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Study on the time-dependent mechanical properties of glass fiber reinforced cement (GRC) with fly ash or slag

机译:粉煤灰或炉渣玻璃纤维增​​强水泥(GRC)的时间依赖性力学性能研究

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The mechanical properties change law of glass fiber reinforced cement (GRC) with fly ash or slag after natural curing for 28, 180, 360 days and accelerated aging at 80 degrees C for 8 days were studied respectively. Besides the degradation mechanism were discussed. It was found that GRC naturally cured for 28 days exhibited good flexural toughness regardless of mineral admixtures. After natural curing for 180 days, there was no chemical corrosion of glass fiber in GRC, and modulus of rupture (MOR) of GRC increased at the same time, but the loss of fracture energy was more than 50%, and GRC became brittle under the flexural condition. At the age of 360 days, slight chemical corrosion occurred in glass fibers in GRC; and after 8 days of accelerated aging, severe chemical corrosion was observed. However, in these two cases the fracture energy of GRC was similar to that of GRC with the same mix proportion of natural curing to 180 days. The time-dependent deviation of fracture energy can reflect the degradation of GRC performance more precisely than that of MOR. Fly ash and slag may possess the ability of inhibiting the chemical corrosion of glass fibers in GRC according to test results, but the chemical corrosion of glass fibers is not the main reason for the decrease of GRC fracture energy. The key deterioration factor of GRC performance is the strong bonding of glass fibers with hydrates of cementitious materials which lead to fiber breakage rather than fiber pull-out. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在天然固化后的粉煤灰或炉渣的玻璃纤维增​​强水泥(GRC)的机械性能变化定律分别研究了28,180,360天和80℃加速8天。除了讨论了降解机制。发现GRC自然固化28天表现出良好的抗弯韧性,无论矿物混合物如何。在天然固化180天后,GRC中没有玻璃纤维的化学腐蚀,GRC的破裂模量同时增加,但骨折能量的损失大于50%,GRC变得脆弱弯曲条件。在360天,GRC的玻璃纤维中发生轻微的化学腐蚀;在加速8天后,观察到严重的化学腐蚀。然而,在这两种情况下,GRC的裂缝能量与GRC的裂缝能量与自然固化相同的混合比例为180天。断裂能量的时间依赖性偏差可以更精确地反映GRC性能的降解而不是Mor。粉煤灰和炉渣可能具有抑制GRC在GRC中玻璃纤维的化学腐蚀的能力,但玻璃纤维的化学腐蚀不是GRC骨折能量降低的主要原因。 GRC性能的关键劣化因子是玻璃纤维与水泥材料水合物的强键合,其导致纤维破损而不是纤维拉出。 (c)2019 Elsevier Ltd.保留所有权利。

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