绕过低电阻率低对比油气藏的解剖:在高度复杂的地层地质环境中寻找额外桶的艺术

S. Zulkipli, Norhana Harun
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引用次数: 0

摘要

最大限度地提高产量和维持产量是所有石油和天然气主要参与者的愿望。由于枯竭、高含水以及井的完整性问题,目前正在生产的储层在预期生产寿命结束之前可能无法获得良好的产量。随着更复杂的储层表征的出现,寻找具有厚产层和优良岩石质量的高产储层也变得越来越少。在区分烃类流体类型方面的高度不确定性进一步加剧了挑战。因此,需要一个系统的努力来维持生产管道。本文将介绍几个案例研究和岩石物理解决方案,以实现在高度复杂的地层圈闭地质环境中未开发的低电阻率低对比油藏的货币化,以挤压更多的石油产量,并增加储量组合的价值。识别低电阻率和低对比度(LRLC)储层首先要圈定测井响应,并辅以其他地下数据,如泥浆测井、岩心、流体样品和先进的声波测井,以确定横向砂体的连续性。通常,试井和生产数据是在矛盾证据中识别油气流体类型的基准。附近井的动态比较和流体接触运动评估也将是评估阶段的一部分。应用内部储层增强建模(REM)将是本文的重点,以揭示那些被薄层状砂岩、低盐度、存在与天然气相似测井响应的轻质油和高粉砂含量所掩盖的新的有希望的储量。文中还列举了几个井的生产动态与测井特征之间的关系。结果证明,产量增加了4800桶/天,对整个油田的生产情况产生了惊人的影响。在少数情况下,记录了大量的新储量增加,这进一步为修井、更积极的增产、评估和开发钻井活动开辟了新的上升机会。建立了系统的储层评价和岩石物理工作流程,逐步成熟并实现了效益,为整个地区树立了复制标准。随着从实际作业中获得的数据越来越多,已经建立了一个将测井响应与生产能力和过去作业经验目录联系起来的数据库,以供今后参考,并为实现LRLC潜力提供具体证据。简而言之,在复杂地层中开发LRLC的潜力需要进行密集的地下评估,这为扩大资源基础和产生现金提供了一个有希望的机会。必须继续努力,复制更多的成功,并引入更多的技术,以最大限度地减少LRLC的不确定性,并对产量增长产生连锁影响。
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The Anatomy of Bypassed Low Resistivity Low Contrast Hydrocarbon Reservoirs: The Arts of Finding Additional Barrels in a Highly Complex Stratigraphic Geological Setting
Maximizing production and sustaining the barrels produced is the aspiration to all oil and gas key players. Current producing reservoirs may not giving good yield till the end of expected production life due to depletion, high water cut and also due to well integrity issues. Finding prolific reservoirs with thick pay zones and excellent rock quality are also becoming scarcer as more complex reservoir characterization comes into play. The challenges are further compounded by high uncertainty in distinguishing hydrocarbon fluid type. Hence, a systematic effort need to be garnered to sustain the production pipeline. This paper will present several case studies and petrophysical solutions in monetizing the untapped low resistivity low contrast reservoirs in a highly complex stratigraphic trap geological setting to squeeze more barrels into production as well as adding value to the reserves portfolio. Identifying the low resistivity and low contrast (LRLC) reservoirs starts with delineating the log responses complemented by other subsurface data such as mud log, cores, fluid samples and advanced acoustic logging to determine lateral sand continuity. Often, well test and production data is used as the benchmark to identify hydrocarbon fluid type in the contradicting evidences. Comparison of nearby wells performance and evaluating fluid contact movement will be also part of the assessment stage. Application of in-house reservoir enhancement modeling (REM) will be the highlight of this paper to reveal those new promising reserves which are masked by thin laminated sand, low salinity, presence of light oil with similar log responses as gas and high silt content. Few examples relating the well production performance with log characteristics will be also discussed in this paper. Results proved that production gain has soared up to 4800 bopd in total to make an astounding impact to the overall field production scenario. In few cases, significant new reserves addition is recorded which further open-up new upside opportunities for work-over, more aggressive production enhancement, appraisal and development drilling campaign. A systematic formation evaluation and petrophysical workflow has also been established to mature and realize the gain which sets a replication standard to the entire region. As more data comes in from the actual jobs done, a database relating the log responses with production capacity and catalogue of past job lessons learned have been initiated for future reference and demonstrating concrete evidences in realizing LRLC potential. In a nutshell, exploiting LRLC potential in complex stratigraphic play requires an intensive subsurface evaluation and offers a promising opportunity in expanding the resource base and generating the cash. The efforts must continue with more success being replicated and bringing in more technology to minimize LRLC uncertainty and create a chain impact to production growth.
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