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Enhanced Petrophysical Evaluation in Complex Lithology Using Advanced Analysis of Cuttings Data: A Case Study from Saudi Arabia

机译:使用扦插数据的高级分析增强了复杂岩性的岩石物理评估:沙特阿拉伯的案例研究

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Advanced analysis of cuttings (AC A) provides qualitative measurements of the gamma ray spectrum and allows for quantifying of mineral elements for each sample in mud logging. The advancement in technology permits the ACA measurements to be conducted in near real time, which enables integration with the conventional log measurements for the purpose of constructing robust, multi-mineral petrophysical model. The result of the data integration prevails in the petrophysical mineral model. The ability to acquire samples at a higher sampling rate, proper sample treatment and oxides correction, had improved the quality of data acquired from ACA when compared to the initial trials. ACA sample resolution had been improved immensely when compared to the first trial, because it reached the level where it can resolve the layering of the reservoir in the targeted formations. LWD measurements are essential in real-time petrophysical evaluation but slim neutron spectroscopy (NS) tool is not available, and only some contractors have slim spectral gamma ray (SGR). ACA was used to complement the previously mentioned deficiency in LWD technology. A reliable carbonate multi-min petrophysical model was successfully built and implemented in near real time evaluation using ACA and LWD data integration. In addition, the ACA has the advantage of acquiring the SGR and NS in high temperature (>320°F) slim (<4 inches) hole. As a result, the combination of ACA and wireline logs were used to evaluate a deep reservoir. The ACA is more cost effective when compared to similar measurements from conventional logs. This paper discusses the ACA and its integration with conventional log data for petrophysical interpretation of the carbonates and elastics formations, respectively. The availability of SGR and NS are very important in complex lithology evaluation. This case study shows that advanced mudlogging data integrated with standard logging measurements, assisted in building enhanced petrophysical model, where the SGR and NS logging measurements were absent.
机译:切屑的高级分析(AC A)提供了伽马射线光谱的定性测量,并允许定量泥浆测井中的每个样品的矿物元素。技术进步允许在近实时进行的ACA测量,这使得能够与传统的日志测量集成,以便构建鲁棒,多矿物岩石物理模型。岩石物理矿物模型中数据集成的结果占有于普遍的影响。与初始试验相比,以更高的采样率,适当的样品处理和氧化物校正以更高的采样率,适当的样品处理和氧化物校正获得样品的能力提高了来自ACA所获得的数据的质量。与第一次试验相比,ACA样本分辨率已加强,因为它达到了在目标地层中可以解决储层层的水平。 LWD测量在实时岩石物理评估中是必不可少的,但不可用纤薄的中子谱(NS)工具,只有一些承包商只有SLIM光谱伽马射线(SGR)。 ACA用于补充前面提到的LWD技术的缺陷。使用ACA和LWD数据集成,在近实时评估中成功构建和实施了可靠的碳酸酯多重岩石物理模型。此外,ACA具有在高温(> 320°F)细长(<4英寸)孔中获得SGR和NS的优点。结果,ACA和电缆日志的组合用于评估深层储层。与传统日志相似的测量相比,ACA更具成本效益。本文分别讨论了aca及其与常规日志数据的集成,分别进行碳酸盐和弹性形成的岩石物理解释。 SGR和NS的可用性在复杂的岩性评估中非常重要。本案例研究表明,与标准测井测量集成的高级静电数据,辅助建立增强的岩石物理模型,其中SGR和NS测量测量不存在。

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