地震表面波数据采集与分析便携式可控震源的研制与应用

IF 0.3 Q4 GEOCHEMISTRY & GEOPHYSICS
A. V. Yablokov, P. A. Dergach, A. S. Serdyukov, S. S. Polozov
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引用次数: 0

摘要

本文致力于便携式振动装置的研制及其在地震波产生中的适用性研究。开发一种能够在目标频率范围内产生稳定地震信号的便携式振动单元问题是非常重要的。现有的方法繁琐,不能在工程地震勘探中广泛应用。文中详细介绍了振动源的设计、输出信号的测试、功率放大和触觉传感器的控制等步骤。在现场采集过程中使用了不同频率扫描的信号。记录的数据采用多通道表面波分析处理。通过比较表面波的振幅谱和色散图像,发现双曲(低驻留)扫描信号在整个频率范围(10-150 Hz)内产生表面波列,但与其他扫描信号和大锤不同,在水泥混凝土路面上不会产生高频干涉波。基于现场数据处理结果,我们重建了土体一维剪切波速模型,并总结了使用所开发的振动源获取和分析工程地震学问题表面波数据的成功、实用性和效率(与大锤相比)。使用振动源的优点是频率含量的可控性和可重复性。将这种可控震源装置与固定式地震记录系统相结合,是解决地震监测问题的一个有前途的方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Development and Application of a Portable Vibroseis Source for Acquisition and Analysis of Seismic Surface Wave Data

Development and Application of a Portable Vibroseis Source for Acquisition and Analysis of Seismic Surface Wave Data

The paper is devoted to development of a portable vibrating unit and study of its applicability in generating seismic waves. The solution to developing a portable vibrating unit problem capable of generating a stable seismic signal in the target frequency range is very important. Existing solutions are cumbersome and cannot be widely applied in engineering seismic exploration. The paper describes in detail the design of the vibrator source, the stages of output laptop signals testing, the power amplifier, and haptic transducer control. Signals with different frequency sweeps were used during field acquisition. The recorded data were processed by multichannel analysis of surface waves. As a result of comparing the amplitude spectra and dispersion images of the surface wave, it was found that a hyperbolic (low-dwell) sweep signal generates a surface wave train in the entire frequency range (10–150 Hz), but does not produce high-frequency interference waves in cement concrete pavement as opposed to other sweep signals and sledgehammers. Based on the field data processing results, we reconstructed a one-dimensional shear-wave velocity model for soils and concluded on the success, practicability, and increased (compared to a sledgehammer) efficiency of using the developed vibrator source for acquisition and analysis of surface wave data for engineering seismology problems. The undoubted advantages of using a vibration source are controllability of the frequency content and its repeatability. The use of such vibroseis devices combined with stationary seismic recording systems is a promising direction for solving seismic monitoring problems.

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来源期刊
Seismic Instruments
Seismic Instruments GEOCHEMISTRY & GEOPHYSICS-
自引率
44.40%
发文量
45
期刊介绍: Seismic Instruments is a journal devoted to the description of geophysical instruments used in seismic research. In addition to covering the actual instruments for registering seismic waves, substantial room is devoted to solving instrumental-methodological problems of geophysical monitoring, applying various methods that are used to search for earthquake precursors, to studying earthquake nucleation processes and to monitoring natural and technogenous processes. The description of the construction, working elements, and technical characteristics of the instruments, as well as some results of implementation of the instruments and interpretation of the results are given. Attention is paid to seismic monitoring data and earthquake catalog quality Analysis.
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