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Errors and uncertainties in the measurement of ultrasonic wave attenuation and phase velocity

机译:超声波衰减和相速度测量中的误差和不确定性

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This paper presents an analysis of the error generation mechanisms that affect the accuracy of measurements of ultrasonic wave attenuation coefficient and phase velocity as functions of frequency. In the first stage of the analysis we show that electronic system noise, expressed in the frequency domain, maps into errors in the attenuation arid the phase velocity spectra in a highly nonlinear way; the condition for minimum error is when the total measured attenuation is around 1 Neper. The maximum measurable total attenuation has a practical limit of around 6 Nepers and the minimum measurable value is around 0.1 Neper. In the second part of the paper we consider electronic noise as the primary source of measurement error; errors in attenuation result from additive noise whereas errors in phase velocity result from both additive noise and system timing jitter. Quantization noise can be neglected if the amplitude of the additive noise is comparable with the quantization step, and coherent averaging is employed. Experimental results are presented which confirm the relationship between electronic noise and measurement errors. The analytical technique is applicable to the design of ultrasonic spectrometers, formal assessment of the accuracy of ultrasonic measurements, and the optimization of signal processing procedures to achieve a specified accuracy.
机译:本文介绍了一种误差产生机制的分析,该机制会影响超声波衰减系数和相速度作为频率函数的测量精度。在分析的第一阶段,我们表明,以频域表示的电子系统噪声以高度非线性的方式映射到衰减误差和相速度谱中。最小误差的条件是总测得的衰减约为1 Neper。最大可测量总衰减的实际极限约为6 Neper,最小可测量值约为0.1 Neper。在本文的第二部分中,我们将电子噪声视为测量误差的主要来源。衰减误差是由附加噪声引起的,而相速度误差则是由附加噪声和系统定时抖动引起的。如果加性噪声的幅度与量化步骤相当,并且采用相干平均,则可以忽略量化噪声。实验结果证实了电子噪声与测量误差之间的关系。该分析技术适用于超声光谱仪的设计,超声测量精度的形式评估以及为达到指定精度而优化的信号处理程序。

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