内在自感应混凝土为基础设施的智能化和复原力注入活力:综述

Xinyue Wang , Siqi Ding , Yi-Qing Ni , Liqing Zhang , Sufen Dong , Baoguo Han
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引用次数: 0

摘要

在荷载和环境作用下,基础设施的组成材料在使用期限内会不断老化和退化。对基础设施材料层面的老化和劣化进行现场监测,可以在出现严重故障之前提供有效的保护和维护,从而提高其安全性、使用寿命和抗灾能力。因此,材料的自感应性能是利用智能数字洞察力更新基础设施的一个重要范例。混凝土是基础设施建设中使用最广泛的工程材料,本身缺乏自感应性能。功能填料的加入可在混凝土内部形成一个传导性的感知 "神经 "系统,从而赋予混凝土感知应力(或力)、应变(或变形)和自身损伤(如开裂、疲劳)的能力,并改善(或保持)其机械性能和耐久性。本征自感混凝土的出现为实现原位监测奠定了物质基础,有助于发展智能化和弹性基础设施。本综述简明扼要地介绍了本征自感混凝土的组成与制备、测量与表征、性能与控制、机理与模型、在土木与交通基础设施中的应用等方面的重要研究进展,以及当前面临的挑战和未来发展路线图。
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Intrinsic self-sensing concrete to energize infrastructure intelligence and resilience: A review

Under loading and environmental actions, infrastructures undergo continuous aging and deterioration of the constituent materials during their service lifespan. In-situ monitoring the aging and deterioration at material level of infrastructures can provide effective protection and maintenance prior to serious failure, thus enhancing their safety and lifespan as well as resilience. Therefore, self-sensing performance of materials is an important paradigm for updating infrastructures with intelligent digital insights. Concrete, the most widely used engineering material for infrastructure construction, inherently lacks self-sensing property. The incorporation of functional fillers can form a conductive sensory “neural” system inside concrete, thus empowering concrete with the capability to sense stress (or force), strain (or deformation), and damage (e.g., cracking, fatigue) in itself, and also improving (or maintaining) its mechanical properties and durability. The emergence of intrinsic self-sensing concrete has laid a material foundation for realizing in-situ monitoring, contributing to the development of intelligent and resilient infrastructures. This review concisely introduces the significant research progress of research on the composition and preparation, measurement and characterization, performance and control, mechanism and model, and application of intrinsic self-sensing concrete in civil and transportation infrastructures, as well as current challenges and roadmap for its future development.

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