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Effects of freeze-thaw damage on fracture properties and microstructure of hybrid fibers reinforced cementitious composites containing calcium carbonate whisker

机译:冻融损伤对含有碳酸钙晶须的杂交纤维骨折性能和微观结构的影响

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The effects of freeze-thaw (F-T) damage on fracture properties and microstructure of steel-PVA hybrid fibers reinforced cementitious composites containing calcium carbonate whisker (CW-SPFRCC) were investigated in this paper. Three-point bending tests were carried out to study the fracture properties of CW-SPFRCC after different F-T cycles based on Double K fracture criterion. Compared with SPFRCC, the relative fracture parameters in CW-SPFRCC dropped less within 0 to 50F-T cycles, while rapid deterioration was observed in 50 to 100F-T cycles, indicating that the presence of CW could effectively delay F-T damage in SPFRCC. Moreover, fracture parameters were estimated to quickly predict the fracture behavior of CW-SPFRCC subject to F-T cycles. The microstructures of CW-SPFRCC was analyzed using scanning electron microscope (SEM), vacuum epoxy impregnation (VEI), mercury intrusion porosimetry (MIP) and optical microscope observation (OM), respectively. SEM results showed that PVA fiber and CW maintained intact morphologies subject to F-T cycles, but the surface of steel fibers was severely corroded by F-T actions. The results of VEI and MIP demonstrated that better frost resistance of SPFRCC was related to the improved pore structure because of the presence of CW. Furthermore, F-T damage was more likely to occur on the interfacial transition zone (ITZ) of steel fibers or aggregates. Finally, a parabolic model of F-T damage was developed to predict the service life on-site of CW-SPFRCC. (c) 2021 Elsevier Ltd. All rights reserved.
机译:增强含有晶须(CW-SPFRCC)在本文中进行了调查碳酸钙水泥基材料上断裂性能和钢-PVA混合纤维的微观结构冻融的效果(F-T)的损坏。三点弯曲试验进行了基于双K断裂准则不同的F-T循环后,研究CW-SPFRCC的断裂特性。与SPFRCC相比,CW-SPFRCC的相对断裂参数在0至50F-T循环少下降,而在50观察到100F-T循环迅速恶化,这表明CW的存在能有效延缓SPFRCC F-T的损伤。此外,断裂参数估计快速预测CW-SPFRCC受到F-T循环的断裂行为。 CW-SPFRCC的微结构,用扫描型电子显微镜(SEM),真空环氧浸渍(VEI),汞压入法(MIP)和光学显微镜观察(OM)分别进行分析,。 SEM结果显示,PVA纤维和CW保持完好形貌受到F-T周期,但钢纤维的表面被严重通过F-T的动作腐蚀。 VEI和MIP的结果表明,SPFRCC的更好抗冻性是有关改进的孔隙结构,因为CW的存在。此外,F-T损坏更可能对钢纤维或聚集体的界面过渡区(ITZ)发生。最后,F-T损害抛物线模型来预测现场CW-SPFRCC的使用寿命。 (c)2021 elestvier有限公司保留所有权利。

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