Experimental and computational investigation of guest encapsulation and structural transformation behaviors in C3H8 hydrate-CO2 replacement for energy recovery and CO2 sequestration

被引:1
作者
Lee, Jonghyuk [1 ]
Yun, Soyeong [1 ]
Mun, Seongju [2 ]
Mok, Junghoon [3 ]
Choi, Wonjung [4 ]
Seo, Yongwon [1 ,2 ]
机构
[1] Ulsan Natl Inst Sci & Technol, Dept Civil Urban Earth & Environm Engn, Ulsan 44919, South Korea
[2] Ulsan Natl Inst Sci & Technol, Grad Sch Carbon Neutral, Ulsan 44919, South Korea
[3] Kyonggi Univ, Dept Civil & Energy Syst Engn, Suwon 16227, South Korea
[4] Changwon Natl Univ, Dept Chem Engn, Chang Won 51140, Gyeongsangnam D, South Korea
基金
新加坡国家研究基金会;
关键词
Natural gas hydrates; Replacement; Structure II; CO; 2; sequestration; Structural transformation; GAS HYDRATE; METHANE HYDRATE; CARBON-DIOXIDE; CH4; RECOVERY; DYNAMICS; DEPRESSURIZATION; MECHANISM; KINETICS; EXCHANGE;
D O I
10.1016/j.fuel.2024.134123
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
Guest exchange in natural gas hydrates via the injection of CO2 is a promising method for simultaneously achieving energy production and CO2 sequestration. In this study, the guest encapsulation and structural transformation behaviors involved in the structure II (sII) C3H8 hydrate - CO2 replacement were closely investigated through thermodynamic, compositional, and structural analyses. Guest compositions in the hydrate phase after replacement were measured under varying CO2 injection pressures (2.0-3.5 MPa). The CO2 compositions of the replaced hydrates remained nearly constant until the critical pressure point of 3.0 MPa, after which they increased sharply. To clarify this behavior and its distinction from that of sII (CH4 + C3H8) hydrate - CO2 replacement, a structural analysis and molecular dynamics were employed. Powder X-ray diffraction analysis, coupled with the Rietveld refinement, was conducted to determine the weight fractions of each phase and the cage occupancies of guest molecules after replacement. Unlike the system involving CH4, the initial sII hydrates in the C3H8 hydrate - CO2 system transformed into structure I (sI) hydrates only beyond the critical pressure point. CO2 was captured only in the small (512) cages, while C3H8 occupied the large (51264) cages of the sII hydrates. Free energy calculations revealed that the presence of CH4 in the small (512) cages enhanced the thermodynamic stability of sII hydrates with CO2 in the large (51264) cages. These experimental and computational findings provide valuable insights into the role of CH4 and the guest exchange mechanism in sII hydrate - CO2 replacement.
引用
收藏
页数:8
相关论文
共 50 条
[31]   Liquid CO2-CH4 Hydrate Replacement Reaction above 281.15 K: Implication for CH4 Recovery and CO2 Sequestration in Marine Environments [J].
You, Chang-Yu ;
Chen, Zhao-Yang ;
Li, Xiao-Sen ;
Xu, Chun-Gang ;
Peng, Hao ;
Ji, Hong-Fei .
ENERGY & FUELS, 2024, 38 (12) :10813-10825
[32]   Combustion Characteristic and Mechanism of a Mixture Working Fluid C3H8/CO2 [J].
Weixiu Shi ;
Lisheng Pan ;
Suyi Jin ;
Yuehua Dong ;
Teng Li ;
Jing Zhao ;
Xiaolin Wei .
Journal of Thermal Science, 2021, 30 :1768-1779
[33]   Measurements of Hydrate Equilibrium Conditions for CH4, CO2, and CH4 + C2H6 + C3H8 in Various Systems by Step-heating Method [J].
Chen Litao ;
Sun Changyu ;
Chen Guangjin ;
Nie Yunqiang ;
Sun Zhansong ;
Liu Yantao .
CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2009, 17 (04) :635-641
[34]   Yield and quality parameters of pretreated crambe seed oil extracted using C3H8, CO2 and C3H8+CO2 mixtures under pressurized conditions [J].
Iwassa, Isabela Julio ;
Saldana, Marleny D. A. ;
Cardozo-Filho, Lucio ;
da Silva, Camila .
JOURNAL OF SUPERCRITICAL FLUIDS, 2021, 175
[35]   Experimental study and modeling of the isothermal VLE properties of ethylbenzene in supercritical solvents (CO2 and C3H8) [J].
Khairutdinov, Vener F. ;
Khabriev, Ilnar Sh. ;
Akhmetzyanov, Talgat R. ;
Yarullin, Lenar Yu. ;
Gabitov, Farizan R. ;
Polishuk, Ilya ;
Abdulagatov, Ilmutdin M. .
JOURNAL OF SUPERCRITICAL FLUIDS, 2023, 203
[36]   Nanofluid-assisted gas to hydrate (GTH) energy conversion for promoting CO2 recovery and sequestration processes in the petroleum industry [J].
ZareNezhad, Bahman ;
Montazeri, Vahab .
PETROLEUM SCIENCE AND TECHNOLOGY, 2016, 34 (01) :37-43
[37]   Direct Flue Gas Injection into Ocean for Simultaneous Energy Recovery and CO2 Sequestration in Solid Hydrate Reservoirs [J].
Prasad, Siddhant Kumar ;
Kumar, Yogendra ;
Bhawangirkar, Dnyaneshwar R. ;
Gaikwad, Namrata ;
Sangwai, Jitendra S. .
ENERGY & FUELS, 2024, 38 (17) :16622-16637
[38]   Suitable Binary and Ternary Thermodynamic Conditions for Hydrate Mixtures of CH4, CO2, and C3H8 for Gas Hydrate-Based Applications [J].
Nallakukkala, Sirisha ;
Abulkhair, Hani ;
Alsaiari, Abdulmohsen ;
Ahmad, Iqbal ;
Almatrafi, Eydhah ;
Bamaga, Omar ;
Lal, Bhajan ;
Shariff, Azmi Mohd .
ACS OMEGA, 2022, 7 (13) :10877-10889
[39]   CO2 hydrate sequestration in unsealed submarine sediments: A 4D pore-scale experimental investigation [J].
Li, Yanfang ;
Zhang, Tong ;
Yuan, Liang ;
Tang, Ming ;
Li, Ruilong ;
Chen, Yongqiang ;
Luo, Wen ;
Zhang, Chuanjiu .
GAS SCIENCE AND ENGINEERING, 2025, 143
[40]   Mass transfer analysis of the isochoric–isotherm hydrate-based water desalination from CO2/C3H8 gas mixtures [J].
M. Naseh ;
C. Falamaki ;
V. Mohebbi .
International Journal of Environmental Science and Technology, 2023, 20 :11149-11164