Sand-carrying thresholds of viscous slickwater: Weissenberg number–based prediction and field application

IF 6.5 3区 工程技术 Q2 ENERGY & FUELS
Natural Gas Industry B Pub Date : 2026-04-01 Epub Date: 2026-04-25 DOI:10.1016/j.ngib.2026.03.004
Junlin Wu, TianBo Liang, Bin Wang, Leyi Zheng, Hao Bai, Fangzhou Xu, FuJian Zhou
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引用次数: 0

Abstract

The complex viscoelastic and shear-thinning behavior of slickwater fracturing fluids imposes competing effects on proppant transport, complicating the prediction of sand-carrying capacity and increasing the sand plugging risk. This study quantifies slickwater elasticity over a range of shear rates using the Weissenberg number (Wi) and establishes a fracture-scale shear-rate calculation method to estimate elastic energy at different flow velocities. The results show that: (1) the Wi strongly correlates with sand-carrying capacity, demonstrating its effectiveness in characterizing elastic-dominated transport behavior; (2) fracture experiment identify distinct settling-rate thresholds for slickwater systems with different polymer concentrations; (3) at these thresholds, fluids transporting equivalent proppant volumes exhibit identical elastic energies, indicating a the existence of a critical elastic-energy requirement for stable proppant suspension; (4) elastic-energy thresholds are established for three sand concentrations, allowing rapid prediction of sand-carrying capacity across slickwater systems with different viscosities; and (5) a field construction strategy derived from the predicted operating window is validated through field trials conducted both within and outside this window, with close agreement observed between the predicted and actual proppant-transport performance. This study provides a quantitative and practical framework for optimizing slickwater fracturing operations.
粘性滑溜水携砂阈值:基于Weissenberg数的预测及现场应用
滑溜水压裂液复杂的粘弹性和剪切变薄行为对支撑剂的运移产生了相互竞争的影响,使携砂能力的预测复杂化,增加了堵砂风险。本研究利用Weissenberg数(Wi)量化了一系列剪切速率下的滑溜水弹性,并建立了一种裂缝尺度剪切速率计算方法来估计不同流速下的弹性能。结果表明:(1)Wi与携沙能力密切相关,表明其在表征弹性主导输沙行为方面的有效性;(2)压裂实验确定了不同聚合物浓度的滑溜水体系不同的沉降速率阈值;(3)在这些阈值下,携带相同支撑剂体积的流体表现出相同的弹性能量,这表明存在稳定支撑剂悬浮所需的临界弹性能量;(4)建立了三种含砂浓度的弹性能阈值,可以快速预测不同黏度滑溜水体系的携砂能力;(5)通过在该窗口内外进行的现场试验,验证了根据预测操作窗口导出的现场施工策略,并观察到预测和实际支撑剂输送性能之间的密切一致。该研究为优化滑溜水压裂作业提供了定量和实用的框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Natural Gas Industry B
Natural Gas Industry B Earth and Planetary Sciences-Geology
CiteScore
5.80
自引率
6.10%
发文量
46
审稿时长
79 days
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