增强地层评价的基质介电常数

Wael Abdallah, A. Al-Zoukani, S. Ma
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引用次数: 2

摘要

现代电介质工具通常用于获取基本的地层属性,如剩余油饱和度、充水孔隙度和盐水盐度。诸如Archie m和n参数等更具挑战性的储层岩石物理性质的提取技术也在不断涌现。得到的岩石物性参数的准确性和代表性取决于输入参数的准确性,如矩阵介电常数。在碳酸盐中,基体介电常数的变化范围很广,例如,文献中报道的石灰石基体介电常数在7.5到9.2之间。目前研究的主要目的是降低基质介电常数的不确定性,以提高碳酸盐岩储层的储层评价。所有介电测量均在1.5英寸进行。用频率在10mhz到1ghz之间的同轴反射探头测量碳酸盐塞样品。为了计算基质矿物介电常数,必须获得样品孔隙率。利用常规岩心分析的应力校正氦孔隙度,用x射线衍射测量样品的矿物学和化学成分。介电系统的校准是通过使用几种已知介电特性的标准来完成的。方解石和白云石基质介电常数通过实验室测量评估。该研究结果基于180个岩心塞的数据,可以通过统计分析来评估定义误差的有效性,从而大大降低了碳酸盐岩基质介电常数的不确定性;因此,利用介电测量加强地层评价。目前的研究为石灰石地层介电常数解释提供了更好的控制方法。这些知识将为含水孔隙度、冲刷层盐度和水相弯曲度等解释数据提供更好的信心。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Matrix Dielectric Permittivity for Enhanced Formation Evaluation
Modern dielectric tools are often run to obtain fundamental formation properties, such as remaining oil saturation, water-filled porosity, and brine salinity. Techniques to extract more challenging reservoir petrophysical properties like Archie m and n parameters are also emerging. The accuracy and representativeness of the obtained petrophysical parameters depend on the input parameter accuracy, such as matrix permittivity. In carbonates, matrix permittivity is known to vary over a wide range, for example, limestone matrix permittivity reported in the literature ranges from 7.5 to 9.2. The main objective of the current study is to reduce matrix dielectric permittivity uncertainty for enhanced formation evaluation in carbonate reservoirs. All dielectric measurements were conducted on 1.5 in. carbonate plug samples by means of a coaxial reflection probe with a range of frequency between 10 MHz and 1 GHz. To calculate matrix mineral dielectric permittivity, sample porosity must be obtained. Stress-corrected helium porosity from routine core analysis is used and samples mineralogy and chemical composition are measured by X-Ray diffraction. Dielectric system calibration is done by utilizing several well-characterized standards with known dielectric properties. Calcite and dolomite matrix permittivity are assessed by laboratory measurements. Results of this study and based on data from 180 core plugs allowed to assess the validity of the defined errors by statistical analysis, resulting in much reduced uncertainties in carbonate rock matrix dielectric permittivity; thus enhancing formation evaluation using dielectric measurements. The current study provides better control on dielectric permittivity values used in dielectric log interpretation for limestone formations. Such knowledge will provide better confidence in interpreted data such as water-filled porosity, flushed zone salinity and water phase tortuosity.
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