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Analysis of Various High Viscosity Friction Reducers and Brine Ranges Effectiveness on Proppant Transport

机译:分析各种高粘度摩擦减速器和盐水范围对支撑剂运输的效果

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Friction reducers(FRs)are used to decrease the amount of horsepower required to move a hydraulic fracturing fluid through a formation at a fixed flow rate.Though FR viscosity is not a crucial consideration in proppant transport when used before the perforations in slick water applications,FR viscosity becomes a greater consideration in proppant transport from the perforations into the formation and an important qualifying criterion with the advent of High Viscosity Friction Reducer(HVFR)systems that require higher loadings than traditional FRs.Consistent viscosity measurement can vary greatly depending upon a number of factors,for example temperature,hydration approach,polymer concentration,brine composition,and additive interaction.A study was developed and implemented to determine the influence of HVFR by concentrated particulate and bead settling.This study investigated the viscosities of five HVFRs applying eight variables using response surface methodology.Initial study criteria were establishing consistent hydration with unique apparatus design and viscosity measurement verification.Once established,this method examined the effects of 1:1,2:1,and 2:2 salts,singularly or in various concentrations and combinations.Experimental designs under fresh water conditions were also conducted with varied HVFR loadings(1.0 to 6.0gpt),blender RPM(600 to 12,000),and blender mixing times(0.5 to 8.7 minutes).Viscosities were measured from 200 to 6000(1/sec).Static settlement testing in ranges of 0.87 to 3.50 pounds per gallon in 0 to 140,000 total dissolved solids(TDS)brines was conducted.Single bead settling measurements were performed in fresh water and API brine.Specific HVFR and salt matrix combinations tested resulted in highly correlated response surfaces exhibiting consistent trends.The TDS and hardness had a minor to major influence on viscosity based upon the specific HVFR examined.Brines were predominately antagonistic with respect to viscosity with few synergistic results.The influences of HVFR dosage and mixing correlated highly to the viscosity of all HVFRs,and extended mixing time durations had no influence on some HVFR combinations indicating a viscosity reduction limit.In certain regions of the design space,settling rates were related to viscosity.Selection of an HVFR system precisely tailored for a specific brine composition guaranteeing maximum friction reduction and proppant transportation performance was vital.The influence of pumping and tubular transport on the HVFR viscosity is continuous and quantifiable.Additionally,the viscosity of the HVFR in a downhole brine environment provides discernable data for assessing far end well bore proppant transport and damage potential.This study established a reliable method for gauging performance and examining measurable field variables of HVFR systems.
机译:摩擦减速器(FRS)用于减少通过以固定的流速形成通过地层移动液压压裂流体所需的马力量。虽然FR粘度在光滑水应用中的穿孔之前使用的Proppant运输中的关键考虑, FR粘度变得更加考虑到从穿孔的支线运输到地层中,并且具有比传统FRS更高负载量的高粘度摩擦减速器(HVFR)系统的出现的重要合格标准.CORATENT粘度测量可以差异很大程度上取决于数字因素,例如温度,水合方法,聚合物浓度,盐水组合物和添加剂相互作用。开发并实施了研究,以确定HVFR通过浓缩颗粒和珠沉降的影响。研究研究了五个变量的五个HVFR的粘度使用响应曲面方法.Initial研究标准w ERE与独特的装置设计和粘度测量验证建立一致的水合。该方法确定了1:1,2:1和2:2盐,奇异或以各种浓度和组合的效果。在淡水条件下实验设计也用不同的HVFR载荷(1.0至6.0gpt)进行,搅拌器RPM(600至12,000),搅拌器混合时间(0.5〜8.7分钟)。两栖动物从200至6000(1 /秒)中测量。静态结算测试每加仑0至140,000个总溶解固体(TDS)盐水的范围为0.87至3.50磅。在淡水和API盐水中进行珠子沉降测量。特异性的HVFR和盐基组合测试,得到高度相关的响应表面,表现出一致的响应表面趋势。TDS和硬度对基于特异性HVFR检查的粘度的重大影响。伯素主要是抗粘度,少量协同r对我们的影响。HVFR剂量和混合高度相关性对所有HVFRS的粘度相关,并且扩展混合时间持续时间对一些HVFR组合没有影响,这表明粘度减少限度。在设计空间的某些区域,沉降率与粘度有关。为特定盐水组合物精确定制的HVFR系统,保证最大摩擦减少和支撑剂运输性能至关重要。泵送和管状运输对HVFR粘度的影响是连续和量化的。解法,井下HVFR的粘度盐水环境提供了评估远端井支柱运输和损伤潜力的可辨别数据。本研究建立了用于测量性能和检查HVFR系统的可测量场变量的可靠方法。

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