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Impact behaviour of nanomodified deflection-hardening fibre-reinforced concretes

机译:纳米透过挠曲硬化纤维增强混凝土纤维增强混凝土的冲击性能

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The behaviour of concrete under sudden impact loads is complex. Moreover, very little is known about the impact behaviour of high-performance fibre-reinforced concretes (HPFRCs). To account for this, nanomodified deflection-hardening HPFRC mixtures incorporating coarse aggregates were produced with three ratios of fly ash to Portland cement (0.0, 0.2 and 0.4), three nanomaterials (nanosilica, nano-alumina and nanocalcite) and two hybridised fibre combinations (hooked-end steel with polyvinyl alcohol, or hooked-end steel with brass-coated microsteel) and tested for basic mechanical properties and flexural impact resistance. After experimental testing, beams used in impact testing were modelled using Abaqus. Cubic compressive strength did not change significantly with the differences in mixture parameters, although this was not the case for flexural parameters. For a given fly ash/Portland cement ratio and nanomaterial type, mixtures with hooked-end steel and polyvinyl alcohol fibres exhibited higher displacement and lower flexural strength capacity than those with hooked-end steel and brass-coated microsteel fibres. Nano-alumina contributed best to the development of mechanical properties and impact resistance of HPFRCs, followed by nanosilica and nanocalcite. Results validate the idea that costly polyvinyl alcohol fibres can be fully replaced with brass-coated microsteel fibres without risking mechanical properties and impact resistance, as long as matrix properties are properly controlled.
机译:混凝土在突然冲击载荷下的行为是复杂的。此外,关于高性能纤维增强混凝土(HPFRC)的影响行为很少。要考虑这一点,用三种粉煤灰(0.0,0.2和0.4),三种纳米材料(纳米石,纳米 - 氧化铝和纳米卤化物)和两种杂交的纤维组合(0.0)含有三种粉煤灰(0.0,0.2和0.4),并两种杂交的纤维组合产生粗聚集的纳米透过偏转 - 硬化HPFRC混合物。用聚乙烯醇,或带黄铜涂层微箱的钩端钢的钩端钢,并测试基本机械性能和弯曲抗冲击性。在实验测试之后,使用ABAQUS建模冲击测试中使用的梁。立方体抗压强度与混合参数的差异没有显着变化,尽管这不是弯曲参数的情况。对于给定的粉煤灰/薄层水泥比和纳米材料型,具有钩端钢和聚乙烯醇纤维的混合物表现出比钩端钢和黄铜涂层微毛纤维更高的位移和较低的弯曲强度容量。纳米氧化铝最适合开发机械性能和HPFRC的抗冲击性,其次是纳米碱和纳米卤化物。结果验证了昂贵的聚乙烯醇纤维可以用黄铜涂层的微毛纤维完全代替,而不会冒机械性能和抗冲击性的思想,只要适当地控制基质特性。

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