Topolář Libor, Kalina Lukáš, Markusík David, Cába Vladislav, Sedlačík Martin, Černý Felix, Skibicki Szymon, Bílek Vlastimil
Faculty of Civil Engineering, Brno University of Technology, Veveří 331/95, 602 00 Brno, Czech Republic.
Faculty of Chemistry, Brno University of Technology, Purkyňova 464/118, 612 00 Brno, Czech Republic.
Materials (Basel). 2025 Aug 11;18(16):3765. doi: 10.3390/ma18163765.
This study investigates a non-destructive, compact pulse-echo ultrasonic method that combines an external transmitter with a single receiving sensor to identify different surface treatments applied to cementitious materials. The primary objective was to evaluate whether treatment-induced acoustic changes could be reliably quantified using time-domain signal parameters. Three types of surface conditions were examined: untreated reference specimens (R), specimens treated with a standard lithium silicate solution (A), and those treated with an enriched formulation containing hexylene glycol (B) intended to enhance pore sealing via gelation. A broadband piezoelectric receiver collected the backscattered echoes, from which the maximum amplitude, root mean square (RMS) voltage, signal energy, and effective duration were extracted. Receiver operating characteristic (ROC) analysis was conducted to quantify the discriminative power of each parameter. The results showed excellent classification performance between groups involving the B-treatment (AUC ≥ 0.96), whereas the R vs. A comparison yielded moderate separation (AUC ≈ 0.61). Optimal cut-off values were established using the Youden index, with sensitivity and specificity exceeding 96% in the best-performing scenarios. The results demonstrate that a single-receiver, one-sided pulse-echo arrangement coupled with straightforward amplitude metrics provides a rapid, cost-effective, and field-adaptable tool for the quality control of silicate-surface treatments. By translating laboratory ultrasonics into a practical on-site protocol, this study helps close the gap between the experimental characterisation and real-world implementation of surface-treatment verification.
本研究探讨了一种非破坏性的紧凑型脉冲回波超声方法,该方法将外部发射器与单个接收传感器相结合,以识别应用于胶凝材料的不同表面处理。主要目的是评估是否可以使用时域信号参数可靠地量化处理引起的声学变化。研究了三种表面条件:未处理的参考试样(R)、用标准硅酸锂溶液处理的试样(A)以及用含有己二醇的浓缩配方处理的试样(B),该配方旨在通过凝胶化增强孔隙密封。一个宽带压电接收器收集反向散射回波,并从中提取最大振幅、均方根(RMS)电压、信号能量和有效持续时间。进行了接收器操作特性(ROC)分析,以量化每个参数的判别能力。结果表明,在涉及B处理的组之间具有出色的分类性能(AUC≥0.96),而R与A的比较产生了中等程度的区分(AUC≈0.61)。使用尤登指数确定了最佳临界值,在表现最佳的情况下,灵敏度和特异性超过96%。结果表明,单接收器、单侧脉冲回波装置与简单的振幅指标相结合,为硅酸盐表面处理的质量控制提供了一种快速、经济高效且适用于现场的工具。通过将实验室超声技术转化为实用的现场协议,本研究有助于缩小表面处理验证的实验表征与实际应用之间的差距。