Gong Kaiwei, Liang Zhao, Peng Xi, Wang Hui
School of Civil Engineering and Geographical Environment, Ningbo University, Ningbo 315000, China.
School of Civil Transportation Engineering, Ningbo University of Technology, Ningbo 315211, China.
Materials (Basel). 2023 Jul 28;16(15):5310. doi: 10.3390/ma16155310.
Based on its characteristics of early strength, good toughness, and excellent mechanical and impact resistance, steel fiber-reinforced fast-hardening reactive powder concrete (RPC) is expected to become an alternative material used in the rapid repair of marine concrete structures. However, the steel fibers have also caused corrosion problems in coastal environments. To make doped fiber fast-hardening RPC more adaptable for use in ocean engineering, this study prepares fast-hardening RPC mixed with straw and studied the effects of straw content and curing age on its slump flow, setting time, and mechanical performance (flexural strength, compressive strength, and flexural toughness). The effects of straw addition on the compactness and hydration products of fast-hardening RPC were studied through macro- (ultrasonic analysis) and micro-scopic analysis (electron microscopy scanning and X-ray diffraction patterns). The straw content mentioned in this paper refers to the percentage of straw in relation to RPC volume. The results showed that straw reduced the fluidity of RPC slurry by 10.5-11.5% compared to concrete without straw, and it accelerated the initial setting of RPC slurry. When the straw content accounted for 1% of RPC volume, the setting rate was the fastest, with a increasing rate being 6-18%. Compared to concrete without straw, the flexural and compressive strength of fast-hardening RPC was enhanced by 3.7-30.5%. When the content was either 3% or 4%, the mechanical properties improved. Moreover, when the straw content accounted for 4% of RPC volume, the flexural toughness was the highest, with the increase rate being 21.4% compared to concrete without straw. Straw reduces the compactness of fast-hardening RPC.
基于其早期强度高、韧性好以及优异的力学性能和抗冲击性,钢纤维增强快硬活性粉末混凝土(RPC)有望成为海洋混凝土结构快速修复中使用的替代材料。然而,钢纤维在沿海环境中也引发了腐蚀问题。为使掺杂纤维的快硬RPC更适用于海洋工程,本研究制备了掺加秸秆的快硬RPC,并研究了秸秆含量和养护龄期对其坍落度、凝结时间以及力学性能(抗折强度、抗压强度和抗折韧性)的影响。通过宏观(超声分析)和微观分析(电子显微镜扫描和X射线衍射图谱)研究了添加秸秆对快硬RPC密实度和水化产物的影响。本文中提到的秸秆含量是指秸秆占RPC体积的百分比。结果表明,与不掺秸秆的混凝土相比,秸秆使RPC浆液的流动性降低了10.5 - 11.5%,并加速了RPC浆液的初凝。当秸秆含量占RPC体积的1%时,凝结速率最快,增长率为6 - 18%。与不掺秸秆的混凝土相比,快硬RPC的抗折强度和抗压强度提高了3.7 - 30.5%。当含量为3%或4%时,力学性能得到改善。此外,当秸秆含量占RPC体积的4%时,抗折韧性最高,与不掺秸秆的混凝土相比增长率为21.4%。秸秆降低了快硬RPC的密实度。