Investigating Fiber Reinforcement Solutions for Environmentally Sustainable and Technologically

M. A. El-Wafa
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Abstract

Fiber-Reinforced Concrete (FRC) marks a significant change in construction technology, providing a way to create more long-lasting, environmentally friendly, and creative building materials. This study explores the many benefits, difficulties, and potential opportunities of FRC, emphasizing its importance in improving building methods. FRC is a composite material that combines various fibers including steel, glass, synthetic, and natural fibers with concrete to increase structural stability by increasing tensile strength, fracture resistance, and impact resilience. Sustainable FRC emphasizes the use of recycled or natural fibers to reduce environmental implications, encourage waste reduction, and conserve resources. Exploring recyclable resources like steel fibers from scrap steel or used tires offers a sustainable option to typical reinforcing materials. This method not only reuses trash but also reduces the carbon footprint linked to new steel production, aiding in achieving sustainable development objectives. The use of natural fibers like as jute, sisal, bamboo, and flax in FRC provides biodegradable, renewable, and low-carbon-footprint alternatives, improving the eco-friendliness of building materials. Although FRC has promise benefits, certain obstacles hinder its broad use. It is crucial to evenly distribute fibers in the concrete mix to provide the appropriate mechanical qualities, requiring improved mixing procedures for consistent dispersion. Moreover, the resilience of natural fibers in the alkaline concrete setting is a notable obstacle, leading to investigations on surface treatments to improve fiber compatibility and lifespan. In the future, combining smart technology with FRC is set to transform the building sector. Advancements like self-healing concrete, conductive fibers, and shape memory alloys provide materials that can repair themselves, monitor structural health in real-time, and enhance mechanical performance. The progress highlights the capability of FRC to enhance sustainability and efficiency in building while incorporating intelligent features to prolong the lifespan and dependability of structures. This study thoroughly examines the environmental advantages, mechanical improvements, problems, and future prospects of FRC. Ongoing research and development are being used to address obstacles in integrating FRC into construction practices, which shows promise in creating more resilient, sustainable, and innovative building solutions. This marks a significant advancement in the search for advanced construction materials.
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研究纤维加固解决方案,促进环境可持续发展和技术进步
纤维增强混凝土(FRC)标志着建筑技术的重大变革,为创造更持久、更环保、更有创意的建筑材料提供了途径。本研究探讨了纤维增强混凝土的诸多优点、困难和潜在机遇,强调了其在改进建筑方法方面的重要性。FRC 是一种复合材料,它将各种纤维(包括钢纤维、玻璃纤维、合成纤维和天然纤维)与混凝土结合在一起,通过提高抗拉强度、抗断裂强度和抗冲击强度来增加结构的稳定性。可持续 FRC 强调使用回收纤维或天然纤维,以减少对环境的影响,鼓励减少废物,节约资源。探索从废钢或废旧轮胎中提取钢纤维等可回收资源,为典型的加固材料提供了一种可持续的选择。这种方法不仅能重复利用垃圾,还能减少与新钢材生产相关的碳足迹,有助于实现可持续发展目标。在 FRC 中使用黄麻、剑麻、竹子和亚麻等天然纤维,提供了可生物降解、可再生和低碳足迹的替代品,提高了建筑材料的生态友好性。虽然 FRC 有着良好的前景,但某些障碍阻碍了它的广泛应用。关键是要在混凝土混合物中均匀分布纤维,以提供适当的机械质量,这就需要改进混合程序,以实现一致的分散。此外,天然纤维在碱性混凝土环境中的回弹性也是一个明显的障碍,因此需要对表面处理进行研究,以提高纤维的兼容性和使用寿命。未来,智能技术与 FRC 的结合必将改变建筑行业。自愈合混凝土、导电纤维和形状记忆合金等先进技术可提供能够自我修复、实时监控结构健康状况并提高机械性能的材料。这些进展凸显了 FRC 在提高建筑可持续性和效率方面的能力,同时还融入了智能功能,以延长结构的使用寿命和可靠性。本研究深入探讨了 FRC 的环境优势、机械改进、问题和未来前景。正在进行的研究和开发用于解决将 FRC 纳入建筑实践的障碍,这为创造更具弹性、可持续性和创新性的建筑解决方案带来了希望。这标志着在寻找先进建筑材料方面取得了重大进展。
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