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陈宗标, 吴雄华, 徐小群, 等. 钢管混凝土缺陷弹性波检测方法与应用J. 桂林电子科技大学学报, 2026, 46(1): 33-42. DOI: 10.16725/j.1673-808X.2025189
引用本文: 陈宗标, 吴雄华, 徐小群, 等. 钢管混凝土缺陷弹性波检测方法与应用J. 桂林电子科技大学学报, 2026, 46(1): 33-42. DOI: 10.16725/j.1673-808X.2025189
CHEN Zongbiao, WU Xionghua, XU Xiaoqun, et al. Application of elastic wave inspection methods for defects in concrete-filled steel tube structuresJ. Journal of Guilin University of Electronic Technology, 2026, 46(1): 33-42. DOI: 10.16725/j.1673-808X.2025189
Citation: CHEN Zongbiao, WU Xionghua, XU Xiaoqun, et al. Application of elastic wave inspection methods for defects in concrete-filled steel tube structuresJ. Journal of Guilin University of Electronic Technology, 2026, 46(1): 33-42. DOI: 10.16725/j.1673-808X.2025189

钢管混凝土缺陷弹性波检测方法与应用

Application of elastic wave inspection methods for defects in concrete-filled steel tube structures

  • 摘要: 自从钢管混凝土结构出现以来,关于其缺陷检测的研究一直备受瞩目。近年来,钢管混凝土结构朝着大管径、长距离的方向发展,而目前常用的检测技术已无法满足大管径、长距离钢管混凝土检测的需求。冲击弹性波是一种激振能量大、传播距离远、便于频谱分析的应力波,能够解决现有钢管混凝土缺陷检测中遇到的技术难题。为研究冲击弹性波技术对钢管混凝土缺陷检测的有效性,分别从理论基础、有限元模拟和实际应用3个方面对钢管混凝土缺陷检测进行研究。首先通过理论研究发现,当钢管混凝土内部存在缺陷时,弹性波在混凝土与空气中的传播速度差异显著,并且弹性波在钢管混凝土中传播时遵循光程最短原理,这使得冲击弹性波在传播过程中会绕过缺陷区域。因此,冲击弹性波检测技术在钢管混凝土缺陷检测中具有可行性,而截面内波速的分布特征可作为评估钢管混凝土是否存在缺陷的关键指标。本研究利用有限元软件COMSOL进行仿真,模拟了冲击弹性波的传播路径及波速分布,验证了理论研究的有效性。最后,在实际工程中,采用冲击弹性波无损检测技术,通过分析钢管混凝土中的波速分布,成功识别出预设缺陷,展现了较高的检测精度和可靠性。

     

    Abstract: Since the emergence of concrete-filled steel tubes (CFSTs) structures, defect detection has been an important research topic. In recent years, CFSTs structures have been increasingly used in larger diameters and longer spans. However, existing detection technologies are insufficient to meet the requirements for large-diameter and long-distance CFSTs structures. The impact elastic wave is a kind of stress wave with large excitation energy, long propagation distance, and convenience for spectral analysis, which can solve the technical difficulties encountered by the existing defect detection technologies for CFSTs. To study the effectiveness of the impact elastic wave technique in defect detection of CFSTs, this study investigates defect detection in CFSTs from three aspects: theoretical analysis, finite element simulation, and practical application. Theoretical research reveals that when there are defects inside CFSTs, the propagation velocity difference of elastic waves between concrete and air is significant. Moreover, elastic waves follow the principle of minimal propagation path length when propagating in CFSTs, causing the impact elastic waves to bypass defective regions during propagation. Therefore, impact elastic wave detection is feasible for identifying defects in CFSTs, and the distribution of wave velocity within the cross-section can serve as a key indicator for evaluating defect presence. The finite element software COMSOL was used for simulation to verify the effectiveness of the theoretical research by simulating the propagation path and wave velocity distribution of impact elastic waves. Finally, in practical engineering applications, the impact elastic wave nondestructive testing technology was employed. By analyzing the wave velocity distribution in CFSTs, the preset defects were successfully identified, demonstrating high detection accuracy and reliability.

     

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