Visual Laboratory Tests: Effect of Operational Parameters on Proppant Transport in a 3D Printed Vertical Hydraulic Fracture with Two-Sided Rough Surfaces

IF 3.2 3区 工程技术 Q1 ENGINEERING, PETROLEUM
SPE Journal Pub Date : 2023-11-01 DOI:10.2118/218007-pa
Jun Li, Xu Han, Siyuan He, Mingyi Wu, Xinqian Lu
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引用次数: 0

Abstract

Summary Hydraulic fracturing technology is an effective measure that can improve oil and gas production and achieve enormous economic benefits owing to it phenomenally increasing the oil recovery from the low intrinsic permeability of the compact rock. Good placement and distribution of the proppant in the hydraulic fractures can provide successful stimulation for a well, which is essential for applying the hydraulic fracturing process. Previous studies extensively explored proppant placement, distribution, and operational factors in simplified smooth surface fracture models. However, the operational factors such as pump rate, proppant concentration, proppant size, fluid viscosity, and inlet condition (pulse time) involved in proppant placement and distribution in realistic rough surfaces of fractures are not clearly understood. In particular, the law of proppant transport in a two-sided rough surface of fracture with changes in the aforementioned operational factors was unclear. Hence, in this study, we investigated the effect of these operational factors on proppant placement and transport in both the smooth surface fracture model and the two-sided rough surface fracture model. The results suggested that the traditional law of proppant transport drawn on the smooth surface fracture model did not apply to the two-sided rough surface model. It is suggested that selecting corresponding variables was needed to reduce the risk of proppant bridging and offer a better channel ratio.
视觉实验室测试:操作参数对具有双面粗糙表面的3D打印垂直水力裂缝中支撑剂输送的影响
水力压裂技术能显著提高致密岩石低本征渗透率油藏的采收率,是提高油气产量并取得巨大经济效益的有效措施。支撑剂在水力裂缝中的良好放置和分布可以为井提供成功的增产,这对于水力压裂工艺的应用至关重要。之前的研究广泛探讨了简化光滑面裂缝模型中支撑剂的放置、分布和操作因素。然而,诸如泵速、支撑剂浓度、支撑剂尺寸、流体粘度和入口条件(脉冲时间)等操作因素对支撑剂在实际粗糙裂缝表面的放置和分布的影响尚不清楚。特别是,随着上述操作因素的变化,支撑剂在双面粗糙裂缝表面的运移规律尚不清楚。因此,在本研究中,我们研究了在光滑面裂缝模型和双面粗糙面裂缝模型中,这些操作因素对支撑剂放置和输送的影响。结果表明,光滑面裂缝模型中传统的支撑剂输运规律不适用于双面粗糙面裂缝模型。建议选择相应的变量,以降低支撑剂桥接的风险,并提供更好的通道比。
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
SPE Journal
SPE Journal 工程技术-工程:石油
CiteScore
7.20
自引率
11.10%
发文量
229
审稿时长
4.5 months
期刊介绍: Covers theories and emerging concepts spanning all aspects of engineering for oil and gas exploration and production, including reservoir characterization, multiphase flow, drilling dynamics, well architecture, gas well deliverability, numerical simulation, enhanced oil recovery, CO2 sequestration, and benchmarking and performance indicators.
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