Numerical simulation of proppant transport from a horizontal well into a perforation using computational fluid dynamics

被引:2
|
作者
Guo, Tiankui [1 ]
Yang, Xing [1 ]
Liu, Hai [2 ]
Chen, Ming [1 ]
Hu, Zunpeng [1 ]
Niu, Jilei [1 ]
Shi, Yiman [1 ]
机构
[1] China Univ Petr East China, Oil & Gas Extract Inst, Qingdao, Peoples R China
[2] 11th Oil Prod Plant Changqing Oilfield, Qingyang, Peoples R China
关键词
Proppant; Proppant transport; Flow rate; Proppant intake; Proppant size; MODEL; FLOW; DEM;
D O I
10.1016/j.ngib.2023.07.003
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
With the increasing global demand for oil and gas, the development of unconventional resources such as shale gas is becoming ever more important. The key to developing unconventional oil and gas resources lies in horizontal wells with multistage fracturing technology. In the process of horizontal well segmentation fracturing, the distribution of the proppant among multiple clusters has a significant influence on the fracturing effect. However, the influence of various factors on the entry of proppant into the perforation and then into the fracture along the wellbore is unclear. In this paper, based on the flow characteristics of proppants in fracturing fluids, we investigate the wellbore-perforation proppant transport using a Eulerian multiphase flow model. The effect of different factors on proppant entry into the perforation in horizontal wells is studied. We first verify that the computational fluid dynamics model satisfies the accuracy requirements for studying the sandcarrying efficiency of proppants in a perforation cluster. Second, the effects of the proppant size, proppant density, fracturing fluid viscosity, perforation diameter, and fracturing fluid flow rate on the proppant transport efficiency are investigated. Finally, a mathematical model of the sand-carrying efficiency is established by multivariate nonlinear fitting. The results show that the proppant size has a more significant effect on proppant settling at low wellbore flow rates. Increasing the diameter of the proppant particles can accelerate proppant settling. Higher wellbore flow rates tend to reduce the sand-carrying efficiency, although using a low-density proppant can mitigate the effect of the wellbore flow rate. At low wellbore flow rates, increasing the perforation size makes it easier for the proppant to enter bottom perforations. Increasing the fluid viscosity helps to distribute the proppant evenly between perforations in different directions, but this effect diminishes as the flow rate increases. Finally, a formula for the wellbore sand-carrying efficiency is obtained and validated, providing a basis for optimizing the distribution of the proppant in the perforation. The results from this paper enhance our understanding of the sand and fluid feeding patterns of each perforation cluster and provide direction for improving the construction process and enhancing the fracture inflow capacity. (c) 2023 Sichuan Petroleum Administration. Publishing services by Elsevier B.V. on behalf of KeAi Communication Co. Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
引用
收藏
页码:341 / 351
页数:11
相关论文
共 50 条
  • [1] Experimental and Simulation Investigations of Proppant Transport and Distribution Between Perforation Clusters in a Horizontal Well
    Qu, Hai
    Zeng, Zhijun
    Liu, Ying
    Zhou, Mengmeng
    Liu, Xu
    Lu, Zhitian
    Wang, Shi
    Liu, Xiaodong
    Chen, Xiangjun
    [J]. SPE Journal, 2024, 29 (10): : 5286 - 5304
  • [2] Simulation study on proppant transport in a horizontal wellbore considering perforation erosion
    Hu, Xiaodong
    Li, Xintong
    Zhou, Fujian
    Bai, Yachao
    Chen, Chao
    Zhang, Pengtian
    [J]. GEOENERGY SCIENCE AND ENGINEERING, 2023, 231
  • [3] Numerical Simulation of Proppant Transport in Transverse Fractures of Horizontal Wells
    Chen, Zhengrong
    Xie, Xin
    Wu, Guangai
    Hou, Yanan
    Guo, Bumin
    Xu, Yantao
    [J]. PROCESSES, 2024, 12 (05)
  • [4] Numerical simulation of proppant migration and sedimentation behavior in complex fractures based on computational fluid dynamics
    Zhao, Kangjia
    Wang, Jie
    Xu, Hualei
    Zhang, Liangjun
    Jiang, Houshun
    [J]. PHYSICS OF FLUIDS, 2023, 35 (09)
  • [5] NUMERICAL SIMULATION OF HORIZONTAL MIGRATION OF PROPPANT
    ZHAO Zheng-chao
    [J]. Journal of Hydrodynamics, 2008, (01) : 74 - 80
  • [6] NUMERICAL SIMULATION OF HORIZONTAL MIGRATION OF PROPPANT
    Zhao Zheng-chao
    Cui Bin
    Yue Yu-quan
    Wang Li-yang
    Wu Ying-xiang
    [J]. JOURNAL OF HYDRODYNAMICS, 2008, 20 (01) : 74 - 80
  • [7] Numerical Simulation of Horizontal Migration of Proppant
    Zheng-chao Zhao
    Bin Cui
    Yu-quan Yue
    Li-yang Wang
    Ying-xiang Wu
    [J]. Journal of Hydrodynamics, 2008, 20 : 74 - 80
  • [8] NUMERICAL SIMULATION OF EROSION USING COMPUTATIONAL FLUID DYNAMICS
    Grewal, H. S.
    Singh, H.
    Agrawal, Anupam
    [J]. CFD MODELING AND SIMULATION IN MATERIALS PROCESSING, 2012, : 89 - 96
  • [9] Application of foam as drilling fluid for cuttings transport in horizontal and inclined wells: A numerical study using computational fluid dynamics
    Vaziri, Ehsan
    Simjoo, Mohammad
    Chahardowli, Mohammad
    [J]. JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2020, 194
  • [10] Numerical simulation of landfill aeration using computational fluid dynamics
    Fytanidis, Dimitrios K.
    Voudrias, Evangelos A.
    [J]. WASTE MANAGEMENT, 2014, 34 (04) : 804 - 816