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Advanced Technique for Enhancing Fracture Conductivity in Tight-Gas Condensate Reservoirs through Applying Liquid Resins:Case Histories from Burgos Basin,Mexico

机译:通过施用液体树脂,通过施用液体树脂来提高骨折导电性的先进技术:墨西哥布尔戈斯盆地的病例历史

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The purpose of this research was to identify challenges related to optimizing hydraulic fracturing in tight-gas condensate reservoirs using liquid resins to coat fracturing proppants.The selected case histories illustrate specific documented solutions of recent,successful approaches using this technology in the Burgos basin by analyzing production behavior before and after treatment in an exploratory well. When discussing post-treatment production evaluation,the immediate pressure response and water flowback are commonly the very first parameters to observe during the cleanup stage.This surging process may indicate whether the objective was reached or not.However,additional uncertainty can arise when undesired monthly decline rates are observed,suggesting a loss of conductivity that can be caused by several factors—fracture embedment,early diagenesis,proppant crushing,fines migration caused by high producing rates,and stress cycling,among others—compromising the propped fracture effective-ness. Real fracture growth during stimulation treatments,which can be monitored by microseismics, determines production longevity and is the actual criteria for determining fracturing success.This ultimate goal has been achieved in Burgos basin by applying the appropriate fracture design and considering a wide range of permeabilities present in the reservoir,as well as using proper geomechanical models along identified gas-condensate pay zones.Based on these findings,the recommended and applied treatment design used a liquid resin coating on 40 to 100%of the ceramic proppant,which was applied on-the-fly during pumping of the high-concentration proppant stages.This new technique led to obtaining an important production increase,maximizing reserves,and creating new opportunities for the operator to drill several wells in the area.
机译:本研究的目的是识别与使用液体树脂进行涂层压裂支撑剂的液压冷凝水储层的液压压裂相关的挑战。所选案例历史说明了通过分析在Burgos盆地中使用该技术的最新成功方法的具体记录解决方案在探索性井之前和治疗前后的生产行为。当讨论后处理后的生产评估时,立即压力响应和水流通常是在清理阶段观察到的第一个参数。这种浪涌过程可以指示是否达到目标。然而,每月不期望时都会出现额外的不确定性观察到下降率,表明由几个因素 - 骨折嵌入,早期成岩作用,高度损失,高产生速率引起的罚款和压力循环引起的导电性丧失,以及损害额外的裂缝效果。刺激治疗期间的真实骨折生长,可通过微震测量来监测,决定生产寿命,是确定压裂成功的实际标准。这一目标通过应用适当的骨折设计并考虑到存在的广泛渗透率,在Burgos盆地中实现了最终目标在储层中,以及沿着鉴定的气凝液支付地区使用适当的地质力学模型。基于这些调查结果,推荐和应用的处理设计使用40至100%的陶瓷支撑剂液体树脂涂层,其施加在 - 在泵送高浓度的支撑剂阶段期间 - 飞行。这项新技术导致获得重要的生产增加,最大化的储备,并为运营商创造新的机会,在该地区钻几个井。

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