Application of Response Surface Methodology and Box-Behnken Design for the Optimization of the Stability of Fibrous Dispersion Used in Drilling and Completion Operations

被引:30
|
作者
Alhajabdalla, Mohammed [1 ]
Mahmoud, Husameldin [1 ]
Nasser, Mustafa S. [1 ]
Hussein, Ibnelwaleed A. [1 ]
Ahmed, Ramadan [2 ]
Karami, Hamidreza [2 ]
机构
[1] Qatar Univ, Coll Engn, Gas Proc Ctr, Doha 2713, Qatar
[2] Univ Oklahoma, Dept Petr & Geol Engn, Norman, OK 73019 USA
来源
ACS OMEGA | 2021年 / 6卷 / 04期
关键词
D O I
10.1021/acsomega.0c04272
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Fibers are extensively used as a fluid additive in the oil and gas industry to improve hole-cleaning performance, control fluid filtration loss, and enhance hydraulic fracturing effectiveness. Generally, a small amount of fiber is dispersed in the base fluid to achieve the desired results without increasing the viscosity of the base fluid. Nevertheless, sustaining a uniform fiber dispersion can be challenging under wellbore conditions, which is essential for fibers' functionality. Consequently, a better understanding of fiber suspension or stability in base fluids is necessary for their efficient utilization in drilling and completion operations. In this study, response surface methodology (RSM) and box-behnken design (BBD) are used to investigate the stability of fiber in polymeric base suspensions, including carboxy methyl cellulose (CMC), polyacrylamide (PAM), and xanthan gum (XG). The BBD of three factors was selected to observe the influence of polymer concentration, fiber concentration, and temperature on fibrous suspension stability, with three levels of design factors (low, mid, and high) and two fiber aspect ratios (3 and 12 mm fibers). The base fluid polymer concentration ranged from 1 to 8 vol %, fiber concentration ranged from 0.01 to 0.08 wt %, and the temperature was varied from 25 to 80 degrees C. The stability measurements were analyzed using Minitab, subsequently, evaluating the factors' impact and interactions and determining the optimum conditions for the stability of the fibrous suspensions. The results predicted by the developed model were in good agreement with the experimental results R 2 > 0.91-0.99. The sensitivity analysis showed that base fluid polymer concentration is the most significant factor affecting fibrous suspension stability. At high polymer concentrations, fiber concentration and temperature effects are minimal, while the temperature effect on the stability was observed at low concentrations (e.g., low suspension viscosities). The fiber aspect ratio indirectly affects system stability. Long fibers have a better tendency to entangle and form a structured network, which in turn hinders the buoyancy that induces individual fiber migration. On the contrary, short fibers do not form a network, allowing them to easily migrate to the surface and agglomerate at the top layer (unstable region). Optimization results revealed that suspensions with viscosities above 50 mPa.s are sufficient to maintain the stability of the suspensions at ambient (25 degrees C) and elevated (80 degrees C) temperatures.
引用
收藏
页码:2513 / 2525
页数:13
相关论文
共 50 条
  • [21] Application of Response Surface Methodology Combined Box-Behnken Design with Desirability Function for Optimizing Wastewater Pretreatment Process
    Hakami, Mohammed Wali
    ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2024, : 3885 - 3895
  • [22] Multiple Objective Optimization of Industrial Naphtha Cracking Process by Box-Behnken Response Surface Methodology
    Parmar, K. Kanubhai
    Padmavathi, Garimala
    Dash, Sukanta
    IRANIAN JOURNAL OF CHEMISTRY & CHEMICAL ENGINEERING-INTERNATIONAL ENGLISH EDITION, 2023, 42 (08): : 2687 - 2707
  • [23] Design and optimization of a luminescent Samarium complex of isoprenaline: A chemometric approach based on Factorial design and Box-Behnken response surface methodology
    Sakr, Marva
    Hanafi, Rasha
    Fouad, Marwa
    Al-Easa, Hala
    El-Moghazy, Samir
    SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 2019, 208 : 114 - 123
  • [24] Pectin extraction from citron peel: optimization by Box-Behnken response surface design
    Pasandide, Bahare
    Khodaiyan, Faramarz
    Mousavi, Zeinab
    Hosseini, Seyed Saeid
    FOOD SCIENCE AND BIOTECHNOLOGY, 2018, 27 (04) : 997 - 1005
  • [25] OPTIMIZATION OF CASTING PROCESS BASED ON BOX BEHNKEN DESIGN AND RESPONSE SURFACE METHODOLOGY
    Raghupathy, Rathish
    Amirthagadeswaran, K. S.
    INTERNATIONAL JOURNAL FOR QUALITY RESEARCH, 2014, 8 (04) : 569 - 582
  • [26] Optimization of fluoride removal by activated clays using response surface methodology: Box-Behnken design, kinetic and isotherm studies
    Yahya, K.
    Msadok, I.
    Moussa, K. B.
    Ba, M.
    Hajri, A. K.
    Mlayah, A.
    Srasra, E.
    Hamdi, N.
    INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2024, 21 (12) : 7923 - 7940
  • [27] Loteprednol Etabonate Nanoparticles: Optimization via Box-Behnken Design Response Surface Methodology and Physico-chemical Characterization
    Sah, Abhishek K.
    Suresh, Preeti K.
    CURRENT DRUG DELIVERY, 2017, 14 (05) : 676 - 689
  • [28] Parametric optimization studies on drilling of sandwich composites using the Box-Behnken design
    Vinayagamoorthy, R.
    MATERIALS AND MANUFACTURING PROCESSES, 2017, 32 (06) : 645 - 653
  • [29] Optimization of the Preparation of Fat Substitutes Using Plackett-Burman Design Combined with Box-Behnken Response Surface Methodology
    Plackett-Burman试验设计联用Box-Behnken响应面法优化脂肪替代物的制备
    1600, Chinese Chamber of Commerce (41): : 255 - 264
  • [30] Optimization of an A2/O process for tetracycline removal via response surface methodology coupled with a Box-Behnken design
    Qi, Fang-Fang
    Huang, Man-Hong
    Zheng, Yu
    Xu, Qi
    JOURNAL OF ENVIRONMENTAL SCIENCE AND HEALTH PART A-TOXIC/HAZARDOUS SUBSTANCES & ENVIRONMENTAL ENGINEERING, 2015, 50 (07): : 735 - 743