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Monitoring of Grouting Compactness in a Post-Tensioning Tendon Duct Using Piezoceramic Transducers

机译:使用压电陶瓷传感器监测张紧后的张紧风管中的灌浆压实度

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摘要

A post-tensioning tendon duct filled with grout can effectively prevent corrosion of the reinforcement, maintain bonding behavior between the reinforcement and concrete, and enhance the load bearing capacity of concrete structures. In practice, grouting of the post-tensioning tendon ducts always causes quality problems, which may reduce structural integrity and service life, and even cause accidents. However, monitoring of the grouting compactness is still a challenge due to the invisibility of the grout in the duct during the grouting process. This paper presents a stress wave-based active sensing approach using piezoceramic transducers to monitor the grouting compactness in real time. A segment of a commercial tendon duct was used as research object in this study. One lead zirconate titanate (PZT) piezoceramic transducer with marble protection, called a smart aggregate (SA), was bonded on the tendon and installed in the tendon duct. Two PZT patch sensors were mounted on the top outside surface of the duct, and one PZT patch sensor was bonded on the bottom outside surface of the tendon duct. In the active sensing approach, the SA was used as an actuator to generate a stress wave and the PZT sensors were utilized to detect the wave response. Cement or grout in the duct functions as a wave conduit, which can propagate the stress wave. If the cement or grout is not fully filled in the tendon duct, the top PZT sensors cannot receive much stress wave energy. The experimental procedures simulated four stages during the grout pouring process, which includes empty status, half grouting, 90% grouting, and full grouting of the duct. Experimental results show that the bottom PZT sensor can detect the signal when the grout level increases towards 50%, when a conduit between the SA and PZT sensor is formed. The top PZT sensors cannot receive any signal until the grout process is completely finished. The wavelet packet-based energy analysis was adopted in this research to compute the total signal energy received by PZT sensors. Experimental results show that the energy levels of the PZT sensors can reflect the degree of grouting compactness in the duct. The proposed method has the potential to be implemented to monitor the tendon duct grouting compactness of the reinforced concrete structures with post tensioning.
机译:充注水泥浆的后张预应力筋导管可以有效地防止钢筋的腐蚀,保持钢筋与混凝土之间的粘结性能,增强混凝土结构的承载能力。在实践中,对后张筋管道进行灌浆总是会引起质量问题,这可能会降低结构完整性和使用寿命,甚至引起事故。但是,由于在灌浆过程中管道中的灌浆不可见,因此监控灌浆的紧密度仍然是一个挑战。本文提出了一种基于应力波的主动传感方法,该方法使用压电陶瓷换能器实时监测灌浆的紧密度。本研究使用商业肌腱管的一部分作为研究对象。一种具有大理石保护的锆钛酸铅钛酸铅(PZT)压电陶瓷换能器,称为智能骨料(SA),粘结在肌腱上并安装在肌腱管中。将两个PZT贴片传感器安装在导管的顶部外表面,将一个PZT贴片传感器粘合在肌腱导管的底部外表面。在主动感应方法中,将SA用作致动器以生成应力波,并使用PZT传感器检测波响应。管道中的水泥或灌浆起波导管的作用,可以传播应力波。如果水泥或水泥浆未完全填充到腱管中,则顶部PZT传感器将无法接收到太多的应力波能量。实验步骤在灌浆过程中模拟了四个阶段,包括空状态,半灌浆,90%灌浆和风管全灌浆。实验结果表明,当在SA和PZT传感器之间形成导管时,当灌浆水平增加到50%时,底部PZT传感器可以检测到信号。顶部PZT传感器在灌浆过程完全完成之前无法接收任何信号。本研究采用基于小波包的能量分析方法来计算PZT传感器接收到的总信号能量。实验结果表明,PZT传感器的能量水平可以反映出管道中的灌浆紧密度。所提出的方法有可能被实施以监测钢筋混凝土结构在后张紧情况下的腱管灌浆密实度。

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