4.6 Article

Prediction of Ultrasonic Pulse Velocity for Cement, Mortar, and Concrete through a Multiscale Homogenization Approach

期刊

MATERIALS
卷 15, 期 9, 页码 -

出版社

MDPI
DOI: 10.3390/ma15093241

关键词

concrete; multiscale model; ultrasonic pulse velocity; homogenization approach; hydration process

资金

  1. Key-area Research and Development Program of Guangdong Province [2019B111107002]
  2. Natural Science Foundation of Zhejiang Province [LQ20E080016]
  3. National Natural Science Foundation of China [52008367, 51820105012]

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In this study, a prediction model for the ultrasonic pulse velocity of concrete materials was established using the multiscale homogenization method. The model demonstrated its reliability through experimental validation.
Ultrasonic testing (UT) is an important method for concrete, and ultrasonic pulse velocity is commonly used to evaluate the quality of concrete materials in existing studies. The ultrasonic pulse velocity of concrete materials is affected by many factors; therefore, it is necessary to establish a quantitative prediction model for the ultrasonic pulse velocity of concrete materials. Based on the multiscale homogenization method, concrete material is divided into different scales of homogenized materials, namely cement paste, mortar, and concrete. Then, a multiscale ultrasonic pulse velocity model is established through a combination of elasticity formulation and the hydration model. At the three scales of cement paste, mortar, and concrete, the elastic parameters and ultrasonic pulse velocity were predicted with the water-to-cement ratio of 0.35, 0.5, and 0.65, respectively. The ultrasonic pulse velocity of concrete with different water-to-cement ratios and different ages were measured in the test and predicted by the model. The results show that the predicted value of ultrasonic pulse velocity is within the error range of +/- 1.5% of the measured ultrasonic pulse velocity, suggesting that the established prediction model of ultrasonic pulse velocity can reliably predict the velocity change in concrete materials.

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