碎屑环境下岩石性质的地震反射

V. Suleymanov, Abdulhamid Almumtin, G. Glatz, J. Dvorkin
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引用次数: 2

摘要

由声波传播产生的地震反射,本质上是各种地下地层之间界面的反射。传统上,这些反射以定性的方式解释,通过绘制地下地质,而不量化地层内部的岩石性质,即孔隙度、矿物学和孔隙流体。本研究旨在通过岩石物理手段进行所需的定量解释,建立岩石弹性与岩石物理性质之间的关系,用于储层表征。通过检查与美国大陆致密砂岩相关的碎屑沉积环境的电缆数据,我们进行了岩石物理诊断,以找到与数据相关的理论岩石物理模型。首先,采用理论流体替代方法进行岩石物理诊断,建立相应的岩石物理模型。一旦确定了这些模型,理论上我们就可以改变层段的厚度、孔隙流体、孔隙度和矿物学,以产生地质上合理的伪情景。最后,利用Zoeppritz(1919)方程获得这些情景的预期振幅与偏移量(AVO)和梯度与截距曲线。利用正演地震模拟建立了弹性与岩石物性之间的关系。几种理论岩石物理模型,即Raymer-Dvorkin模型、软砂模型、硬砂模型和固定水泥模型,应用于电缆数据。该模型假设只有两种矿物存在:石英和粘土。合适的岩石物理模型为高配位数的恒胶结模型。结果是一个地震反射目录,可以作为解释真实地震反射的现场指南,并确定储层几何形状、孔隙流体和孔隙度变化的地震可见性。获得的储层性质可以外推到远离井控的前景,以考虑某些假设情况,如合理的岩性或流体变化。这使得建立岩石性质的合成地震反射目录能够被解释人员用作将地震数据与储层体积性质联系起来的现场指南。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Seismic Reflections of Rock Properties in a Clastic Environment
Generated by the propagation of sound waves, seismic reflections are essentially the reflections at the interface between various subsurface formations. Traditionally, these reflections are interpreted in a qualitative way by mapping subsurface geology without quantifying the rock properties inside the strata, namely the porosity, mineralogy, and pore fluid. This study aims to conduct the needed quantitative interpretation by the means of rock physics to establish the relation between rock elastic and petrophysical properties for reservoir characterization. We conduct rock physics diagnostics to find a theoretical rock physics model relevant to the data by examining the wireline data from a clastic depositional environment associated with a tight gas sandstone in the Continental US. First, we conduct the rock physics diagnostics by using theoretical fluid substitution to establish the relevant rock physics models. Once these models are determined, we theoretically vary the thickness of the intervals, the pore fluid, as well as the porosity and mineralogy to generate geologically plausible pseudo-scenarios. Finally, Zoeppritz (1919) equations are exploited to obtain the expected amplitude versus offset (AVO) and the gradient versus intercept curves of these scenarios. The relationship between elastic and petrophysical properties was established using forward seismic modeling. Several theoretical rock physics models, namely Raymer-Dvorkin, soft-sand, stiff-sand, and constant-cement models were applied to the wireline data under examination. The modeling assumes that only two minerals are present: quartz and clay. The appropriate rock physics model appears to be constant-cement model with a high coordination number. The result is a seismic reflection catalogue that can serve as a field guide for interpreting real seismic reflections, as well as to determine the seismic visibility of the variations in the reservoir geometry, the pore fluid, and the porosity. The obtained reservoir properties may be extrapolated to prospects away from the well control to consider certain what-if scenarios like plausible lithology or fluid variations. This enables building of a catalogue of synthetic seismic reflections of rock properties to be used by the interpreter as a field guide relating seismic data to volumetric reservoir properties.
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