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Impact of Proppant Pumping Schedule on Well Production for Slickwater Fracturing

机译:支撑剂抽水时间表对光滑垫片井生产的影响

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Slickwater fracturing has become one of the most leveraging completion technologies in unlocking hydrocarbon in unconventional reservoirs.In slickwater treatments,proppant transport becomes a big concern because of the inefficiency of low viscosity fluids to suspend the particles.Many studies have been devoted to proppant transport experimentally and numerically.However,only a few focused on the proppant pumping schedules in slickwater fracturing.The impact of proppant schedules on well production remains unclear.The goal of our work is to simulate the proppant transport under real pumping schedules(multi-size proppants and varying concentration)at the field scale and quantitatively evaluate the effects of proppant schedules on well production for slickwater fracturing.The workflow consists of three steps.Firstly,a validated 3D multi-phase particle-in-cell(MP-PIC)model has been employed to simulate the proppant transport at real pumping schedules in a field-scale fracture(180 m length,30 m height).Secondly,we applied a propped fracture conductivity model to calculate the distribution of propped fracture width,permeability,and fracture conductivity.In the last step,we incorporated the propped fracture geometry and conductivity distribution into a reservoir simulation model to predict gas production.Based on the field designs of pumping schedules in slickwater treatments,we have generated four proppant schedules,in which 100-mesh and 40/70-mesh proppants were loaded successively with stair-stepped and incremental stages.The first three were utilized to study the effects of the mass percentages of the multisize proppants.From schedules 1 to 3,the mass percentages of 100-mesh proppants are 30%,50%,and 70%,respectively.Schedule 4 has the same proppant percentage as schedule 2 but has a flush stage after slurry injection.The comparison between schedules 2 and 4 enables us to evaluate the effect of the flush stage on well production.The results indicate that the proppant schedule has a significant influence on treatment performance.The schedule with a higher percentage of 100-mesh proppants has a longer proppant transport distance and a larger propped fracture area.However,fracture conductivity after fracture closure decreases.Then,the reservoir simulation results show that both the small and large percentages of 100-mesh proppants cannot maximize well production because of the corresponding small propped area and low fracture conductivity.Schedule 2,with a median percentage(50%)of 100-mesh proppants,has the highest 1000-day cumulative gas production.For schedule 4,the flush stage significantly benefits the gas production by 8% because of a longer and more uniform proppant bed along the fracture.This paper,for the first time,provides both the qualitative explanation and quantitative evaluation for the impact of proppant pumping schedules on the performance of slickwater treatments at the field scale,providing crucial insights for the design of proppant schedules in the field slickwater treatments.
机译:Slickwater压裂已成为在非传统水库中解锁碳氢化合物中最杠杆化的完工技术之一。在光滑的疗法中,支撑剂运输成为一个大问题,因为低粘度液体悬浮颗粒的低效率。在实验上致力于高粘剂的研究但是,以数字方式,只有几个少数集中在光滑的泵浦水上泵送时间表.PPPANT在良好生产中的影响仍然尚不清楚。我们工作的目标是在真正的泵送时间表下模拟支撑剂运输(多尺寸支撑剂和在现场规模处的变化浓度并定量评估支撑剂时间表对Slickwater压裂的良好生产的影响。工作流由三个步骤组成。透过,验证的3D多相粒子 - 细胞(MP-PIC)模型已经存在用于在现场裂缝骨折(长度为180米, 30米高)。首先,我们应用了支撑骨折电导率模型,以计算支撑裂缝宽度,渗透率和断裂电导率的分布。在最后一步中,我们将支撑的断裂几何形状和电导率分布纳入储层模拟模型中的预测燃气生产。基于泵送时间表的场设计,我们已经产生了四种支撑剂调度,其中100目和40/70目的支撑剂与阶梯式阶梯和增量阶段连续装载。前三个为了研究多化支撑剂的质量百分比的影响。从调度1至3,100目支撑剂的质量百分比分别为30%,50%和70%。平安4具有与附表2相同的支撑剂百分比但在浆液注射后具有冲洗阶段。时间表2和4之间的比较使我们能够评估冲洗阶段对良好生产的影响。结果表明支撑剂S Chedule对治疗性能产生了重大影响。具有较高百分比的100目支撑剂的时间表具有更长的支撑剂运输距离和更大的支撑骨折区域。然而,裂缝闭合后的断裂导电性降低。该储层仿真结果显示由于相应的小丙位面积和低裂缝导电性,这两种百分之一度的100目支撑剂的百分比不能最大化良好的生产。平安百分比(50%)的100目支撑剂,具有最高的1000天累计天然气生产。对于花哨的阶段,由于沿着骨折更长且更均匀的支撑剂床,冲洗阶段显着利用8%的汽油产量。本文首次提供定性解释和定量评估支撑剂泵送时间表对现场光滑处理的影响,为支撑剂设计提供了重要见解现场Slickwater治疗中的时间表。

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