Metrological characterization of the longitudinal ultrasonic velocity of cylindrical rock cores

Alex Justen, T. C. Dourado, Ericles de Jesus dos Santos, M. K. M. de Assis, R. Mayworm, Renildo Lopes da Silva, G. C. Morais, S. Miqueleti, R. Costa-Felix
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Abstract

The correlation of the use of ultrasonic velocity in rock cores has been a fundamental resource in the analysis of geoscientists and rock engineers. The general rule is that ultrasonic velocities in typically heterogeneous materials, such as composites, rocks, and soils, present greater dispersion than homogeneous ones. This behaviour, although expected due to the more significant internal variation in the composition of its matrix, requires the application of a more cautious measurement protocol, mainly for samples with low parallelism. This work presents a metrological measurement protocol to determine the longitudinal ultrasonic velocities of these materials and their respective measurement uncertainties. The evaluation of the proposed protocol was applied to four samples of cylindrical migmatite rocks, each 76 mm in diameter. The frequency used was centred at 500 kHz. The determination of the transit time in each sample was made from the difference between the first internal reflection of the sample and the direct signal from the receiver. Samples with approximate heights of 51 mm, 62 mm, 77 mm and 101 mm were used. Their faces were divided into four quadrants. Measurements were taken around the geometric centre of the part and in each of the four quadrants. Fivedimensional measurements were performed for each quadrant, and ten transit time measurements were for each of the five defined regions. Due to the low parallelism of the parts, a protocol was adopted where the global uncertainty of each part was increased to that of the part with greater uncertainty. From the results of this research, it was noted that the effect of low parallelism tends to increase the dimensional uncertainty measurements and, consequently, the sample measurement uncertainty values.
圆柱形岩心纵向超声速度的计量表征
在岩心中使用超声波速度的相关性已经成为地球科学家和岩石工程师分析的基本资源。一般规律是,在典型的非均匀材料中,如复合材料、岩石和土壤,超声波速度比均匀材料表现出更大的分散。虽然由于其矩阵组成的内部变化更显著,这种行为是预期的,但需要应用更谨慎的测量方案,主要是对低并行性的样品。这项工作提出了一个计量测量方案,以确定这些材料的纵向超声速度和它们各自的测量不确定度。对提议方案的评价应用于四个圆柱形混辉岩样品,每个样品的直径为76毫米。使用的频率集中在500千赫。通过样品的第一次内部反射与来自接收器的直接信号之间的差值来确定每个样品中的传输时间。样品的高度分别为51 mm、62 mm、77 mm和101 mm。他们的脸被分成四个象限。测量是围绕部件的几何中心和四个象限中的每个象限进行的。对每个象限进行五维测量,对五个定义区域中的每个区域进行十次传输时间测量。由于零件的并行度较低,采用了将每个零件的全局不确定度提高到不确定度较大的零件的全局不确定度的方案。研究结果表明,低平行度的影响往往会增加尺寸测量的不确定度,从而增加样品测量的不确定度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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