A Numerical Simulation of Electrical Resistivity of Fiber-Reinforced Composites, Part 1: Brittle Cementitious Concrete

Alireza Miri, R. Ehsani, F. M. Tehrani
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引用次数: 2

Abstract

The durability of concrete has a significant influence on the sustainability and resilience of various infrastructures, including buildings, bridges, roadways, dams, and other applications. Penetration of corrosive agents intensified by exposure to freeze-thaw cycles and the presence of early-age cracks is a common cause of reinforced concrete degradation. Electrical resistivity is a vital physical property of cementitious composites to assess the remained service life of reinforced concrete members subjected to corrosive ions attacks. The application of steel fibers reduces the vulnerability of concrete by limiting crack propagation, but complicates field and laboratory testing due to the random distribution of conductive fibers within the body of the concrete. Numerical simulations facilitate proper modeling of such random distribution to improve the reliability of testing measures. Hence, this paper investigates the influence of fiber reinforcement characteristics on electrical resistivity using multi-physics finite element models. Results examine modeling challenges and include insights on the sensitivity of resistivity measures to fiber reinforcement. Concluding remarks provide expected bias of electrical resistivity in the presence of steel fibers and endeavor to facilitate the development of practical guidelines for assessing the durability of fiber-reinforced concrete members using standard electrical resistivity testing procedures.
纤维增强复合材料电阻率的数值模拟,第1部分:脆性水泥混凝土
混凝土的耐久性对各种基础设施的可持续性和弹性有重大影响,包括建筑物、桥梁、道路、水坝和其他应用。冻融循环和早期裂缝的存在加剧了腐蚀剂的渗透,这是钢筋混凝土退化的常见原因。电阻率是评价钢筋混凝土构件在腐蚀离子作用下的剩余使用寿命的一项重要物理性能。钢纤维的应用通过限制裂缝扩展来降低混凝土的脆弱性,但由于混凝土内部导电纤维的随机分布,使现场和实验室测试变得复杂。数值模拟有助于对这种随机分布进行适当的建模,以提高测试措施的可靠性。因此,本文采用多物理场有限元模型研究了纤维增强特性对电阻率的影响。结果检查建模挑战,包括对电阻率测量对纤维增强的敏感性的见解。结束语提供了钢纤维存在时电阻率的预期偏差,并努力促进使用标准电阻率测试程序评估纤维增强混凝土构件耐久性的实用指南的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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