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首页> 外文期刊>Petroleum Geoscience >The third porosity system: understanding the role of hidden pore systems in well-test interpretation in carbonates
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The third porosity system: understanding the role of hidden pore systems in well-test interpretation in carbonates

机译:第三种孔隙度系统:了解碳酸盐岩试井解释中隐含孔隙系统的作用

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摘要

Well testing is a critical part of any evaluation of a carbonate reservoir discovery. Well-test interpretation in carbonate reservoirs poses additional challenges to those normally faced in the interpretation process in clastic reservoirs. The range of different boundary and crossflow relationships that are generated during well testing by the complex porosity systems are often poorly quantified and understood. The volume over which the pressure response is effective is also a source of great uncertainty and could be critical at the exploration/appraisal stage in any project.In this paper, which describes a generic modelling approach, we consider carbonate reservoirs which contain three pore sytems (or porosity types):(1) microporosity (end-member) with low permeability and high porosity;(2) macroporosity (end-member) with high permeability and high porosity; and (3) fracture porosity with high permeability and low porosity. These occur in various nested geometrical distributions and varying contrasts. The observed well-test responses (i.e. fracture flow, fracture-matrix interactions) tend to 'obscure' one of these systems when compared with theoretical models. Micro- (meso-) and macroporosity can merge into a single matrix porosity system where the permeability contrasts are not great and the correlation lengths short (which can often be the case in carbonates). Macroporosity can also appear in well testing to 'merge' with the fracture response, i.e. the contributions of flow in the fractures and (high-permeability) porous matrix are indistinguishable. As a result of the homogenizing attributes of pressure dissipation away from the well, it is not generally possible to see the effects of a 'triple-porosity' response (i.e. where three different pore systems have a separate and identifiable signature on the well-test response) and a classical double-porosity response in the well test, despite three different pore systems being present, is possible. The apparent double-porosity response, which might obscure a triple-porosity system, therefore needs careful interpretation in order to attribute the appropriate properties during reservoir characterization in carbonates.In this work we use 'geological' well testing (i.e. well testing through numerical simulation of hypothetical geological models) to systematically analyse the effects of microporosity, macroporosity and fracture porosity on pressure dissipation and their apparent homogenization. While recent studies have proposed that a triple-porosity system should result in a 'W-shaped' response, we do not observe this behaviour in our simulations, although we specifically designed our geological models with a triple-porosity system. Instead we observe how macroporosity merges with the fractures or micro-and macroporosity merge, creating a 'sub-dominant' matrix or a 'dominant' fracture system, respectively and follow a traditional 'V-shaped' double-porosity response.
机译:试井是碳酸盐岩储层发现评估的关键部分。碳酸盐岩储层的试井解释给碎屑岩储层解释过程中通常面临的挑战带来了额外的挑战。复杂的孔隙度系统在试井期间产生的不同边界和错流关系的范围通常很难被量化和理解。有效压力响应的体积也是一个很大的不确定性来源,并且在任何项目的勘探/评估阶段都是至关重要的。本文描述了一种通用的建模方法,我们考虑了包含三个孔隙系统的碳酸盐岩储层。 (或孔隙类型):( 1)低渗透率和高孔隙率的微孔(端元);(2)高渗透率和高孔隙率的大孔率(端元); (3)裂缝孔隙度高,渗透率低。这些以各种嵌套的几何分布和不同的对比度出现。与理论模型相比,观察到的良好测试响应(即裂缝流动,裂缝-基质相互作用)往往会“模糊”这些系统之一。微观(中观)和大孔隙度可以合并成一个单一的基质孔隙度系统,在该系统中,渗透率对比不大,相关长度短(在碳酸盐岩中通常就是这种情况)。大孔率也可以在试井中出现以与裂缝响应“融合”,即,裂缝中的流动和(高渗透性)多孔基质的贡献是无法区分的。由于远离井眼的压力耗散属性具有均质性,因此通常无法看到“三重孔隙”响应的影响(即,在试井测试中,三个不同的孔隙系统具有独立且可识别的特征尽管存在三种不同的孔隙系统,但在试井中仍然可以实现经典的双孔隙率响应。表观的双孔隙度响应可能会掩盖三孔隙系统,因此需要仔细解释,以便在碳酸盐岩储层表征期间赋予适当的属性。在这项工作中,我们使用“地质”试井(即通过数值模拟进行试井)假设地质模型)系统地分析了微孔隙,大孔隙和裂缝孔隙对压力消散及其表观均质化的影响。尽管最近的研究提出三孔隙度系统应导致“ W形”响应,但尽管我们使用三孔隙度系统专门设计了地质模型,但在模拟中并未观察到这种行为。取而代之的是,我们观察到大孔隙与裂缝或微孔隙与大孔隙的融合如何,分别形成了“次优势”基质或“优势”裂缝体系,并遵循了传统的“ V形”双孔隙响应。

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