Evaluation of rheological properties of guar gum-based fracturing fluids enhanced with hydroxyl group bearing thermodynamic hydrate inhibitors

被引:0
作者
Wilson, Isaac [1 ]
Krishna, Shanker [1 ]
机构
[1] Pandit Deendayal Energy Univ, Sch Energy Technol, Dept Petr Engn, Gandhinagar 382426, Gujarat, India
关键词
Gas hydrates; Inhibitor integrated fracturing; Low temperature fracking; Modified polymer fluids; Multifunctional polymeric systems; Polymer blending; Rheology; METHANE-HYDRATE; GAS HYDRATE; NATURAL-GAS; SUPERSONIC SEPARATORS; POLYETHYLENE-GLYCOL; RECOVERY; ETHANOL; EQUILIBRIA; PREDICTION; MORPHOLOGY;
D O I
10.1016/j.ijbiomac.2024.139261
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Naturally occurring gas clathrates are a significant methane resource-the primary component of natural gas, regarded as the cleanest hydrocarbon and a key feedstock for producing gray and blue hydrogen. Despite the global abundance of gas hydrate reserves, extraction via depressurization has yet to achieve commercially viable production rates. The primary limitation lies in the low permeability of hydrate-bearing sediments, where solid clathrates obstruct porous pathways, hindering dissociation and slowing gas recovery. Hydraulic fracturing has emerged as a promising technique to enhance conductivity, with initial studies indicating substantial increases in production rates when stimulation is applied. This study investigates the integration of thermodynamic hydrate inhibitors (THIs), such as methanol and polyethylene glycol 200 (PEG-200), into conventional polymer-based linear and crosslinked fracturing gels to improve performance. By targeting both rock and the embedded gas hydrates, these inhibitor integrated fracturing gels aim to facilitate faster fracture propagation and accelerate hydrate dissociation. The rheological performance of THI-integrated gels at varying concentrations is analysed, crucial for fracture formation, propagation, and proppant transport efficiency. Additionally, microscopic observations of additive interactions followed by fluid disintegration according to time are compared to evaluate residue formation and long-term integrity. Results indicate that methanol slightly increased the viscosity of linear gels at low concentrations and improved stability, reducing residue and slowing degradation, while higher concentrations required additional polymerizing agents to maintain performance. PEG-200 enhanced viscosity and stability in guar-based gels at low concentrations but caused shear-thinning at higher levels, limiting its suitability for high-viscosity operations. Crosslinked gels demonstrated superior proppant suspension and stability, generating less sediment-damaging residue compared to linear gels, with methanol further enhancing performance. Optimized integration of PEG-200 during borate crosslinking is critical, as higher concentrations risk premature gel degradation.
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页数:31
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共 117 条
  • [1] Effect of Ultralow Concentration of Methanol on Methane Hydrate Formation
    Abay, Hailu K.
    Svartaas, Thor M.
    [J]. ENERGY & FUELS, 2010, 24 (02) : 752 - 757
  • [2] Direct measurements of the cross sections for e+e-→hadrons|non-D(D)over-bar in the range from 3.65 to 3.87 GeV and the branching fraction for ψ(3770) → non-D(D)over-bar
    Ablikim, M.
    Bai, J. Z.
    Ban, Y.
    Cai, X.
    Chen, H. F.
    Chen, H. S.
    Chen, H. X.
    Chen, J. C.
    Chen, Jin
    Chen, Y. B.
    Chu, Y. P.
    Dai, Y. S.
    Diao, L. Y.
    Deng, Z. Y.
    Dong, Q. F.
    Du, S. X.
    Fang, J.
    Fang, S. S.
    Fu, C. D.
    Gao, C. S.
    Gao, Y. N.
    Gu, S. D.
    Gu, Y. T.
    Guo, Y. N.
    He, K. L.
    He, M.
    Heng, Y. K.
    Hou, J.
    Hu, H. M.
    Hu, J. H.
    Hu, T.
    Huang, G. S.
    Huang, X. T.
    Ji, X. B.
    Jiang, X. S.
    Jiang, X. Y.
    Jiao, J. B.
    Jin, D. P.
    Jin, S.
    Lai, Y. F.
    Li, G.
    Li, H. B.
    Li, J.
    Li, R. X.
    Li, S. M.
    Li, W. D.
    Li, W. G.
    Li, X. L.
    Li, X. N.
    Li, X. Q.
    [J]. PHYSICS LETTERS B, 2008, 659 (1-2) : 74 - 79
  • [3] Direct measurements of the branching fractions for D0→K-e+ve and D0→π-e+ve and determinations of the form factors fK+(0) and fπ+(0)
    Ablikim, M
    Bai, JZ
    Ban, Y
    Bian, JG
    Cai, X
    Chang, JF
    Chen, HF
    Chen, HS
    Chen, HX
    Chen, JC
    Chen, J
    Chen, J
    Chen, ML
    Chen, YB
    Chi, SP
    Chu, YP
    Cui, XZ
    Dai, HL
    Dai, YS
    Deng, ZY
    Dong, LY
    Du, SX
    Du, ZZ
    Fang, J
    Fang, SS
    Fu, CD
    Fu, HY
    Gao, CS
    Gao, YN
    Gong, MY
    Gong, WX
    Gu, SD
    Guo, YN
    Guo, YQ
    He, KL
    He, M
    He, X
    Heng, YK
    Hu, HM
    Hu, T
    Huang, L
    Huang, XP
    Ji, XB
    Jia, QY
    Jiang, CH
    Jiang, XS
    Jin, DP
    Jin, S
    Jin, Y
    Lai, YF
    [J]. PHYSICS LETTERS B, 2004, 597 (01) : 39 - 46
  • [4] Agrawal M., 2016, 78 EAGE C EXH EUR AS, P1, DOI [10.3997/2214-4609.201601634, DOI 10.3997/2214-4609.201601634]
  • [5] CO2 gas hydrate for carbon capture and storage applications - Part 2
    Aminnaji, Morteza
    Qureshi, M. Fahed
    Dashti, Hossein
    Hase, Alfred
    Mosalanejad, Abdolali
    Jahanbakhsh, Amir
    Babaei, Masoud
    Amiri, Amirpiran
    Maroto-Valer, Mercedes
    [J]. ENERGY, 2024, 300
  • [6] CO2 Gas hydrate for carbon capture and storage applications - Part 1
    Aminnaji, Morteza
    Qureshi, M. Fahed
    Dashti, Hossein
    Hase, Alfred
    Mosalanejad, Abdolali
    Jahanbakhsh, Amir
    Babaei, Masoud
    Amiri, Amirpiran
    Maroto-Valer, Mercedes
    [J]. ENERGY, 2024, 300
  • [7] A Review of Fracturing Fluid Systems Used For Hydraulic Fracturing of Oil and Gas Wells
    Barati, Reza
    Liang, Jenn-Tai
    [J]. JOURNAL OF APPLIED POLYMER SCIENCE, 2014, 131 (16)
  • [8] Bleakley W.B., 1970, Oil Gas J., V68, P65
  • [9] Bobev S, 2004, AM MINERAL, V89, P1208
  • [10] The Inik Sikumi Field Experiment, Alaska North Slope: Design, Operations, and Implications for CO2-CH4 Exchange in Gas Hydrate Reservoirs
    Boswell, Ray
    Schoderbek, David
    Collett, Timothy S.
    Ohtsuki, Satoshi
    White, Mark
    Anderson, Brian J.
    [J]. ENERGY & FUELS, 2017, 31 (01) : 140 - 153