Reservoir Description Insights from Inter-well Gas Tracer Test

Abdulaziz Alqasim, S. Kokal, S. Hartvig, O. Huseby
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引用次数: 3

Abstract

Tracer technology has gained considerable attention recently as an effective tool in the reservoir monitoring and surveillance toolkit, particularly in IOR operations. Gas flow paths within the reservoir can be quite different from liquid (oil and water) flow path. This is primarily due to gravity override, and differences in density and relative permeability between the gas and liquid phases. Inter-well gas tracer test (IWGTT) is a key monitoring and surveillance tool for any IOR projects. IWGTT should be designed and implemented to track the flow behavior of gas phase. The test generally entails injecting a small amount of unique perflouro-hydrocarbon tracers into the gas phase injectant stream. IWGTT have been conducted on a limited number of fields across the globe, and sample results of some will be presented. The sampling frequency of the tracers from the producers should be designed carefully to collect the necessary data that will provide insights about the connectivity between the injectors and producers well pairs, gas breakthrough times ("time of flight"), and possible inter-well fluid saturations. Different fit-for-purpose unique tracers can be deployed in the subject injector(s) stream and their elution can be monitored in the corresponding up-dip producer(s). In addition to reservoir connectivity and break-through times between injector and producer pairs, an IWGTT helps in optimizing WAG operations and production strategies for gas injection projects, improve sweep efficiency and ultimately enhance oil recovery. It can also be used to identify source of inadvertent gas leakage into shallow aquifers or soil gas, and help in the planning and placement of future wells. This paper reviews the workflow and necessary logistics for the successful deployment of an inter-well gas tracer test. It will provide the best practices for designing, sampling, analyzing and interpretation of a gas tracer deployment. The paper also highlights the benefits of gas tracer data and their usefulness in understanding well interconnectivity and dynamic fluid flow in the reservoir. The results can be used to refine the reservoir simulation model and fine tune its parameters. This effort should lead to better reservoir description and an improved dynamic simulation model. The challenges associated with IWGTT will also be shared.
通过井间气体示踪剂测试了解储层描述
近年来,示踪剂技术作为一种有效的油藏监测工具,特别是在IOR作业中,受到了广泛的关注。储层内的气体流动路径可能与液体(油和水)流动路径大不相同。这主要是由于重力覆盖,以及气相和液相之间的密度和相对渗透率的差异。井间示踪剂测试(IWGTT)是任何IOR项目的关键监测工具。IWGTT的设计和实现是为了跟踪气相的流动行为。该测试通常需要将少量独特的全氟烃示踪剂注入气相注入液中。IWGTT已在全球范围内有限的几个领域进行,并将介绍其中一些领域的样本结果。生产商示踪剂的采样频率应该仔细设计,以收集必要的数据,这些数据将提供有关注水井和生产井对之间连通性、气体突破时间(“飞行时间”)以及可能的井间流体饱和度的信息。不同的专用示踪剂可以部署在目标注入器流中,并且可以在相应的上倾生产器中监测其洗脱情况。除了储层连通性和注入器与采油器之间的突破时间外,IWGTT还有助于优化WAG操作和注气项目的生产策略,提高波及效率,最终提高石油采收率。它还可以用于识别无意中泄漏到浅层含水层或土壤气体的来源,并有助于未来井的规划和布置。本文综述了成功部署井间气体示踪剂测试的工作流程和必要的后勤保障。它将为气体示踪剂的设计、采样、分析和解释提供最佳实践。本文还强调了气体示踪剂数据的好处,以及它们在了解井间连通性和储层动态流体流动方面的有用性。研究结果可用于油藏模拟模型的细化和参数的微调。这一努力将导致更好的油藏描述和改进的动态模拟模型。双方还将分享与国际水资源综合利用工作组有关的挑战。
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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