Development and experimental validation of a computational fluid dynamics-discrete element method sand production model

被引:47
|
作者
Song, Yuqi [1 ]
Ranjith, P. G. [1 ]
Wu, Bailin [2 ]
机构
[1] Monash Univ, Dept Civil Engn, Deep Earth Energy Lab, Melbourne, Vic 3800, Australia
[2] CSIRO Energy, Oil Gas & Fuels Res Program, Melbourne, Vic 3168, Australia
关键词
Computational fluid dynamics; Discrete element method; Oil and gas reservoirs; Particle flow code; Critical drawdown pressure; Sand production; NUMERICAL-SIMULATION; DEM SIMULATION; ONSET; PARTICLES; RESERVOIR; FLOWS; SOILS;
D O I
10.1016/j.jngse.2019.103052
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
Sand production is a dynamic process that occurs during the production of oil or natural gas, costing the petroleum industry billions of dollars per year to control. The main aim of this research is to develop a numerical model combining the discrete element method with computational fluid dynamics and the using particle flow code to simulate the sand production process, so as to obtain a deeper insight into its mechanisms. The numerical model was validated using sand production data from a specially designed sand production cell. The effects of various variables affecting the sand production process including fluid pressure, sand particle size distribution, and fluid type were investigated. Changing the random number will not influence the macroscopic properties of the sample but affect the microstructure. Selecting the same random number is necessary in each simulation if one wants to keep both the macro and micro properties of samples the same. Running one numerical model with different random numbers can eliminate the haphazard of test. Two main failure modes resulted in sand production: the collapse of thin inner layers of stable sand arches and the thorough collapse of the sand body. When the drawdown pressure was lower than the critical drawdown pressure, the collapse of thin inner layers of stable sand arches prevailed as a failure mode. An unfavourable increase in sand production by thorough collapse of the sand body took place when the drawdown pressure was greater than the critical drawdown pressure. Therefore, determination of the critical drawdown pressure is very important to prevent catastrophic sand production. The closer the drawdown pressure and critical drawdown pressure are, the more difficult it is to form a stable sand arch. The formation of a sand arch was random and haphazard. The proposed numerical model is a promising method for studying the sand production mechanisms.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Particle dynamics in vertical vibration-driven immersed granular systems: A study with resolved computational fluid dynamics-discrete element method
    Wang, Chi
    Wei, Lubin
    An, Yi
    PHYSICS OF FLUIDS, 2023, 35 (12)
  • [32] Collision Energy Analysis within the Vertical Shaft Impact Crusher Based on the Computational Fluid Dynamics-Discrete Element Method
    Wu, Canhui
    Zhao, Limei
    Cao, Zhen
    ACS OMEGA, 2024, 9 (07): : 7967 - 7975
  • [33] Determination of the physical and interaction properties of sorghum grains: Application to computational fluid dynamics-discrete element method simulations of the fluid dynamics of a conical spouted bed
    Batista, J. N. M.
    Santos, D. A.
    Bettega, R.
    PARTICUOLOGY, 2021, 54 : 91 - 101
  • [34] Computational Fluid Dynamics-Discrete Element Method (CFD-DEM) Study of Mass-Transfer Mechanisms in Riser Flow
    Varas, Alvaro E. Carlos
    Peters, E. A. J. F.
    Kuipers, J. A. M.
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2017, 56 (19) : 5558 - 5572
  • [35] Computational Fluid Dynamics-Discrete Phase Method Simulations in Process Engineering: A Review of Recent Progress
    Yang, Xiaolian
    Xi, Te
    Qin, Yebo
    Zhang, Hui
    Wang, Yongwei
    APPLIED SCIENCES-BASEL, 2024, 14 (09):
  • [36] Possibilities and Limits of Computational Fluid Dynamics-Discrete Element Method Simulations in Process Engineering: A Review of Recent Advancements and Future Trends
    Kieckhefen, Paul
    Pietsch, Swantje
    Dosta, Maksym
    Heinrich, Stefan
    ANNUAL REVIEW OF CHEMICAL AND BIOMOLECULAR ENGINEERING, VOL 11, 2020, 11 : 397 - 422
  • [37] Modeling and validation of coarse-grained computational fluid dynamics-discrete element method for dense gas-solid flow simulation in a bubbling fluidized bed
    Zhao, Zhenjiang
    Zhou, Ling
    Bai, Ling
    El-Emam, Mahmoud A.
    Agarwal, Ramesh
    PHYSICS OF FLUIDS, 2023, 35 (04)
  • [38] Parameter Optimization of Spiral Step Cleaning Device for Ratooning Rice Based on Computational Fluid Dynamics-Discrete Element Method Coupling
    Liu, Weijian
    Zeng, Shan
    Wu, Zhandong
    AGRICULTURE-BASEL, 2024, 14 (12):
  • [39] The influence of the void fraction on the particle migration: A coupled computational fluid dynamics-discrete element method study about drag force correlations
    Kanitz, Manuela
    Grabe, Juergen
    INTERNATIONAL JOURNAL FOR NUMERICAL AND ANALYTICAL METHODS IN GEOMECHANICS, 2021, 45 (01) : 45 - 63
  • [40] Quadrature-Centered Averaging Scheme for Accurate and Continuous Void Fraction Calculation in Computational Fluid Dynamics-Discrete Element Method Simulations
    El Geitani, Toni
    Blais, Bruno
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2023, 62 (12) : 5394 - 5407