Moein Mohammad Mohtasham, Moein Ali Mohtasham, Saradar Ashkan, Rigby Sam E, Tazari Hassan, Karakouzian Moses
Department of Civil Engineering, Allameh Mohaddes Nouri University, Mazandaran, Nour, Iran.
School of Mechanical Engineering, Iran University of Science and Technology, Tehran, Iran.
Heliyon. 2025 Jan 13;11(2):e41900. doi: 10.1016/j.heliyon.2025.e41900. eCollection 2025 Jan 30.
This research investigates the mechanical properties of Portland Cement Concrete (PCC), incorporating recycled brick powder (RBP) and steel fibers and addressing sustainability and performance enhancement in concrete materials. The experimental design systematically varied RBP content (0-15 %) and incorporated crimped steel fibers of two lengths (20 and 50 mm) at dosages of 0 %, 0.5 %, and 1 %. The rationale for these percentages stems from balancing material recycling potential with maintaining concrete structural integrity, with RBP serving as a partial cement replacement to reduce environmental impact and material waste. Comprehensive testing encompassed compressive strength, flexural strength, tensile strength, and impact resistance. Due to the high variability of impact data, a two-parameter Weibull distribution was applied to provide a more robust statistical interpretation of the results. The findings revealed that 5 % RBP in plain concrete caused slight reductions in mechanical properties, with decreases of 1.48 % in compressive, 1.12 % in flexural, 1.42 % in tensile, 3.19 % in first crack, and 3.03 % in failure strengths. Steel fiber incorporation significantly enhanced the concrete's response to static and short-term dynamic loading. The combination of lengths (20-mm and 50-mm steel fibers) demonstrated the greatest impact resistance, offering potential applications in infrastructure elements requiring improved durability, such as bridge decks, industrial flooring, and earthquake-resistant structures. While steel fibers substantially improved fatigue resistance under repeated impact loading, the addition of RBP was observed to partially mitigate these benefits. The impact test data for all mixtures were effectively characterized by the two-parameter Weibull distribution, with R values consistently exceeding 0.88, providing a reliable statistical framework for assessing concrete performance. The study contributes to sustainable construction practices by demonstrating a viable approach to incorporating recycled materials without substantially compromising mechanical properties.
本研究调查了掺入再生砖粉(RBP)和钢纤维的波特兰水泥混凝土(PCC)的力学性能,探讨了混凝土材料的可持续性和性能提升。实验设计系统地改变了RBP含量(0-15%),并掺入了两种长度(20和50毫米)的卷曲钢纤维,掺量分别为0%、0.5%和1%。这些百分比的依据是在平衡材料回收潜力与维持混凝土结构完整性之间取得平衡,其中RBP用作部分水泥替代品以减少环境影响和材料浪费。全面测试包括抗压强度、抗弯强度、抗拉强度和抗冲击性。由于冲击数据的高变异性,采用双参数威布尔分布对结果进行更可靠的统计解释。研究结果表明,素混凝土中5%的RBP会导致力学性能略有下降,抗压强度降低1.48%,抗弯强度降低1.12%,抗拉强度降低1.42%,初裂强度降低3.19%,破坏强度降低3.03%。掺入钢纤维显著增强了混凝土对静态和短期动态荷载的响应。两种长度(20毫米和50毫米钢纤维)的组合表现出最大的抗冲击性,在需要提高耐久性的基础设施构件中具有潜在应用,如桥面板、工业地坪和抗震结构。虽然钢纤维在反复冲击荷载下显著提高了疲劳抗性,但观察到添加RBP会部分减轻这些益处。所有混合物的冲击试验数据都能有效地用双参数威布尔分布表征,R值始终超过0.88,为评估混凝土性能提供了可靠的统计框架。该研究通过展示一种在不大幅牺牲力学性能的情况下掺入再生材料的可行方法,为可持续建筑实践做出了贡献。