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Developing strain-hardening ultra-rapid-hardening mortar containing high-volume supplementary cementitious materials and polyethylene fibers

机译:开发含有大量补充胶凝材料和聚乙烯纤维的应变硬化的超快速硬化砂浆

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摘要

This study aims to develop a robust strain-hardening ultra-rapid-hardening mortar (URHM) with high-volume cementitious materials and polyethylene (PE) fibers. To achieve this, the combined effect of cement kiln dust (CKD) and silica fume (SF) on the initial hydration process of ultra-rapid-hardening cement and the tensile performance of URHM was analyzed. Optimum amounts of CKD and SF of 0.15 and 0.2, respectively, by weight ratios to cement, were determined to develop the strain-hardening URHM containing 2% PE fibers. As a result, the tensile strength of 7.3 MPa, strain capacity of 5.12%, and energy absorption capacity prior to tension softening of 297.5 kJ/m3, respectively, were achieved at a very early age (4 h) of air-drying curing. The tensile performance of URHM deteriorated when the CKD content was 0.4 or greater, regardless of the SF content. A lower SF content of 0.2 was effective in terms of the tensile performance enhancement compared with the higher content of 0.4 up to the CKD content of 0.2, but they became similarly lower at higher CKD contents due to insufficient initial hydration.
机译:本研究旨在开发具有高体积水泥材料和聚乙烯(PE)纤维的强大应变硬化超快速硬化砂浆(URHM)。为此,分析了水泥窑粉尘(CKD)和二氧化硅烟灰(SF)对超快速硬化水泥初始水合过程的综合作用及URHM的拉伸性能。确定最佳的CKD和0.2的CKD和SF,分别按重量比率对水泥进行测定,以产生含有2%PE纤维的应变硬化URHM。结果,在空气干燥固化的情况下,张力在张紧297.5kJ / m3的张力之前,张力容量为7.3MPa,应变容量的拉伸强度为5.3MPa,应变容量和能量吸收能力。无论SF含量如何,当CKD含量为0.4或更大时,URHM的拉伸性能劣化。 0.2的较低的SF含量在拉伸性能增强方面是有效的,与0.4的CKD含量的较高含量为0.2,但由于初始水合不足,它们在较高的CKD含量下变得同样更低。

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