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Nondestructive testing of reinforced and prestressed concrete structures using acoustic waveguides.

机译:使用声波导管对钢筋混凝土和预应力混凝土结构进行无损检测。

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摘要

The main objective of this research is to develop both passive and active nondestructive testing techniques for reinforced and prestressed concrete structures using acoustic waveguides. The first technique introduces a two-dimensional surface waveguide to enlarge the acoustic emission (AE) monitoring area of a reinforced concrete structure.{09}A two-dimensional steel wire system is developed as an acoustic waveguide to study the AE behavior of a reinforced concrete floor slab. AE sensors are mounted to the end of the waveguides to detect AE signals, which are generated by pencil-lead breaks at various locations on concrete surface.{09}Results show that the use of the surface waveguides can significantly enlarge the AE monitoring area.{09}In order to identify locations of AE sources, a neural network system is employed.{09}Four data sets of AE parameters and their corresponding locations are used to train the neural network system. Satisfactory results in predicting the AE source locations are obtained when using the trained neural network system to identify AE source locations of a testing data set.; The second technique involves the measurement of tensile forces in a prestressing strand in prestressed concrete structures using ultrasonic stress waves.{09}The commonly used 1/2-inch diameter seven-wire prestressing strands are studied. In this study, both experimental measurements and theoretical analysis are conducted.{09}A stress wave is generated at one end of a prestressing strand and the wave is detected at the other end using an ultrasonic transducer. The stress waves due to tensile stresses of the strand up to 77% of its ultimate strength are investigated.{09}The theoretical analysis is conducted by accounting for acoustoelasticity effect and the dispersion of waves. This analysis is used to calculate the traveling times of different frequency components of the wave propagating in the strand, which is subjected to prestress forces. The analysis provides a successful description of the behavior of a longitudinal transient wave traveling through a long, prestressed, circular strand.{09}The Wigner-Ville Transform is used as a signal-processing tool in order to identify the arrival times of different frequency components of the detected waveforms. The analytical and experimental results correlate well, and good measurement accuracy is observed. Both experimental and analytical results indicate that the velocity (or traveling time) of each frequency component of the traveling wave can be related to tensile force level in the strand. This technique can effectively be used for measuring tensile forces in ungrouted post-tensioning strands of a prestressed concrete structure.
机译:这项研究的主要目的是开发使用声波导的钢筋混凝土和预应力混凝土结构的被动和主动无损检测技术。第一种技术是引入二维表面波导来扩大钢筋混凝土结构的声发射(AE)监控区域。{09}开发了一种二维钢丝系统作为声波导,以研究钢筋混凝土的AE行为。混凝土楼板。 AE传感器安装在波导的末端,以检测AE信号,这些信号是由混凝土表面上不同位置的铅笔芯折断产生的。{09}结果表明,使用表面波导可以显着扩大AE监测面积。 {09}为了识别AE源的位置,采用了神经网络系统。{09}使用AE参数的四个数据集及其对应位置来训练神经网络系统。当使用训练有素的神经网络系统识别测试数据集的AE源位置时,获得了预测AE源位置的令人满意的结果。第二种技术涉及使用超声波应力波测量预应力混凝土结构中的预应力股中的拉力。{09}研究了常用的1/2英寸直径的七线预应力股。在这项研究中,我们进行了实验测量和理论分析。{09}在预应力钢绞线的一端会产生应力波,而在另一端会使用超声波传感器检测到该应力波。研究了由于钢绞线的拉伸应力而产生的应力波,其最高强度达到其极限强度的77%。{09}通过考虑声弹性效应和波的分散性进行了理论分析。该分析用于计算在预应力作用下在股中传播的波的不同频率分量的传播时间。该分析成功地描述了通过长预应力圆形股线的纵向瞬态波的行为。{09} Wigner-Ville变换用作信号处理工具,以识别不同频率的到达时间所检测波形的分量。分析和实验结果相关性很好,并且观察到良好的测量精度。实验和分析结果均表明,行波的每个频率分量的速度(或行进时间)可能与钢绞线中的拉力水平有关。该技术可有效地用于测量预应力混凝土结构的未灌浆后张应力股线中的拉力。

著录项

  • 作者

    Wissawapaisal, Komwut.;

  • 作者单位

    West Virginia University.;

  • 授予单位 West Virginia University.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 204 p.
  • 总页数 204
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

  • 入库时间 2022-08-17 11:46:43

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