低热传导率填料,已证明是建筑隔热夹层墙的可行选择。UHPC的最佳耐热填料由抗压强度和导热性之间的权衡决定。某些UHPC复合材料具有更好的热性能,因此其抗压强度较低。为了评估UHPC复合材料的热性能和力学性能随填料用量的变化,本文研究了UHPC的体积替代方法。具有相当抗压强度的热阻UHPC复合材料可能用于混凝土砌块,以在高效的热破胶系统中传递弯曲压缩力。试验结果表明,养护方式对混凝土强度影响很大,养护温度和养护时间是影响混凝土强度的最重要因素。热阻结构UHPC墙既可以传递荷载,又可以阻挡外部温度。为了研究复合夹芯板的力学性能,本研究中的夹芯板由新混凝土制成,作为芯板和面板,并评估了三个组成部分的影响——芯板材料的机械性能、面板材料的强度和粘合强度粘合材料。EPS芯材UHPC试件的抗弯承载力在芯材开裂前表现出较高的强度和稳定的线性行为。

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