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Self-healing characterization of UHPFRCC with crystalline admixture: Experimental assessment via multi-test/multi-parameter approach

机译:具有晶体混合物的UHPFRCC的自愈性表征:通过多测试/多参数方法进行实验评估

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Within the framework of the Research Project ReSHEALience, new advanced Ultra High-Performance Fibre-Reinforced Cement Composites with enhanced durability, hereafter denoted as Ultra High Durability Concretes, are under investigation to characterize their tensile behaviour and durability performance in aggressive conditions, devoting particular attention to the phenomenon of self-healing. Three different mixes are under scrutiny, based on the combination of cement (CEM I or CEM III), slag, small aggregates (sand with a maximum size of 2 mm), and steel or metallic-alloy amorphous fibre. Self-healing capability has been investigated in aggressive environment (namely, under immersion in geothermal water) via 3 different test setups: (1) water permeability test on pre-cracked concrete disks, (2) 4-Point Bending Test - 4PBT on 100 x 100 x 500mm(3) prismatic beam specimens and (3) on 25 x 100 x 500mm(3) thin beams. In the case of beams, self-healing has been assessed via visual inspection of cracks trough digital microscope and via mechanical re-loading, so to investigate both crack-sealing capability and mechanical recovery. The results of this assessment aim at providing the starting point for a data base finalized at defining a design approach explicitly taking into account self-healing in the evaluation of structural durability. In particular, it has been observed as the adoption of strain-hardening cement composites significantly promotes self-healing phenomenon, thanks to smeared cracking in the tensile region and to consequent low values of crack opening. Self-healing proved to be very effective already after 1 month of curing. (C) 2021 The Authors. Published by Elsevier Ltd.
机译:在研究项目重新求助的框架内,新的先进超高性能纤维增强水泥复合材料,下文以超高耐久性的混凝土表示为特征,以表征其在侵略性条件下的拉伸行为和耐用性能,致力于特别注意对自我愈合的现象。基于水泥(CEM I或CEM III),炉渣,小聚集体(具有最大尺寸为2mm的砂)和钢或金属 - 合金非晶纤维的三种不同的混合物。通过3种不同的试验装置(即,在地热水浸没在地热水中)进行了自愈能力:(1)预裂解混凝土磁盘上的水渗透性测试,(2)4点弯曲试验 - 4PBT 100 x 100 x 500mm(3)棱柱梁标本和(3)在25 x 100 x 500mm(3)薄梁上。在梁的情况下,通过视觉检查通过裂缝槽数字显微镜和机械重新加载来评估自我愈合,从而研究裂缝密封能力和机械恢复。该评估的结果旨在为数据库提供最终确定的数据库的起点,在定义设计方法时明确考虑到结构耐久性评估中的自我愈合。特别地,由于拉伸区域中的涂抹裂缝并因此的裂缝开口的污垢开裂,因此已经观察到菌株硬化水泥复合材料的采用显着促进自愈现象。在1个月的固化后,自我愈合已被证明是非常有效的。 (c)2021作者。 elsevier有限公司出版

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