Holistic Evaluation of Reservoir Oil Viscosity in Breidablikk Field – Including Mud Gas Logging Approach

A. Cely, Ingvar Skaar, Tao Yang
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Abstract

Breidablikk is a green field on the Norwegian Continental Shelf that just started the preproduction drilling of 23 wells in two structures. We have two reservoir fluid samples from exploration wells in each structure with relatively high viscosity of 4 and 8 cP, respectively. Our dynamic reservoir simulations on the Breidablikk Field indicate that any change in the viscosity in each direction can lead to a 20 to 30% difference in oil recovery. Therefore, updating our reservoir models with the viscosity distribution in the field along with the drilling activities is important. Currently, our models assume homogeneous reservoir oil viscosities across each structure. In this study, our primary aim is to conduct a holistic evaluation of the reservoir oil viscosity, using multiple methods to determine the most effective approach for qualitatively mapping the oil viscosity across the field, distinguishing between the low- and high-viscosity regions. The technologies chosen for this assessment are standard mud gas data, advanced mud gas data, and analysis of oil extracts from cuttings, given they have previously demonstrated their capability to estimate fluid properties while drilling or within a limited time frame, as evidenced by the work of Cutler et al. (2022). The methods were compared using pressure/volume/temperature (PVT) measurements as a benchmark. As of today, this method is considered the most reliable to obtain reservoir fluid properties, and in consequence, these measurements serve as the reference viscosity values in the study. The results of our analysis in Breidablikk show that an approach based on advanced mud gas data provide an oil quality classification that distinguishes between high- and low-viscosity reservoir oils, using the ethane/n-pentane ratio as the best parameter correlated to reservoir oil viscosity in Breidablikk. The threshold for the two viscosity regions is identified from a reservoir fluid database from the Breidablikk-Grane area, and the oil viscosity region estimated from advanced mud gas data agrees well with the PVT measurements. The viscosity estimation using a standard mud gas approach based on methane to propane compositions indicates that this technology cannot correctly differentiate between low- and high-viscosity region wells in the Breidablikk Field. Hence, it is not recommended. Further findings from our analysis indicate that the utilization of oil-based mud, combined with a high drilling speed, significantly affects the quality of the cuttings in Breidablikk. Consequently, the application of traditional geochemical analysis methods on cutting extracts is challenging. Therefore, this method is not recommended for the qualitative identification of the viscosity region of a given well. Benchmarking all available technologies allows us to select a real-time, reliable, and cost-efficient method to qualitatively estimate reservoir oil viscosity in Breidablikk. The selected method is field-specific and not general for other heavy oil fields. In summary, providing an accurate reservoir oil viscosity mapping at an early stage in field development plays a crucial role in the further optimization of drilling targets and ultimately leads to improved oil recovery (Halvorsen et al., 2016; Maraj et al., 2021).
整体评估 Breidablikk 油田储层石油粘度 - 包括泥浆气体测井方法
Breidablikk是挪威大陆架上的一片绿地,刚刚开始在两个结构中进行23口井的预生产钻井。我们在每个构造中都有两个探井的储层流体样品,粘度相对较高,分别为4和8 cP。我们对Breidablikk油田的动态油藏模拟表明,在每个方向上粘度的任何变化都会导致原油采收率的20%到30%的差异。因此,随着钻井活动的进行,根据油田的粘度分布来更新储层模型是很重要的。目前,我们的模型假设每个结构的油藏粘度都是均匀的。在这项研究中,我们的主要目的是对储层油粘度进行全面评估,使用多种方法确定最有效的方法来定性绘制整个油田的油粘度,区分低粘度区和高粘度区。本次评估选择的技术包括标准泥浆气数据、高级泥浆气数据和岩屑油提取物分析,因为这些技术之前已经证明了它们能够在钻井过程中或在有限的时间内估计流体性质,正如Cutler等人(2022)的工作所证明的那样。以压力/体积/温度(PVT)测量作为基准,对两种方法进行了比较。迄今为止,这种方法被认为是获得储层流体性质最可靠的方法,因此,这些测量结果可以作为研究中的参考粘度值。我们在Breidablikk的分析结果表明,基于先进的泥浆气数据的方法提供了一种区分高粘度和低粘度油藏油的油质分类方法,使用乙烷/正戊烷比作为与Breidablikk油藏油粘度相关的最佳参数。根据Breidablikk-Grane地区的储层流体数据库确定了这两个粘度区域的阈值,根据先进的泥浆气数据估计的油粘度区域与PVT测量结果吻合得很好。使用基于甲烷和丙烷组成的标准泥浆气方法进行粘度估算表明,该技术无法正确区分Breidablikk油田的低粘度和高粘度区域井。因此,不建议这样做。进一步的分析结果表明,油基泥浆的使用,加上高钻井速度,显著影响了Breidablikk钻井岩屑的质量。因此,传统的地球化学分析方法对切削提取物的应用具有挑战性。因此,不建议用这种方法对给定井的粘度区进行定性鉴定。通过对所有可用技术进行基准测试,我们可以选择一种实时、可靠、经济的方法来定性地估计Breidablikk油田的油藏油粘度。所选择的方法是针对特定油田的,并不适用于其他稠油油田。综上所述,在油田开发的早期阶段提供准确的油藏油粘度图对于进一步优化钻井目标并最终提高采收率至关重要(Halvorsen等,2016;Maraj et al., 2021)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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