首页> 外文期刊>Interpretation >Full-volume 3D seismic interpretation methods: A new step towards high-resolution seismic stratigraphy
【24h】

Full-volume 3D seismic interpretation methods: A new step towards high-resolution seismic stratigraphy

机译:全卷3D地震解释方法:迈向高分辨率地震地层的新一步

获取原文
获取原文并翻译 | 示例
       

摘要

Following decades of technological innovation, geologists now have access to extensive 3D seismic surveys across sedimentary basins. Using these voluminous data sets to better understand subsurface complexity relies on developing seismic stratigraphic workflows that allow very high-resolution interpretation within a cost-effective timeframe. We have developed an innovative 3D seismic interpretation workflow that combines full-volume and semi-automated horizon tracking with high-resolution 3D seismic stratigraphic analysis. The workflow consists of converting data from seismic (two-way traveltime) to a relative geological time (RGT) volume, in which a relative geological age is assigned to each point of the volume. The generation of a horizon stack is used to extract an unlimited number of chronostratigraphic surfaces (i.e., seismic horizons). Integrated stratigraphic tools may be used to navigate throughout the 3D seismic data to pick seismic unconformities using standard seismic stratigraphic principles in combination with geometric attributes. Here, we applied this workflow to a high-quality 3D seismic data set located in the Northern Carnarvon Basin (North West Shelf, Australia) and provided an example of high-resolution seismic stratigraphic interpretation from an Early Cretaceous shelf-margin system (Lower Barrow Group). This approach is used to identify 73 seismic sequences (i.e., clinothems) bounded by 74 seismic unconformities. Each clinothem presents an average duration of approximately 63,000 years (fifth stratigraphic order), which represents an unprecedented scale of observation for a Cretaceous depositional system on seismic data. This level of interpretation has a variety of applications, including high-resolution paleogeographical reconstructions and quantitative analysis of subsurface data. This innovative workflow constitutes a new step in seismic stratigraphy because it enables interpreters to map seismic sequences in a true 3D environment by taking into account the full variability of depositional systems at high frequency through time and space.
机译:几十年的技术创新,地质学家现在可以进入沉积盆地的广泛的3D地震调查。使用这些庞大的数据集以更好地了解地下的复杂性依赖于开发允许在经济高度的时间范围内允许非常高分辨率解释的地震地层工作流程。我们开发了一种创新的3D地震解释工作流程,将全批量和半自动地平线跟踪结合了高分辨率3D地震地层分析。工作流包括将来自地震(双向行程)的数据转换为相对地质时间(RGT)体积,其中相对地质时代被分配给体积的每个点。地平线堆的产生用于提取无限数量的计时器(即,地震视野)。集成的地层工具可用于在整个3D地震数据中导航,以使用标准地震地层原理与几何属性结合使用标准地震地层原理来挑选地震不整合。在这里,我们将此工作流程应用于位于Carnarvon盆地(澳大利亚北部北部)的高质量3D地震数据集,并提供了来自早期白垩纪搁板系统的高分辨率地震地层解释的例子(下巴团体)。该方法用于鉴定由74个地震不整形的73个地震序列(即ClinHothems)。每个Clinothem都呈现了大约63,000年(第五地层阶)的平均持续时间,这代表了对地震数据的白垩纪沉积系统的前所未有的观察规模。这种解释级别具有各种应用,包括高分辨率的古地理重建和对地下数据的定量分析。这种创新的工作流程构成了地震地层的新步骤,因为它使解释器能够通过考虑到高频通过时间和空间的沉积系统的全部变异来映射真正的3D环境中的地震序列。

著录项

  • 来源
    《Interpretation》 |2019年第3期|共15页
  • 作者单位

    Univ Western Australia Ctr Energy Geosci Sch Earth Sci 35 Stirling Highway Perth WA 6009 Australia;

    Univ Western Australia Ctr Energy Geosci Sch Earth Sci 35 Stirling Highway Perth WA 6009 Australia;

    Eliis SAS Immeuble Onyx 187 Rue Helene Boucher F-37170 Castelnau Le Lez France;

    Eliis SAS Immeuble Onyx 187 Rue Helene Boucher F-37170 Castelnau Le Lez France;

    Chevron Australia Pty Ltd 250 St Georges Terrace Perth WA 6000 Australia;

    Univ Western Australia Ctr Energy Geosci Sch Earth Sci 35 Stirling Highway Perth WA 6009 Australia;

    Univ Western Australia Ctr Energy Geosci Sch Earth Sci 35 Stirling Highway Perth WA 6009 Australia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球物理学;
  • 关键词

  • 入库时间 2022-08-20 02:25:42

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号