Pre-Khuff勘探数据收集策略——阿布扎比海上油田的学习和最佳实践

S. Steiner, Amogh Chitrao, Pradeep Menon, A. Vantala
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引用次数: 0

摘要

钻深探井到Pre-Khuff地层需要相当大的投资,因此通过测井和岩心收集数据应该是最高质量的,以最大限度地提高信息价值。磨蚀性,加上井下高温和钻头卡钻,形成了一个独特的恶劣环境。在本文中,我们讨论了数据采集中的挑战,并提出了针对Pre-Khuff勘探目标的测井和取心方案的最佳实践。海上侵彻最古老的前胡夫地层单元为志留系古赛坝地层单元。除了二叠纪-石炭系Unayzah,在阿布扎比海上发现的其他地层单元还有二叠纪基底Khuff碎屑岩(BKC)、早石炭世Berwath、志留纪Tawil /Sharawra组。近年来,在高温高压条件下,许多海上油田的深探井在Pre-Khuff进行了钻探。考虑到广泛的数据收集程序,包括泥浆测井、随钻测井、电缆测井和岩心提取,然后进行详细的岩心分析。通过电缆获取的测井数据经常受到冲蚀和恶劣井眼条件的影响,因此对可靠地评估岩石性质提出了挑战。成功获取了全岩心和侧壁岩心,并进行了广泛的岩心分析程序。Pre-Khuff数据收集的主要目标是岩石地层学、沉积学和年龄测定、岩石物理性质和证明油气存在,以及为后续试井作业进行水力压裂地层提供的地质力学性质。井场孢粉分析是确定井场年龄的重要依据。泥浆测井结果与裸眼测井和井眼成像测井的相关性证明了确定油气存在的关键。复杂的岩性组合最好用元素光谱测井来解决。与电缆相比,LWD测井数据采集更受青睐,因为它降低了粘钻和拉拔的风险,并且侵入最小。然而,一些有用的测量方法,如介电测井,目前只能通过电缆进行测量,行业应该开发这种随钻测井工具。核磁共振工具一般无法应对高温环境。因此,鼓励服务行业提供更高规格的NMR工具。由于基质渗透率较低,采用脉冲衰减法和压力衰减法测量渗透率时,首选碎石岩心分析法或蒸馏法。给出了最佳数据收集的建议,以确保信息的最大价值和最好的数据质量。测井作业应该是随钻测井和电缆作业的结合。岩心采集必须排除BKC(基底Khuff碎屑),以限制岩心干扰的风险。提出了一种典型的岩心分析方案,用于评估Pre-Khuff的岩石物理和地质力学性质,从而在地层水力压裂之前成功进行风险评估。进一步的岩石地层和年龄测定技术包括在范围内。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pre-Khuff Exploration Data Gathering Strategy – Learnings and Best Practices from Abu Dhabi Offshore Fields
Drilling deep exploration wells to Pre-Khuff formations requires considerable investment and therefore data gathering through logs and cores should be of highest quality to maximize value of information. The abrasive nature combined with high downhole temperatures and bit sticking present a uniquely hostile environment. In this paper, we discuss challenges in data acquisition and propose best practices for logging and coring programs tailored for Pre-Khuff exploration targets. The oldest Pre-Khuff stratigraphic unit penetrated offshore is Silurian Qusaiba equivalent. Apart from Permo-carboniferous Unayzah, the other stratigraphic units encountered in Abu Dhabi Offshore are Permian Basal Khuff Clastics (BKC), Early Carboniferous Berwath, Silurian Tawil /Sharawra Formations. In recent years, a number of deep exploration wells penetrated Pre-Khuff in various offshore fields, often under challenging high temperature and high pressure conditions. Considering extensive data gathering programs, this includes mud logging, LWD, wireline logging, and core extraction followed by detailed core analysis. Log data acquired through wireline is frequently impaired by wash outs and bad hole conditions, hence posing a challenge to assess rock properties reliably. Cores were successfully acquired as whole core and sidewall core and extensive core analysis programs were conducted. The key objectives for data gathering in Pre-Khuff are lithostratigraphy, sedimentology and age dating, petrophysical properties and prove hydrocarbon presence as well as geomechanical properties for hydraulic fracturing of the formation for subsequent well testing operations. Palynological analysis at well site is important for age determination. Correlation of mud logging results with open hole logs and Borehole image logs proved essential to determine hydrocarbon presence. The complex lithology mix is best resolved with elemental spectroscopy logging. LWD log acquisition is preferred over wireline because of a reduced risk of stick and pull and minimum invasion. However, some useful measurements such as Dielectric log are currently only available through wireline and industry should develop this tool for LWD. NMR tools generally cannot cope with the high temperature environment. Hence, service industry is encouraged to provide higher spec NMR tools. Due to low matrix permeability, core analysis for crushed rock or retort methods are preferred to obtain permeability measurements through pulse decay and pressure decay methods. Recommendations are given for optimal data gathering to ensure maximum value of information and best possible data quality. Logging operations should be a combination of Logging-While –Drilling and Wireline operations. Core acquisition will have to exclude BKC (Basal Khuff Clastic) to limit the risk of core jamming. A typical core analysis program to assess petrophysical and geomechanical properties for Pre-Khuff is proposed, leading to a successful risk assessment prior to hydraulic fracturing of the formation. Further lithostratigraphic and age-determination techniques are included in the scope.
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