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外部机械荷载对混凝土尾波的影响。

Impact of External Mechanical Loads on Coda Waves in Concrete.

作者信息

Diewald Fabian, Epple Niklas, Kraenkel Thomas, Gehlen Christoph, Niederleithinger Ernst

机构信息

Centre for Building Materials, Technical University of Munich, 81245 Munich, Germany.

Bundesanstalt für Materialforschung und-Prüfung, 12205 Berlin, Germany.

出版信息

Materials (Basel). 2022 Aug 9;15(16):5482. doi: 10.3390/ma15165482.

Abstract

During their life span, concrete structures interact with many kinds of external mechanical loads. Most of these loads are considered in advance and result in reversible deformations. Nevertheless, some of the loads cause irreversible, sometimes unnoticed changes below the macroscopic scale depending on the type and dimension of the impact. As the functionality of concrete structures is often relevant to safety and society, their condition must be known and, therefore, assessed on a regular basis. Out of the spectrum of non-destructive monitoring methods, Coda Wave Interferometry using embedded ultrasonic sensors is one particularly sensitive technique to evaluate changes to heterogeneous media. However, there are various influences on Coda waves in concrete, and the interpretation of their superimposed effect is ambiguous. In this study, we quantify the relations of uniaxial compression and uniaxial tension on Coda waves propagating in normal concrete. We found that both the signal correlation of ultrasonic signals as well as their velocity variation directly reflect the stress change in concrete structures in a laboratory environment. For the linear elastic range up to 30% of the strength, we calculated a velocity variation of -0.97‱/MPa for compression and 0.33%/MPa for tension using linear regression. In addition, these parameters revealed even weak irreversible changes after removal of the load. Furthermore, we show the time-dependent effects of shrinkage and creep on Coda waves by providing the development of the signal parameters over time during half a year together with creep recovery. Our observations showed that time-dependent material changes must be taken into account for any comparison of ultrasonic signals that are far apart in time. The study's results demonstrate how Coda Wave Interferometry is capable of monitoring stress changes and detecting even small-size microstructural changes. By indicating the stated relations and their separation from further impacts, e.g., temperature and moisture, we anticipate our study to contribute to the qualification of Coda Wave Interferometry for its application as an early-warning system for concrete structures.

摘要

在其使用寿命期间,混凝土结构会与多种外部机械荷载相互作用。这些荷载中的大多数是预先考虑的,并导致可逆变形。然而,根据冲击的类型和尺寸,某些荷载会在宏观尺度以下引起不可逆的、有时是未被注意到的变化。由于混凝土结构的功能通常与安全和社会相关,因此必须了解其状况,并定期进行评估。在无损监测方法的范围内,使用嵌入式超声传感器的尾波干涉测量法是评估非均匀介质变化的一种特别灵敏的技术。然而,混凝土中的尾波受到各种影响,其叠加效应的解释尚不明确。在本研究中,我们量化了单轴压缩和单轴拉伸对在普通混凝土中传播的尾波的影响。我们发现,超声信号的信号相关性及其速度变化在实验室环境中都能直接反映混凝土结构中的应力变化。对于高达强度30%的线弹性范围,我们使用线性回归计算出压缩时的速度变化为-0.97‱/MPa,拉伸时为0.33%/MPa。此外,这些参数显示即使在卸载后也存在微弱的不可逆变化。此外,我们通过给出半年内信号参数随时间的变化以及徐变恢复情况,展示了收缩和徐变对尾波的时间依赖性影响。我们的观察结果表明,对于时间间隔较远的超声信号进行任何比较时,都必须考虑与时间相关的材料变化。该研究结果表明了尾波干涉测量法如何能够监测应力变化并检测到甚至是小尺寸的微观结构变化。通过指明所述关系以及它们与其他影响(例如温度和湿度)的区分,我们预期本研究将有助于确定尾波干涉测量法作为混凝土结构预警系统的适用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/82c5/9410369/12ecc3631bcc/materials-15-05482-g001.jpg

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