Thermodynamic modeling and correlations of CH4, C2H6, CO2, H2S, and N2 hydrates with cage occupancies

被引:0
作者
Shadman H. Khan
Anupama Kumari
G. Dixit
Chandrajit B. Majumder
Amit Arora
机构
[1] Indian Institute of Technology,Department of Chemical Engineering
[2] Gas Hydrate Research Center,Department of Chemical Engineering
[3] Shaheed Bhagat Singh State Technical Campus,undefined
来源
Journal of Petroleum Exploration and Production Technology | 2020年 / 10卷
关键词
Gas hydrate; Thermodynamic modeling; van der Waals–Platteeuw; CH; Genetic programming; Correlation;
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学科分类号
摘要
The present work focuses on developing a framework for accurate prediction of thermodynamic conditions for single-component hydrates, namely CH4, CO2, N2, H2S, and C2H6 (coded in MATLAB). For this purpose, an exhaustive approach is adopted by incorporating eight different equations of states, namely Peng–Robinson, van der Waals, Soave–Redlich–Kwong, Virial, Redlich–Kwong, Tsai-Teja, Patel, and Esmaeilzadeh–Roshanfekr, with the well-known van der Waals–Platteeuw model. Overall, for I–H–V phase region, the Virial and van der Waals equation of state gives the most accurate predictions with minimum AAD%. For Lw–H–V phase region, Peng–Robinson equation of state is found to yield the most accurate predictions with overall AAD of 3.36%. Also, genetic programming algorithm is adopted to develop a generalized correlation. Overall, the correlation yields quick estimation with an average deviation of less than 1%. The accurate estimation yields a minimal AAD of 0.32% for CH4, 1.93% for C2H6, 0.77% for CO2, 0.64% for H2S, and 0.72% for N2. The same correlation can be employed for fitting phase equilibrium data for other hydrates too. The tuning parameter, n, is to be used for fine adjustment to the phase equilibrium data. The findings of this study can help for a better understanding of phase equilibrium and cage occupancy behavior of different gas hydrates. The accuracy in phase equilibria is intimately related to industrial applications such as crude oil transportation, solid separation, and gas storage. To date, no single correlation is available in the literature that can accurately predict phase equilibria for multiple hydrate species. The novelty of the present work lies in both the accuracy and generalizability of the proposed correlation in predicting the phase equilibrium data. The genetic programming generalized correlation is convenient for performing quick equilibrium prediction for industrial applications.
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页码:3689 / 3709
页数:20
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  • [1] Abedi-Farizhendi S(2019)Kinetic study of methane hydrate formation in the presence of carbon nanostructures Pet Sci 16 657-668
  • [2] Iranshahi M(2017)New predictive method for estimation of natural gas hydrate formation temperature using genetic programming Neural Comput Appl 21 184-192
  • [3] Mohammadi A(2014)Developing a simple and accurate correlation for initial estimation of hydrate formation temperature of sweet natural gases using an eclectic approach J Nat Gas Sci Eng 108 18705-18715
  • [4] Abooali D(2004)Accurate potentials for argon-water and methane-water interactions via ab initio methods and their application to clathrate hydrates J Phys Chem B 5 1-6
  • [5] Khamehchi E(2015)Techniques for exploitation of gas hydrate (Clathrates) an untapped resource of methane gas J Microb Biochem Technol 6 1-6
  • [6] Ali Ghayyem M(2014)Effects of biosurfactants on gas hydrates Pet Environ Biotechnol 6 4-9
  • [7] Izadmehr M(2015)Natural gas hydrate as an upcoming resource of energy Pet Environ Biotechnol 6 6-1173
  • [8] Tavakoli R(2015)Natural gas hydrate (Clathrates) as an untapped resource of natural gas Pet Environ Biotechnol 49 1161-457
  • [9] Anderson BJ(2015)Field testing of gas hydrates—an alternative to conventional fuels Pet Environ Biotechnol 18 453-136
  • [10] Tester JW(1994)The determination of Kihara potential parameters from gas hydrate data Chem Eng Sci 86 111-1104