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Accurate Sparse Recovery of Rayleigh Wave Characteristics Using Fast Analysis of Wave Speed (FAWS) Algorithm for Soft Soil Layers

机译:快速波速(FAWS)算法对软土层的瑞利波特征的精确稀疏恢复

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摘要

This paper presents a novel fast analysis of wave speed (FAWS) algorithm from the waveforms recorded by a random-spaced geophone array based on a compressive sensing (CS) platform. Rayleigh-type seismic surface wave testing is excited by a hammer source and conducted to develop the phase velocity characteristics of the subsoil layers in Shenyang Metro line 9. Data are filtered by a bandpass filter bank to pursue the dispersive profiles of phase velocity at various frequencies. The Rayleigh-type surface-wave dispersion curve for the soil layers at each frequency is conducted by the ? 1 -norm minimization algorithm of CS theory. The traditional frequency-wavenumber transform technique and in-site downhole observation are employed as the comparison of the proposed technique. The experimental results indicate the proposed FAWS algorithm has a good agreement with both the results of conventional even-spaced geophone array and the in-site measurements, which provides an effective and efficient way for accurate non-destructive evaluation of the surface wave dispersion curve of the soil.
机译:本文基于基于压缩传感(CS)平台的随机间隔检波器阵列记录的波形,提出了一种新颖的波速(FAWS)算法快速分析方法。用锤子源激发瑞利型地震地表波测试,以开发沉阳地铁9号线地下土层的相速度特征。通过带通滤波器组对数据进行滤波,以追踪不同频率下的相速度的色散分布图。 。每个频率下土壤层的瑞利型表面波频散曲线由? CS理论的1范数最小化算法。比较了传统的频率-波数变换技术和现场井下观测技术。实验结果表明,提出的FAWS算法与传统的均匀间隔检波器阵列的结果和现场测量都有很好的吻合,为精确地评价地表波频散曲线提供了一种有效的方法。土壤。

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