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Prediction of concrete strength using ultrasonic pulse velocity and artificial neural networks

机译:基于超声脉冲速度和人工神经网络的混凝土强度预测

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摘要

Ultrasonic pulse velocity technique is one of the most popular non-destructive techniques used in the assessment of concrete properties. However, it is very difficult to accurately evaluate the concrete compressive strength with this method since the ultrasonic pulse velocity values are affected by a number of factors, which do not necessarily influence the concrete compressive strength in the same way or to the same extent. This paper deals with the analysis of such factors on the velocity-strength relationship. The relationship between ultrasonic pulse velocity, static and dynamic Young's modulus and shear modulus was also analyzed. The influence of aggregate, initial concrete temperature, type of cement, environmental temperature, and w/c ratio was determined by our own experiments. Based on the experimental results, a numerical model was established within the Matlab programming environment. The multilayer feed-forward neural network was used for this purpose. The paper demonstrates that artificial neural networks can be successfully used in modelling the velocity-strength relationship. This model enables us to easily and reliably estimate the compressive strength of concrete by using only the ultrasonic pulse velocity value and some mix parameters of concrete. (C) 2008 Elsevier B.V. All rights reserved.
机译:超声波脉冲速度技术是用于评估混凝土性能的最流行的非破坏性技术之一。但是,由于超声波脉冲速度值受到许多因素的影响,因此,用这种方法精确地评估混凝土的抗压强度非常困难,这些因素不一定以相同的方式或程度影响混凝土的抗压强度。本文分析了这些因素对速度-强度关系的影响。还分析了超声脉冲速度,静态和动态杨氏模量和剪切模量之间的关系。骨料,混凝土的初始温度,水泥类型,环境温度和水灰比的影响是通过我们自己的实验确定的。根据实验结果,在Matlab编程环境中建立了一个数值模型。为此使用了多层前馈神经网络。本文证明了人工神经网络可以成功地用于速度-强度关系的建模。该模型使我们能够仅通过使用超声波脉冲速度值和混凝土的一些混合参数来轻松可靠地估算混凝土的抗压强度。 (C)2008 Elsevier B.V.保留所有权利。

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