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A novel electromechanical impedance- based model for strength development monitoring of cementitious materials

机译:基于新型机电阻抗的胶凝材料强度发展监测模型

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Strength monitoring of early age concrete improves the efficiency of construction as it provides information on the optimum time for shoring removal and pre-stress transferring. Electromechanical impedance technique has been proven to be a useful tool for strength monitoring of cementitious materials. One of the key limitations of this technique is the lack of physical models, which resulted in strong reliance on statistical analysis tools to quantify the strength of structure being monitored. In this proof-of-concept study, a novel electromechanical impedance-based model with the potential of monitoring the strength of cementitious materials using the concept of Smart Probe is proposed. Instead of directly bonding a lead zirconate titanate patch on the host structure, a lead zirconate titanate was first surface-bonded on a pre-fabricated aluminum beam, which is termed Smart Probe. The Smart Probe was then partially embedded into cementitious materials for strength monitoring. The structural resonant frequencies of the Smart Probe can be identified from the conductance signatures measured from the lead zirconate titanate patch throughout the curing process and serve as strength indicator. By modeling the cementitious material as an elastic foundation supporting the Smart Probe, an analytical model was developed to predict the dynamic modulus of elasticity of cementitious materials based on the resonance frequency of the Smart Probe. Experimental study was carried out on a mortar slab specimen to verify the model and to investigate the performance of the Smart Probe. It was found that the dynamic modulus of elasticity of the host structure could be predicted from the conductance signatures using the proposed model. Compressive strength assessment was achieved by establishing an empirical relation with the dynamic modulus. The proposed electromechanical impedance-based model with Smart Probe is physically parametric in nature and shows high repeatability, which renders its superiority over the conventional statistical method-based electromechanical impedance technique for strength monitoring of cementitious materials.
机译:早期混凝土的强度监控可提高施工效率,因为它可提供有关拆除支撑和预应力的最佳时间的信息。机电阻抗技术已被证明是用于水泥材料强度监测的有用工具。该技术的主要局限之一是缺乏物理模型,这导致了对统计分析工具的高度依赖以量化被监视结构的强度。在此概念验证研究中,提出了一种基于机电阻抗的新型模型,该模型具有使用智能探针概念监测胶凝材料强度的潜力。取代直接将锆酸钛酸铅斑贴在主体结构上,而是先将锆酸钛酸铅表面粘接在预制的铝梁上,该梁称为Smart Probe。然后将智能探针部分嵌入水泥材料中以进行强度监测。 Smart Probe的结构共振频率可以从整个固化过程中从锆酸钛酸铅贴片测得的电导特征中识别出来,并用作强度指标。通过将胶凝材料建模为支持Smart Probe的弹性基础,开发了一个解析模型,用于基于Smart Probe的共振频率预测胶凝材料的动态弹性模量。对砂浆板样品进行了实验研究,以验证模型并研究Smart Probe的性能。发现使用所提出的模型可以从电导签名预测主体结构的动态弹性模量。通过建立与动态模量的经验关系来实现抗压强度评估。所提出的带有Smart Probe的基于机电阻抗的模型本质上是参数化的,并且显示出很高的可重复性,这使其优于用于胶凝材料强度监测的基于常规统计方法的机电阻抗技术。

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