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Effect of crack pattern on the self-healing capability in traditional, HPC and UHPFRC concretes measured by water and chloride permeability

机译:裂缝模式对传统混凝土,HPC和UHPFRC混凝土通过水和氯的渗透性的自我修复能力的影响

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摘要

Concrete has a natural self-healing capability to seal small cracks, named autogenous healing, which is mainly produced by continuing hydration and carbonation. This capability is very limited and is activated only when in direct contact with water. High Performance Fibre-Reinforced Concrete and Engineered Cementitious Composites have been reported to heal cracks for low damage levels, due to their crack pattern with multiple cracks and high cement contents. While their superior self-healing behaviour compared to traditional concrete types is frequently assumed, this study aims to have a direct comparison to move a step forward in durability quantification. Reinforced concrete beams made of traditional, high-performance and ultra-high-performance fibre-reinforced concretes were prepared, sized 150×100×750 mm~(3). These beams were pre-cracked in flexion up to fixed strain levels in the tensioned zone to allow the analysis of the effect of the different cracking patterns on the self-healing capability. Afterwards, water permeability tests were performed before and after healing under water immersion. A modification of the water permeability test was also explored using chlorides to evaluate the potential protection of this healing in chloride-rich environments. The results show the superior durability and self-healing performance of UHPFRC elements.
机译:混凝土具有天然的自修复能力,可以密封小裂缝,称为自生修复,主要是通过持续水合作用和碳化而产生的。此功能非常有限,只有在与水直接接触时才能激活。据报道,高性能纤维增强混凝土和工程水泥基复合材料可修复裂缝,从而降低损伤水平,因为它们的裂缝模式具有多个裂缝且水泥含量高。尽管经常假定它们具有比传统混凝土类型优越的自我修复性能,但本研究旨在进行直接比较,以在耐久性量化方面向前迈进。准备了由传统的高性能和超高性能纤维增强混凝土制成的钢筋混凝土梁,尺寸为150×100×750 mm〜(3)。这些梁在受拉区域中预先弯曲弯曲直至达到固定的应变水平,从而可以分析不同破裂方式对自愈能力的影响。之后,在浸入水中之前和之后进行渗透性测试。还使用氯化物探索了透水性测试的改进方案,以评估在富含氯化物的环境中这种愈合的潜在保护作用。结果表明,UHPFRC元件具有卓越的耐久性和自修复性能。

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