The Effect of Fracture Wall Surface Roughness on Proppant Transport

断裂(地质) 表面粗糙度 表面光洁度 地质学 材料科学 曲面(拓扑) 岩土工程 石油工程 复合材料 几何学 数学
作者
Ashtiwi Bahri,Jennifer Miskimins,A. D. Hill,Ding Zhu
出处
期刊:Spe Journal [Society of Petroleum Engineers]
卷期号:29 (11): 5976-5990 被引量:4
标识
DOI:10.2118/223590-pa
摘要

Summary Proppant transport into created fractures is crucial in maximizing hydrocarbon recovery in unconventional reservoirs. Injected proppants keep the created fractures open, enhancing final fracture conductivity and propped and effective fracture length. The roughness and width of the created fracture are also important in proppant transport and distribution within induced fractures, affecting fracture conductivity. This study investigates the effect of fracture width on proppant transport into a complex slot system with 3D-printed rough wall surfaces. This study builds upon previous experimental work (Tatman et al. 2022), exploring different fracture roughness profiles and varying fracture widths. The effects of proppant densities, sizes, and concentrations on proppant transport within rough fracture surfaces were also investigated. A laboratory-scaled slot apparatus was used to examine the effects of various parameters. The slot consisted of a 4-ft-long primary fracture intersecting with a secondary fracture at a 90o angle. The wall surface roughness was printed using 3D printing technology and average fracture widths were set at 0.1 in. and 0.2 in. Fresh water (1 cp) with proppant concentrations of 1 ppg and 2 ppg and proppant sizes of 100-mesh sand [2.65 specific gravity (SG)], 40/70-mesh sand (2.65 SG), and 35/45-mesh ultralightweight (ULW) proppant (1.07 SG) were tested. The results show that fracture wall roughness impacts proppant transport behavior. The rough wall surface formed irregular proppant dune shapes and trapped some of the injected proppant at different locations within the slot, which is distinct from smooth wall surfaces. Decreasing the fracture width of a rough wall surface had a significant impact on proppant transport. The majority of the injected proppant was transported away from the injection point due to the increased slurry velocity. This led to improved proppant transport due to redirected flow direction and associated decreased proppant settling velocities, and a decrease in the proppant-dune-building rate near the inlet point, which carried more proppant deep into the secondary slot. Increasing the proppant concentration had a positive impact on proppant transport within both tested fracture widths by increasing the proppant-dune-buildup rate along the fracture slot and increasing the proppant-covered area inside fractures. The slurry injection rate had a great impact on low-density proppant transport. Decreasing the injection rate for lighter proppant (1.07 SG) helped to build a proppant dune near the injection point, increasing the proppant-covered area. Conversely, the higher injection rate carried the majority of the lighter proppant farther and out of the slots. Larger proppant sizes, (i.e., 40/70-mesh sand) resulted in a large proppant-covered area for both tested fracture widths, due to more particle-to-wall interaction, particle-to-particle interaction, and high density, which increased the settling velocity. However, injecting lighter and larger proppant sizes, such as 35/45-mesh ULW proppant, resulted in less settling and more particles suspended during injection due to lower density.

科研通智能强力驱动
Strongly Powered by AbleSci AI

祝大家在新的一年里科研腾飞
科研通是完全免费的文献互助平台,具备全网最快的应助速度,最高的求助完成率。 对每一个文献求助,科研通都将尽心尽力,给求助人一个满意的交代。
实时播报
顺心寄文完成签到 ,获得积分10
1秒前
危机的桐完成签到 ,获得积分10
2秒前
小小宝完成签到 ,获得积分10
2秒前
zoes完成签到 ,获得积分10
2秒前
cc完成签到,获得积分20
3秒前
绿颜色完成签到 ,获得积分10
3秒前
隐形曼青应助小鱼采纳,获得10
3秒前
我paper年年发完成签到,获得积分10
3秒前
Spring完成签到,获得积分10
4秒前
4秒前
小武同学完成签到 ,获得积分10
4秒前
7秒前
灵巧胜完成签到 ,获得积分10
8秒前
8秒前
8秒前
8秒前
8秒前
9秒前
9秒前
今天的云也很好看完成签到 ,获得积分10
9秒前
111应助科研通管家采纳,获得10
10秒前
10秒前
田様应助科研通管家采纳,获得10
10秒前
10秒前
Orange应助科研通管家采纳,获得10
10秒前
邹长飞完成签到,获得积分20
10秒前
111应助科研通管家采纳,获得10
10秒前
科研通AI2S应助科研通管家采纳,获得10
10秒前
10秒前
飞快的蛋应助科研通管家采纳,获得30
10秒前
10秒前
10秒前
shiyue应助科研通管家采纳,获得10
10秒前
pluto应助科研通管家采纳,获得10
10秒前
111应助科研通管家采纳,获得10
10秒前
哈基米德应助科研通管家采纳,获得20
10秒前
10秒前
科研通AI2S应助科研通管家采纳,获得10
10秒前
qi0625完成签到,获得积分10
10秒前
南兮完成签到 ,获得积分10
11秒前
高分求助中
Operational Bulk Evaporation Duct Model for MORIAH Version 1.2 1200
Signals, Systems, and Signal Processing 880
Yangtze Reminiscences. Some Notes And Recollections Of Service With The China Navigation Company Ltd., 1925-1939 800
Common Foundations of American and East Asian Modernisation: From Alexander Hamilton to Junichero Koizumi 600
Discrete-Time Signals and Systems 510
Industrial Organic Chemistry, 5th Edition 400
Multiple Regression and Beyond An Introduction to Multiple Regression and Structural Equation Modeling 4th Edition 400
热门求助领域 (近24小时)
化学 材料科学 生物 医学 工程类 计算机科学 有机化学 物理 生物化学 纳米技术 复合材料 内科学 化学工程 人工智能 催化作用 遗传学 数学 基因 量子力学 物理化学
热门帖子
关注 科研通微信公众号,转发送积分 5846561
求助须知:如何正确求助?哪些是违规求助? 6216527
关于积分的说明 15618198
捐赠科研通 4963112
什么是DOI,文献DOI怎么找? 2675894
邀请新用户注册赠送积分活动 1620615
关于科研通互助平台的介绍 1576205