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首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >Appraisal of waveform repeatability for crosshole and hole-to-tunnel seismic monitoring of radioactive waste repositories
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Appraisal of waveform repeatability for crosshole and hole-to-tunnel seismic monitoring of radioactive waste repositories

机译:放射性废物处置库跨孔和孔至隧道地震监测的波形可重复性评估

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摘要

Countries worldwide are seeking solutions for the permanent removal of high-level radioactive waste from the environment. Surrounding the waste with multiple engineered barriers and emplacement in deep geological repositories is widely accepted as a safe means of isolating it from the biosphere for the necessary 10~5-10~6 years. As a precautionary measure, society demands that repositories be monitored for 100-300 years after they are backfilled and sealed. Effective monitoring that does not compromise the engineered and natural barriers is challenging. To address this issue, we investigate the viability of crosshole and hole-to-tunnel seismic methods for remotely monitoring high level radioactive waste repositories. Measurements are made at two underground rock laboratories in Switzerland, one within granitic rock and one within clay-rich sediments. Numerical simulations demonstrate that temporal changes of the monitored features (i.e., bentonite plug, excavation damage zone, sand-filled microtunnel) should produce significant changes in the seismic waveforms. Nevertheless, inversion for medium-property changes requires that true seismic waveform changes are not overwhelmed by recording variations. We find that a P-wave sparker source is highly repeatable up to frequencies of 3-4 kHz for propagation distances out to tens of meters involved in repository-scale monitoring. Hydrophone repeatability is limited by incoherent high frequency noise and variable hydrophone-borehole coupling conditions, but firmly grouted geophones within the tunnels yield consistent recordings. Three kinds of coherent noise contaminate the data: (1) mechanically induced electrical effects in the hydrophone chains; (2) high currents in the sparker cable, which cause it to oscillate radially as a line source; and (3) tube waves. Our investigations outline a quantitative methodology to assess data-quality requirements for successful monitoring. We suggest that full waveform seismic tomography can be used to monitor radioactive waste emplacement tunnels, provided that careful attention is paid to instrument fidelity and noise suppression.
机译:世界各国都在寻求从环境中永久清除高放废物的解决方案。在必要的10〜5-10〜6年内,将废物与多种工程隔离物包围并置于深层地质处置库中是公认的将其与生物圈隔离的安全方法。作为一种预防措施,社会要求对存储库进行回填和密封后,对其进行100-300年的监视。在不影响工程和自然屏障的情况下进行有效监控具有挑战性。为了解决这个问题,我们研究了用于远程监测高放废物处置库的跨孔和孔至隧道地震方法的可行性。测量是在瑞士的两个地下岩石实验室进行的,一个在花岗岩岩石内,另一个在富含粘土的沉积物中。数值模拟表明,所监测特征(即膨润土塞,开挖破坏区,充满沙子的微隧道)的时间变化应在地震波形中产生显着变化。然而,中等属性变化的反演要求记录地震变化不会淹没真实的地震波形变化。我们发现,P波火花源在3-4 kHz的频率下具有很高的可重复性,传播距离可达到数十亿米,涉及存储库规模的监测。水听器的可重复性受到不连贯的高频噪声和水听器与井孔耦合条件变化的限制,但是在隧道内牢固注浆的地震检波器会产生一致的记录。三种相干噪声会污染数据:(1)水听器链中的机械感应电效应; (2)火花电缆中有高电流,导致其作为线源径向振荡; (3)管波。我们的调查概述了一种量化方法,用于评估成功监控所需的数据质量要求。我们建议全波形地震层析成像可用于监测放射性废物安置隧道,但要特别注意仪器的保真度和噪声抑制。

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