Application of Fiber Optics for Completion Design Optimization: A Methodological Approach and Key Findings

Fuels Pub Date : 2024-01-30 DOI:10.3390/fuels5010003
E. Fathi, F. Belyadi, M. F. Adenan, Christian Pacheco
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Abstract

This study investigates the application of fiber optic technology to optimize completion design in a hydraulic fracture stimulation for Marcellus Shale Reservoir. With a focus on improving cluster efficiencies and overcoming interstage communication challenges, the research utilizes real-time data from distributed acoustic (DAS), temperature (DTS), and strain (DSS) measurements. The methodology comprises a comprehensive analysis of completion and stimulation reports, fiber optics, microseismic data, and well logs. Conducted at the MSEEL well pads, MIP, and Boggess, and equipped with permanent and deployable fiber optic cables, this study emphasizes that engineered/geomechanical completion design leads to sustained cluster efficiency and stage production performance. Inefficient cluster efficiencies are primarily linked to fracture communication. Recommendations include employing a geomechanical completion design, avoiding non-uniform high natural fracture zones during hydraulic fracture stimulations, implementing short stage length, and using more 100 mesh sand. These insights, derived from correlations between fracture counts, distributed strain sensing (DSS), cluster efficiency, production logging, and production data, offer significant implications for optimizing completion design in unconventional reservoirs. The effective application of fiber optic technology, providing real-time DAS, DTS, and slow strain data, proves instrumental in addressing interstage communication challenges, contributing to improved reservoir performances and cost-effective operations in hydraulic fracture stimulations.
光纤在完井设计优化中的应用:方法论与主要发现
本研究调查了光纤技术在马塞勒斯页岩储层水力压裂激励中的应用,以优化完井设计。研究重点是提高集群效率和克服级间通讯挑战,利用分布式声学(DAS)、温度(DTS)和应变(DSS)测量的实时数据。该方法包括对完井和激励报告、光纤、微地震数据和测井记录的综合分析。这项研究在 MSEEL 井场、MIP 和 Boggess 进行,配备了永久性和可部署的光纤电缆,强调工程/地质机械完井设计可带来持续的集群效率和阶段生产性能。集群效率低下主要与裂缝沟通有关。建议包括采用地质力学完井设计,在水力压裂刺激过程中避免非均匀高天然裂缝区,缩短阶段长度,以及使用更多的 100 目砂。这些见解来自裂缝数量、分布式应变传感(DSS)、集束效率、生产测井和生产数据之间的相关性,对优化非常规储层的完井设计具有重要意义。光纤技术可提供实时的 DAS、DTS 和慢应变数据,其有效应用证明有助于解决层间通讯难题,有助于提高油藏性能和水力压裂致裂的成本效益。
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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