多尺度水泥基材料在不同水化阶段的超声波特性。

IF 3.8 2区 物理与天体物理 Q1 ACOUSTICS
Sukanya Basu , Saptarshi Sasmal , Tribikram Kundu
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引用次数: 0

摘要

监测水化过程中胶凝材料的微观结构变化是一项至关重要但又极具挑战性的任务。因此,需要一种非侵入式的复杂技术来了解多相胶凝材料(成分的长度范围从厘米到微米不等)在水化不同阶段的微观行为。由于水化反应放热,不同的水化产物开始演变出各自的机械性能。在混凝土中,骨料表面和浆体基质之间会出现界面过渡区(ITZ),它会影响混凝土材料的整体性能。在本研究中,1)使用超声波脉冲速度 (UPV)、小波包能量 (WPE) 和希尔伯特变换 (HT) 方法发现了一些波特性,如波速、能量分布和信号相位,以监测具有两级异质性(水泥浆和混凝土,分别代表微观尺度和中观尺度)的水泥基材料的水化机制(1d-28d)。此外,还利用前景看好的边带能量比 (SER) 和边带峰值计数指数 (SPC-I) 方法在频域研究了独特的非线性行为。2) 进行了数值模拟,以了解波在发展中的微结构中的相互作用。离散化的水泥微观结构可显示水化任何瞬间(如形成阶段和完全成熟后)各相的微观细节。对非线性超声波传播特性的实验和数值研究显示了水化过程中多尺度胶凝材料微观结构发展的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultrasonic wave characteristics in multiscale cementitious materials at different stages of hydration

Monitoring the microstructural change in cementitious materials during hydration is an essential but challenging task. Therefore, a non-invasive and sophisticated technique is warranted to understand the microscopic behaviour of the multiphase cementitious materials (where the length scale of the constituents varies from centimeters to micrometers) in different stages of hydration. Due to exothermic hydration reactions, different hydration products start to evolve with individual mechanical properties. In concrete, an interface transition zone (ITZ) appears between the aggregate surface and paste matrix, which influences the overall properties of concrete material. In the present research, 1) several wave characteristics, such as wave velocity, energy distribution, and signal phase are found out using Ultrasonic Pulse Velocity (UPV), Wavelet Packet Energy (WPE) and Hilbert Transform (HT) methods, to monitor the hydration mechanism (1d-28d) in cement-based materials with two levels of heterogeneities (cement paste and concrete, representing microscale and mesoscale, respectively). Also, the unique nonlinear behaviour is studied in the frequency domain using the promising Sideband Energy Ratio (SER) and Sideband Peak Count Index (SPC-I) methods. 2) Numerical simulations are carried out to understand the wave interaction in the developing microstructure. A discretized microstructure of cement shows microscopic details of each phase at any instant of hydration (e.g., formation stage and after complete maturity level). The experimental and numerical investigations on the characteristics of the nonlinear ultrasonic wave propagation show the impact of microstructural development of multi-scale cementitious materials during hydration.

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来源期刊
Ultrasonics
Ultrasonics 医学-核医学
CiteScore
7.60
自引率
19.00%
发文量
186
审稿时长
3.9 months
期刊介绍: Ultrasonics is the only internationally established journal which covers the entire field of ultrasound research and technology and all its many applications. Ultrasonics contains a variety of sections to keep readers fully informed and up-to-date on the whole spectrum of research and development throughout the world. Ultrasonics publishes papers of exceptional quality and of relevance to both academia and industry. Manuscripts in which ultrasonics is a central issue and not simply an incidental tool or minor issue, are welcomed. As well as top quality original research papers and review articles by world renowned experts, Ultrasonics also regularly features short communications, a calendar of forthcoming events and special issues dedicated to topical subjects.
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