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首页> 外文期刊>Journal of Petroleum Science & Engineering >Influence of pore geometry, pressure and partial water saturation to electrical properties of reservoir rock: Measurement and model development
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Influence of pore geometry, pressure and partial water saturation to electrical properties of reservoir rock: Measurement and model development

机译:孔隙几何形状,压力和部分含水饱和度对储层岩石电学性质的影响:测量和模型开发

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摘要

Pressure and saturation are of two important parameters to be considered to evaluate the electrical properties of reservoir rock. As confining pressure can cause pore space of rock to collapse as well as rock properties to change, it for some reason is necessary to examine the degree of the pressure and saturation changes in affecting the electrical properties in detail. This work mainly focuses on the investigations of electrical properties of sandstones and carbonates. The effects of pore geometries, confining pressure, and partial water saturation on electrical properties are investigated. The new electrical dispersion models from 0.01 Hz until 0.2 MHz for shaly sandstone are also developed.Petrographic image analysis is carried out to asses pore geometry of media. Circularity, gamma, pore aspect ratio, pore size distribution and pore angle distribution are calculated to evaluate their effect on electrical dispersion. An observation on confining pressure and water saturation is then evaluated to obtain their impact on pore structure and complex resistivity.The result of this work, indicated by electrical resistivity dispersion in low water saturation, shows that surface conductivity plays as a dominant factor particularly in shaly media. In evaluating the surface conductivity, it is necessary to consider the pore geometry in that a large structure is easier to saturate rather than a small one. The high water salinity moreover can significantly reduce diffusive layer thickness and if the pore radii are very small, the diffusive layer thickness will touch each other and block an anion movement. The results further show that pore radius distribution provides more contribution to the electrical resistivity dispersion and becomes a basis to extract porosity from resistivity. The confining pressure only contributes small changes in pore geometry of media and the use of imaginary resistivity offers a better detection on it. Modified D-model and Archie's model are developed to calculate the dielectric permittivity and effective conductivity in high water salinity of saturated-rock as a function of water saturation degree.
机译:压力和饱和度是评估储层岩石电学性质应考虑的两个重要参数。由于围压会导致岩石的孔隙空间塌陷以及岩石性质发生变化,因此出于某种原因,有必要详细研究压力和饱和度变化对电气性质的影响程度。这项工作主要侧重于研究砂岩和碳酸盐的电学性质。研究了孔的几何形状,围压和部分水饱和度对电性能的影响。还开发了页岩砂岩从0.01 Hz到0.2 MHz的新电弥散模型。进行了岩相图像分析以评估介质的孔隙几何形状。计算圆度,γ,孔纵横比,孔径分布和孔角分布,以评估它们对电分散的影响。然后评估围压和含水饱和度的观测结果,以了解它们对孔隙结构和复电阻率的影响。这项工作的结果以低含水饱和度的电阻率分散表示,表明表面电导率是主要因素,尤其是在页岩中媒体。在评估表面电导率时,必须考虑孔的几何形状,因为大的结构比小结构更容易饱和。此外,高的水盐度可以显着减小扩散层的厚度,如果孔半径很小,则扩散层的厚度将相互接触并阻碍阴离子的运动。结果进一步表明,孔半径分布对电阻率分散性贡献更大,并成为从电阻率中提取孔隙率的基础。围压只会使介质的孔隙几何形状发生微小变化,而使用假想电阻率可以更好地对其进行检测。建立了改进的D模型和Archie模型,以计算饱和岩石高水盐度下的介电常数和有效电导率,作为水饱和度的函数。

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