评估和纠正临时地震部署数据中的短期时钟漂移

Aqeel Abbas , Gaohua Zhu , Jinping Zi , Han Chen , Hongfeng Yang
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引用次数: 0

摘要

临时地震网络部署经常受到不正确的定时记录的影响,因此对充分利用有价值的数据提出了挑战。为了检查和解决这种时间问题,环境噪声互相关函数(NCCF)已被广泛采用,使用日常波形。然而,检测短期时钟漂移并克服局部噪声对NCCF的影响仍然具有挑战性。为了应对这些挑战,我们对两个临时数据集进行了研究,包括来自南马里亚纳俯冲带的海底地震仪(OBS)数据集和来自中国四川威远页岩气田的临时密集网络的数据集。我们首先检查远程地震和本地事件波形,以评估两个数据集的整体时钟漂移和数据质量。对于OBS数据集,计算除了每日波形数据之外使用不同时间段(3、6和12-h)的NCCF,以选择具有最佳检测能力的数据长度。最终,6小时段是具有高检测效率和低噪声水平的优选选择。对于陆地数据集,NCCF使用每日长波形实现了更高的漂移检测。同时,我们发现对于大的站间距离,密集阵列上的NCCF对称性受到局部强噪声的高度影响(>;1​km),但是对于较短的站间距离被很好地保存。结果表明,在OBS数据集中使用不同的每日波形数据段,以及在陆地数据集中仔细选择站间距离,大大改善了NCCF结果。两个数据集中的所有时钟漂移都得到了成功的校正,并用波形和NCCF进行了验证。新开发的使用短段NCCF的策略有助于克服现有的问题来校正地震数据的时钟漂移。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluating and correcting short-term clock drift in data from temporary seismic deployments

Temporary seismic network deployments often suffer from incorrect timing records and thus pose a challenge to fully utilize the valuable data. To inspect and fix such time problems, the ambient noise cross-correlation function (NCCF) has been widely adopted by using daily waveforms. However, it is still challenging to detect the short-term clock drift and overcome the influence of local noise on NCCF. To address these challenges, we conduct a study on two temporary datasets, including an ocean-bottom-seismometer (OBS) dataset from the southern Mariana subduction zone and a dataset from a temporary dense network from the Weiyuan shale gas field, Sichuan, China. We first inspect the teleseismic and local event waveforms to evaluate the overall clock drift and data quality for both datasets. For the OBS dataset, NCCF using different time segments (3, 6, and 12-h) beside daily waveforms data is computed to select the data length with optimal detection capability. Eventually, the 6-h segment is the preferred choice with high detection efficiency and low noise level. For the land dataset, higher drift detection is achieved by NCCF using the daily long waveforms. Meanwhile, we find that NCCF symmetry on the dense array is highly influenced by localized intense noise for large interstation distances (>1 ​km) but is well preserved for short interstation distances. The results have shown that the use of different segments of daily waveform data in the OBS dataset, and the careful selection of interstation distances in the land dataset substantially improved the NCCF results. All the clock drifts in both datasets are successfully corrected and verified with waveforms and NCCF. The newly developed strategies using short-segment NCCF help to overcome the existing issues to correct the clock drift of seismic data.

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