
FOLLOWUS
Zhejiang Pharmaceutical University, Ningbo 315599, China
Zhejiang Ningbo City Fenghua District Power Supply Bureau, Ningbo 315500, China
China University of Petroleum-Beijing at Karamay, Karamay 834400, China
Corresponding author. Zhejiang Pharmaceutical University, Zhejiang Ningbo, 315599, China. E-mail address: yue3658@foxmail.com(G. Yue).
收稿:2025-04-01,
修回:2025-05-29,
录用:2025-06-11,
网络首发:2025-09-16,
纸质出版:2026-01
Scan QR Code
Yue Gang, Liu Yu, Qin Yonghua, 等. Experimental investigation of biosurfactants on carbon dioxide hydrate formation[J]. 中国化学工程学报(英文), 2026,89(1):230-239.
Yue Gang, Liu Yu, Qin Yonghua, et al. Experimental investigation of biosurfactants on carbon dioxide hydrate formation[J]. Chinese Journal of Chemical Engineering, 2026, 89(1): 230-239.
Yue Gang, Liu Yu, Qin Yonghua, 等. Experimental investigation of biosurfactants on carbon dioxide hydrate formation[J]. 中国化学工程学报(英文), 2026,89(1):230-239. DOI:
Yue Gang, Liu Yu, Qin Yonghua, et al. Experimental investigation of biosurfactants on carbon dioxide hydrate formation[J]. Chinese Journal of Chemical Engineering, 2026, 89(1): 230-239. DOI:
With the development of hydrate technology
more and more applications have been appeared in many areas. However
hydrate additive is always one research hotspot
it has attracted more and more attention. The influence of two biosurfactants on CO
2
hydrate formation process were investigated. Through the investigation of experiment research
rhamnolipid and sophorolipid had the promotion effect on CO
2
hydrate formation kinetics. Hydrate gas storage reached the maximum value 32.01 (volume ratio) and conversion ratio of water to hydrate was 19.42% when sophorolipid concentration was 0.05% (mass). Hydrate gas storage capacity reached the maximum value 31.22 (volume ratio) and conversion ratio of water to hydrate was 18.94% when rhamnolipid concentration was 0.05% (mass). Through the comparison of gas storage capacity and hydrate formation rate
sophorolipid had stronger promotion effect on CO
2
hydrate formation kinetics than rhamnolipid. It increased the depth of gas hydration reaction. CO
2
hydrate formation gas was carried out under the condition of constant temperature and volume. Hydration number was considered in the hydrate calculation process. Combined with hydrate formation kinetic theory of Chen—Guo model
the hydrated gas volume was compared with remaining volume of reactor. This model could calculate the change of CO
2
hydrate gas storage capacity over time. The calculated values of gas storage was in good agreement with experimental values. So this study has the better guiding function for relevant hydrate technology application.
Y. Kryzhanivskyy, V. Grudz, V. Zapukhliak, L. Poberezhny, Y. Melnychenko, R. Stasiuk, Prospects of utilizing unloaded parts of natural gas transmission pipelines in technologies of carbon dioxide capture and storage, Procedia Struct. Integr. 36(2022)370—377.
F. Song, A. Sun, Carbon neutrality and renewable energy development in China, China Econ. J. 16 (2)(2023)121—138.
V. Eke, T. Sahu, K.K. Ghuman, M. Freire-Gormaly, P.G. O'Brien, A comprehensive review of life cycle assessments of direct air capture and carbon dioxide storage, Sustain. Prod. Consum. 55 (2025)217—241.
M. Ravichandran, T.T.A. Kumar, R. Dineshkumar, Carbon dioxide capture, sequestration, and utilization models for carbon management and transformation, Environ. Sci. Pollut. Res. 31 (44) (2024) 55895—55916.
D. Segura, A. Cerepi, C. Loisy, J. Gue'lard, S. Noirez, C. Patrigeon, B. Garcia, Physicochemical behavior and impact of CO 2 and CH 4 plumes during gas-rich water leakage in a shallow carbonate freshwater aquifer, Appl. Geochem. 172 (2024) 106122.
E.E. Kasala, J.J. Wang, W. Hussain, A. Majid, E.E. Nyakilla, Enhancing CO 2 hyd rate formation and long-term stability in subseafloor saline sediments through integrated thermal and pressure management for effective CO 2 sequestration, Appl. Energy 377 (2025) 124680.
S. Kim, S.H. Lee, Y.T. Kang, Characteristics of CO 2 hydrate formation/dissociation in H 2 O + THF aqueous solution and estimation of CO 2 emission reduction by district cooling application, Energy 120 (2017) 362—373.
Y.M. Kuang, W.Q. Li, Z.T. Lin, Y.P. Zheng, V.S.J. Craig, Experimental study on memory effect of gas hydrates: interaction between micronanobubbles and solute molecules, J. Phys. Chem. C 128(38)(2024)16237—16249.
Y. He, F. Wang, Hydrate-based CO 2 capture: kinetic improvement via graphene-carried—SO 3 —and Ag nanoparticles, J. Mater. Chem. A 6 (45) (2018) 22619—22625.
S. Kar, H. Kakati, A. Mandal, S. Laik, Experimental and modeling study of kinetics for methane hydrate formation in a crude oil-in-water emulsion, Pet. Sci. 13 (3)(2016)489—495.
V. Kumar Saw, G. Udayabhanu, A. Mandal, S. Laik, Methane hydrate formation and dissociation in the presence of silica sand and bentonite clay, Oil Gas Sci. Technol. — Rev. IFP Energies Nouvelles 70 (6) (2015) 1087—1099.
R.T. Yan, H.F. Yu, D.H. Yang, H. Tang, Q. Zhang, Shear strength and pore pressure characteristics of methane hydrate-bearing soil under undrained condition, Int. J. Hydrogen Energy 48(33)(2023)12240—12256.
V. Feyzi, V. Mohebbi, Experimental and modeling study of the kinetics of methane hydrate formation and dissociation, Chin. J. Chem. Eng. 29 (2021) 365—374.
L. Kamiya, R. Kasai, S. Takeya, R. Ohmura, Phase equilibria and crystallographic structure of clathrate hydrate formed with carbon dioxide and cyclohexanone, Fluid Phase Equilib. 585 (2024) 114175.
Y. Dai, X.X. Zhong, X. Jiang, S.L. Wang, Experiment of new additives effect on gas hydrate formation, Energy Power Eng. 6(6)(2014)133—141.
Q. Nasir, H. Suleman, Y.A. Elsheikh, A review on the role and impact of various additives as promoters/inhibitors for gas hydrate formation, J. Nat. Gas Sci. Eng. 76(2020)103211.
Z.X. Deng, S.S. Fan, Y.H. Wang, X.M. Lang, G. Li, Enhance hydrates formation with stainless steel fiber for high capacity methane storage, Chin. J. Chem. Eng. 50(2022)435—443.
S.S. Fan, Q. Li, J.H. Nie, X.M. Lang, Y.G. Wen, Y.H. Wang, Semiclathrate hydrate phase equilibrium for CO 2 /CH 4 gas mixtures in the presence of tetrabutylammonium halide (bromide, chloride, or fluoride), J. Chem. Eng. Data 58 (11) (2013) 3137—3141.
A.H. Mohammadi, A. Eslamimanesh, D. Richon, Semi-clathrate hydrate phase equilibrium measurements for theCO 2 +H 2 /CH 4 + tetra - n -butylammonium bromide aqueous solution system, Chem. Eng. Sci. 94 (2013) 284—290.
K. Inkong, K. Jeemuang, S. Kulprathipanja, P. Rangsunvigit, Investigation of hydrate formation and stability of mixed methane-THF hydrates: effects of tetrahydrofuran concentration, J. Oleo Sci. 73 (9)(2024)1159—1168.
A. Kumar, T. Sakpal, D. Rajnish Kumar, Influence of low-dosage hydrate inhibitors on methane clathrate hydrate formation and dissociation kinetics, Energy Technol. 3 (7) (2015) 717—725.
S. Maghsoodloo Babakhani, A. Alamdari, Effect of maize starch on methane hydrate formation/dissociation rates and stability, J. Nat. Gas Sci. Eng. 26 (2015)1—5.
Y.M. Song, F. Wang, G. Guo, S.J. Luo, R.B. Guo, Energy-efficient storage of methane in the formed hydrates with metal nanoparticles-grafted carbon nanotubes as promoter, Appl. Energy 224 (2018)175—183.
J. Yan, Y.Y. Lu, D.L. Zhong, Z.L. Zou, J.B. Li, Enhanced methane recovery from low-concentration coalbed methane by gas hydrate formation in graphite nanofluids, Energy 180(2019)728—736.
A. Arora, S.S. Cameotra, R. Kumar, C. Balomajumder, A.K. Singh, B. Santhakumari, P. Kumar, S. Laik, Biosurfactant as a promoter of methane hydrate formation: thermodynamic and kinetic studies, Sci. Rep. 6 (2016) 20893.
A. Kumar, G. Bhattacharjee, B.D. Kulkarni, R. Kumar, Role of surfactants in promoting gas hydrate formation, Ind. Eng. Chem. Res. 54 (49) (2015) 12217—12232.
X.M. Zhang, M.J. Zhang, P.Y. Li, J.P. Li, Y.M. Wang, Q.B. Wu, Cooperative effect of surfactant and porous media on CO 2 hydrate formation and capacity of gas storage, Fuel 329 (2022) 125494.
P. Naeiji, A. Arjomandi, F. Varaminian, Amino acids as kinetic inhibitors for tetrahydrofuran hydrate formation: experimental study and kinetic modeling, J. Nat. Gas Sci. Eng. 21(2014)64—70.
G. Bhattacharjee, N. Choudhary, A. Kumar, S. Chakrabarty, R. Kumar, Effect of the amino acid l-histidine on methane hydrate growth kinetics, J. Nat. Gas Sci. Eng. 35 (2016)1453—1462.
C.B. Bavoh, B. Lal, H. Osei, K.M. Sabil, H. Mukhtar, A review on the role of amino acids in gas hydrate inhibition, CO 2 capture and sequestration, and natural gas storage, J. Nat. Gas Sci. Eng. 64 (2019) 52—71.
X.M. Zhang, J.X. Wang, H.J. Yang, J.P. Li, Y.H. Li, Q.B. Wu, Formation and storage characteristics of CO 2 hydrate in porous media: effect of liquefaction amount on the formation rate, accumulation amount, Appl. Therm. Eng. 214 (2022) 118747.
X.M. Zhang, P.Y. Li, H.B. Song, H. Sun, W.Q. Cui, J.P. Li, Q.B. Wu, P. Zhang, Experimental study on the formation and storage characteristics of CO 2 hydrate under condition of grain gradating: influence of different particle sizes and ratios, Geoenergy Sci. Eng. 249 (2025) 213794.
C.S. Madankar, A. Meshram, Review on classification, physicochemical properties and applications of microbial surfactants, Tenside Surfactants Deterg. 59(1) (2022)1—16.
A. Karthick, B. Roy, P. Chattopadhyay, A review on the application of chemical surfactant and surfactant foam for remediation of petroleum oil contaminated soil, J. Environ. Manag. 243 (2019) 187—205.
G. Sobero'n-Cha'vez, R. Hausmann, E. De'ziel, Editorial: biosurfactants: new insights in their biosynthesis, production and applications, Bioeng Biotechnol 9(2021)769899.
M. Irfan-Maqsood, M. Seddiq-Shams, Rhamnolipids: well-characterized glycolipids with potential broad applicability as biosurfactants, Ind. Biotechnol. 10 (4) (2014) 285—291.
Z.`Samsu, F.N. Jeffry, W.N.A.N. Wan, A.R. Azizan, Preliminary characterization and antimicrobial activity of crude biosurfactant extract from potential bacterial isolates, Mater. Today Proc. 31(2020)A72—A78.
J. Lee, J.W. Kenney III, Clathrate hydrates, in: Solidification, IntechOpen, 2018.
S. Ovalle, C. Martinez, J.G. Beltran, Phase equilibria of hydrates from ternary mixtures of methane+ethane+propane and methane+propane+carbon dioxide, Can. J. Chem. Eng. 101(2)(2023)651—656.
S. Joo, S. Kwak, Y. Yoon, Effect of H 2 enrichment ratio and N2/CO 2 dilution on swirl-stabilized partially premixedH2/CH 4 /C 3 H 8 SNGcombustion, Int. J. Hydrogen Energy 45 (55) (2020) 31255—31267.
R.H. Temperton, M.I. Smith, J.S. Sharp, Mechanical vibrations of pendant liquid droplets, Eur. Phys. J. E 38(7) (2015)79.
H. Sojoudi, M.R. Walsh, K.K. Gleason, G.H. McKinley, Investigation into the formation and adhesion of cyclopentane hydrates on mechanically robust vapordeposited polymeric coatings, Langmuir 31 (22) (2015) 6186—6196.
L.S. Wang, J. Gmehling, Improvement of SRK equation of state for vapor-liquid equilibria of petroleum fluids, AIChE J. 45 (5) (1999) 1125—1134.
H.N. Zhao, Z.B. Fang, H.B. Jing, J.Q. Liu, Modeling vapor-liquid phase equilibria of hydrogen sulfide and water system using a cubic EOS-GEX model, Fluid Phase Equilib. 484(2019)60—73.
0
浏览量
3
Downloads
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010102001993号