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Data-Driven Analysis of Natural Gas EOR in Unconventional Shale Oils

机译:非传统页岩油中天然气EOR的数据驱动分析

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Due to complex characteristics of shale reservoirs, data-driven techniques offer fast and practical solutions in optimization and better management of shale assets. Developments in data-driven techniques enable robust analysis of not only the primary depletion mechanisms, but also the enhanced oil recovery in unconventionals such as natural gas injection. This study provides a comprehensive background on application of data-driven methods in the O&G industry, the process, methodology and learnings along with examples of data-driven analysis of natural gas injection in shale oil reservoirs through the use of publiclyavailable data. Data is obtained and organized. Patterns in production data are analyzed using data-driven methods to understand key parameters in the recovery process as well as the optimum operational strategies to improve recovery. The complete process is illustrated step-by-step for clarity and to serve as a practical guide for readers. This study also provides information on what other alternative physics-based evaluation methods will be able to offer in the current conditions of data availability and the understanding of physics of recovery in shale oil assets together with the comparison of outcomes of those methods with respect to the data-driven methods. Thereby, a thorough comparison of physics-based and data-driven methods, their advantages, drawbacks and challenges are provided. It has been observed that data organization and filtering take significant time before application of the actual data-driven method, yet data-driven methods serve as a practical solution in fields that are mature enough to bear data for analysis as long as the methodology is carefully applied. The advantages, challenges and associated risks of using data-driven methods are also included. The results of data-driven methods illustrate the advantages and disadvantages of the methods and a guideline for when to use what kind of strategy and evaluation in an asset. A comprehensive understanding of the interactions between key components of the formation and the way various elements of an EOR process impact these interactions, is of paramount importance. Among the few existing studies on the use of data-driven method for natural gas injection in shale oil, a comparative approach including the physics-based methods is included but they lack the interrelationship between physics-based and data-driven methods as a complementary and a competitor within the era of rise of unconventionals. This study closes the gap and serves as an up-to-date reference for industry professionals.
机译:由于页岩储存器的复杂特性,数据驱动技术提供了快速实用的解决方案,优化和更好的页岩资产管理。数据驱动技术的开发使得不仅可以施加初级耗尽机制的鲁棒分析,而且可以增强自然气体注射等非传统的增强的储存。本研究提供了关于在O&G行业中的数据驱动方法,过程,方法和学习中的数据驱动方法的综合背景,以及通过使用公开可利用数据的天然气喷射的数据驱动分析的例子。获得并组织数据。使用数据驱动方法分析生产数据中的模式,以了解恢复过程中的关键参数以及改善恢复的最佳操作策略。完整的过程是为了清楚起见来逐步说明,并用作读者的实用指南。本研究还提供了有关其他基于物理的评估方法的信息,可以在目前的数据可用条件下提供,以及对页岩油资产的恢复物理学的理解以及这些方法相对于这些方法的结果的比较数据驱动方法。由此,提供了基于物理和数据驱动方法的彻底比较,其优点,缺点和挑战。已经观察到,数据组织和过滤在应用实际数据驱动方法之前需要很大的时间,但数据驱动方法用作足够成熟的字段中的实际解决方案,只要方法仔细,就足够了以进行分析的数据应用。还包括使用数据驱动方法的优点,挑战和相关的风险。数据驱动方法的结果说明了方法的优点和缺点以及何时使用资产中的什么样的策略和评估的准则。全面了解形成的关键组成部分与EOR过程的各种元素影响这些交互的方式,这是至关重要的。在少数关于使用数据驱动方法的现有研究中的天然气注射物中的页岩油,包括基于物理的方法的比较方法,但它们缺乏物理学和数据驱动方法之间的相互关系,作为互补性和一个竞争对手在非传统的崛起中。本研究结束了差距,并作为行业专业人士的最新参考。

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