时移地震的匹配多道加权均方根几何可重复性

DONG Feng-Shu, FU Li-Yun, QUAN Hai-Yan, DONG Ke-Tong, XIN Xiu-Yan
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引用次数: 1

摘要

延时或4D地震技术是一种监测地下变化的工具,用于油田最大采收率或其他与人类活动有关的目的。可重复性是时移地震的关键问题,而几何可重复性是影响可重复性的基本因素。在数据处理过程中,有许多提高可重复性的实践,但需要在监测数据采集阶段获得几何可重复性。理论和实践表明,在采集过程中确定的几何可重复性不能在处理过程中得到彻底的改善。因此,几何可重复性分析是很重要的。多道几何可重复性是从实际情况出发的。多道几何可重复性是整体几何可重复性评价的重要内容。采用归一化均方根差(NRMS)评价时移地震资料的差异性或可重复性。从时移地震/四维地震资料的NRMS中可以导出多道可重复性的定义,表明多道可重复性是对所有单道的均方根进行加权。注意到监测数据和基线数据之间匹配的不确定性以及监测数据和基线之间可能的数据大小差异,采用基于基线的最佳匹配与不匹配的虚构数据的可重复性。在前人研究的基础上,建立了地震数据可重复性与几何可重复性的线性关系模型,得到了外推失配的最佳基线匹配加权均方根几何可重复性,等同于虚构失配数据的最佳基线匹配的可重复性。权重系数是根据NMO及其拉伸来确定的。并结合实际数据进行了应用研究,验证了该方法可用于评价四维监测地震数据采集时的几何重复性。应用研究表明,基于最佳基线匹配的多道几何可重复性与失配外推同时显示,可以同时显示可重复性和覆盖折叠效应。为了提高速度,简化了应用中的计算,这还不是本文的重点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
MATCHED MULTI-TRACE WEIGHTED RMS GEOMETRY REPEATABILITY FOR TIME-LAPSE SEISMIC

Time-lapse, or 4D, seismic technology is a tool to monitor underground change for oil field maximum recovery or other purpose especially associated to human being activities. Repeatability is a key issue for time-lapse seismic and geometry repeatability is a fundamental element to essentially affect the repeatability. There were many practices to improve repeatability during data processing, but geometry repeatability needs to be acquired during monitor data acquisition phase. Theory and practice shows that geometry repeatability determined in acquisition cannot be thoroughly improved in processing. Thus, geometry repeatability analysis is important. Multi-trace geometry repeatability rises from practical situation. Multi-trace geometry repeatability is important for overall geometry repeatability evaluation. The difference or repeatability of time-lapse seismic data is evaluated by normalized RMS difference (NRMS). The definition of multi-trace repeatability can be derived from NRMS for time-lapse seismic/4D seismic data, showing that multi-trace repeatability is weighted RMS of all single traces. Noting that the uncertainty of the match between monitor data and baseline data and that probable data size difference between monitor and baseline, the repeatability of the best baseline-based match with imaginary data for mismatch was employed. Derived from previous researches, the linear model of relationship between seismic data repeatability and geometry repeatability was established, and the weighted RMS geometry repeatability of the best baseline-based match with extrapolation for mismatch was obtained as the equivalent of the repeatability of the best baseline-based match with imaginary data for mismatch. The weighting coefficient is determined on the basis of NMO and its stretch. Application study was also conducted based on real data to demonstrate that the new geometry repeatability can be utilized to valuate geometry repeatability during 4D monitor seismic data acquisition. The application study showed that one display of the multi-trace geometry repeatability upon best baseline-based match with extrapolation for mismatch can indicate repeatability and effect of fold of coverage simultaneously. The calculation in application was simplified for speed improvement, which is not yet the main point in this article.

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