Data-driven modeling of H2 solubility in hydrocarbons using white-box approaches
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Ahmad Mohaddespour | S. Atashrouz | Mohammad-Reza Mohammadi | Fahimeh Hadavimoghaddam | D. Nedeljkovic | A. Hemmati-Sarapardeh | D. Nedeljković
[1] Hongda Wang,et al. Applying the wavelet neural network to estimate hydrogen dissolution in underground sodium chloride solutions , 2022, International Journal of Hydrogen Energy.
[2] Ali E. Anqi,et al. Relying on machine learning methods for predicting hydrogen solubility in different alcoholic solvents , 2022, International Journal of Hydrogen Energy.
[3] M. N. Amar,et al. Predicting viscosity of CO2–N2 gaseous mixtures using advanced intelligent schemes , 2022 .
[4] Abdolhossein Hemmati-Sarapardeh,et al. Modeling of nitrogen solubility in normal alkanes using machine learning methods compared with cubic and PC-SAFT equations of state , 2021, Scientific Reports.
[5] M. Karimi,et al. Machine learning methods help accurate estimation of the hydrogen solubility in biomaterials , 2021, International Journal of Hydrogen Energy.
[6] Ahmad Mohaddespour,et al. Application of robust machine learning methods to modeling hydrogen solubility in hydrocarbon fuels , 2021, International Journal of Hydrogen Energy.
[7] Suo-Qi Zhao,et al. Hydrogen Solubility Prediction for Diesel Molecules Based on a Modified Henry Equation , 2021, Petroleum Science.
[8] Abdolhossein Hemmati-Sarapardeh,et al. Modeling hydrogen solubility in alcohols using machine learning models and equations of state , 2021, Journal of Molecular Liquids.
[9] Abdolhossein Hemmati-Sarapardeh,et al. On the evaluation of crude oil oxidation during thermogravimetry by generalised regression neural network and gene expression programming: application to thermal enhanced oil recovery , 2021, Combustion Theory and Modelling.
[10] A. Mosavi,et al. Modeling hydrogen solubility in hydrocarbons using extreme gradient boosting and equations of state , 2021, Scientific Reports.
[11] Menad Nait Amar,et al. Modeling of methane adsorption capacity in shale gas formations using white-box supervised machine learning techniques , 2021, Journal of Petroleum Science and Engineering.
[12] Behzad Vaferi,et al. Hydrogen solubility in aromatic/cyclic compounds: Prediction by different machine learning techniques , 2021 .
[13] M. Jamali,et al. Correlation and prediction of solubility of hydrogen in alkenes and its dissolution properties , 2021, Applied Petrochemical Research.
[14] A. Mosavi,et al. Viscosity of Ionic Liquids: Application of the Eyring’s Theory and a Committee Machine Intelligent System , 2020, Molecules.
[15] M. N. Amar,et al. Prediction of CO2 diffusivity in brine using white-box machine learning , 2020 .
[16] Menad Nait Amar,et al. Modeling Wax Disappearance Temperature Using Advanced Intelligent Frameworks , 2019, Energy & Fuels.
[17] E. Voutsas,et al. Modelling of hydrogen vapor-liquid equilibrium with oil & gas components , 2019, Fluid Phase Equilibria.
[18] J. Martínez-Magadán,et al. H2 Solubility in Hydrocarbons Calculated by the COSMO-RS Method , 2019, Industrial & Engineering Chemistry Research.
[19] Shahaboddin Shamshirband,et al. Modeling temperature-based oil-water relative permeability by integrating advanced intelligent models with grey wolf optimization: Application to thermal enhanced oil recovery processes , 2019, Fuel.
[20] Bernardo Carreón-Calderón,et al. Predictive method of hydrogen solubility in heavy petroleum fractions using EOS/GE and group contributions methods , 2018 .
[21] B. Dabir,et al. Modeling gas/vapor viscosity of hydrocarbon fluids using a hybrid GMDH-type neural network system , 2017 .
[22] Alireza Rostami,et al. Genetic Programming (GP) Approach for Prediction of Supercritical CO2 Thermal Conductivity , 2017 .
[23] J. Abedi,et al. Modeling the solubility and volumetric properties of H2 and heavy hydrocarbons using the simplified PC-SAFT , 2016 .
[24] Amir H. Mohammadi,et al. Accurate prediction of solubility of hydrogen in heavy oil fractions , 2016 .
[25] Michael Müller,et al. Measurement of Hydrogen Solubility in Potential Liquid Organic Hydrogen Carriers , 2016 .
[26] G. Pazuki,et al. Modeling the Thermal Conductivity of Ionic Liquids and Ionanofluids Based on a Group Method of Data Handling and Modified Maxwell Model , 2015 .
[27] J. Ancheyta,et al. Vapor–liquid equilibrium of hydrogen–hydrocarbon systems and its effects on hydroprocessing reactors , 2014 .
[28] V. Alopaeus,et al. Hydrogen solubility in heavy oil systems: Experiments and modeling , 2014 .
[29] V. Alopaeus,et al. A modified continuous flow apparatus for gas solubility measurements at high pressure and temperature with camera system , 2014 .
[30] Jean-Noël Jaubert,et al. Classification of global fluid-phase equilibrium behaviors in binary systems , 2013 .
[31] Jean-Noël Jaubert,et al. Phase equilibria in hydrogen-containing binary systems modeled with the Peng–Robinson equation of state and temperature-dependent binary interaction parameters calculated through a group-contribution method , 2013 .
[32] J. D. Hemptinne,et al. Improving the Modeling of Hydrogen Solubility in Heavy Oil Cuts Using an Augmented Grayson Streed (AGS) Approach , 2013 .
[33] Ahmad Okhovat,et al. Modeling of arsenic, chromium and cadmium removal by nanofiltration process using genetic programming , 2012, Appl. Soft Comput..
[34] H. Modarress,et al. Hydrogen solubility in heavy n-alkanes; modeling and prediction by artificial neural network , 2011 .
[35] Changwon Suh,et al. Application of genetic programming to develop the model for estimating membrane damage in the membrane integrity test using fluorescent nanoparticle , 2011 .
[36] S. Murad,et al. Prediction of hydrogen solubility in heavy hydrocarbons over a range of temperatures and pressures u , 2010 .
[37] Y. Wang,et al. A Model of Solubility of Hydrogen in Hydrocarbons and Coal Liquid , 2010 .
[38] Hailong Li,et al. Evaluating cubic equations of state for calculation of vapor–liquid equilibrium of CO2 and CO2-mixtures for CO2 capture and storage processes , 2009 .
[39] M. Riazi,et al. A method to predict solubility of hydrogen in hydrocarbons and their mixtures , 2007 .
[40] Paola Gramatica,et al. Principles of QSAR models validation: internal and external , 2007 .
[41] M. Michelsen,et al. Applications of the simplified perturbed-chain SAFT equation of state using an extended parameter table , 2006 .
[42] N. Itoh,et al. Hydrogen solubility in a chemical hydrogen storage medium, aromatic hydrocarbon, cyclic hydrocarbon, and their mixture for fuel cell systems , 2005 .
[43] Josep C. Pàmies,et al. Solubility of hydrogen in heavy n‐alkanes: Experiments and saft modeling , 2003 .
[44] Walter G Chapman,et al. Gas solubility in hydrocarbons—a SAFT-based approach , 2003 .
[45] C. G. Dassori,et al. Hydrocracking: An improved Kinetic Model and Reactor Modeling , 2002 .
[46] G. Towler,et al. Analysis of Refinery Hydrogen Distribution Systems , 2002 .
[47] F. Lucien,et al. Solubility of Hydrogen in α-Methylstyrene and Cumene at Elevated Pressure , 2002 .
[48] D. Ronze,et al. Hydrogen solubility in straight run gasoil , 2002 .
[49] J. Shaw,et al. Hydrogen solubility measurements in heavy oil and bitumen cuts , 2001 .
[50] K. Gasem,et al. Solubilities of Hydrogen in Hexane and of Carbon Monoxide in Cyclohexane at Temperatures from 344.3 to 410.9 K and Pressures to 15 MPa , 2001 .
[51] Gabriele Sadowski,et al. Perturbed-Chain SAFT: An Equation of State Based on a Perturbation Theory for Chain Molecules , 2001 .
[52] A. E. Mather,et al. Solubility of hydrogen in Athabasca bitumen , 1999 .
[53] R. L. Robinson,et al. High-pressure solubilities of hydrogen, nitrogen, and carbon monoxide in dodecane from 344 to 410 K at pressures to 13.2 MPa , 1999 .
[54] R. Ramachandran,et al. An overview of industrial uses of hydrogen , 1998 .
[55] B. Pruden,et al. Solubility study for the purification of hydrogen from high pressure hydrocracker off‐gas by an absorption‐stripping process , 1997 .
[56] Kwang J. Kim,et al. Solubility of Hydrogen in Octane, 1-Octanol, and Squalane , 1997 .
[57] K. Gasem,et al. Solubilities of hydrogen in aromatic hydrocarbons from 323 to 433 K and pressures to 21.7 MPa , 1996 .
[58] M. C. Lin,et al. Thermodynamic behavior of hydrogen/natural gas mixtures , 1995 .
[59] K. Gasem,et al. Solubilities of Hydrogen in Heavy Normal Paraffins at Temperatures from 323.2 to 423.2 K and Pressures to 17.4 MPa , 1995 .
[60] R. Missen,et al. Solubility of hydrogen in a white oil , 1992 .
[61] R. Kobayashi,et al. Light gas solubility in phenanthrene: the hydrogen—phenanthrene and methane—phenanthrene systems , 1990 .
[62] Peter J. Rousseeuw,et al. Robust Regression and Outlier Detection , 2005, Wiley Series in Probability and Statistics.
[63] J. Prausnitz,et al. SOLUBILITIES OF METHANE, ETHANE AND CARBON DIOXIDE IN HEAVY FOSSIL-FUEL FRACTIONS , 1987 .
[64] J. Shaw. A correlation for hydrogen solubility in alicyclic and aromatic solvents , 1987 .
[65] E. Brunner. Solubility of hydrogen in 10 organic solvents at 298.15, 323.15, and 373.15 K , 1985 .
[66] M. Huron,et al. Prediction of the solubility of hydrogen in hydrocarbon solvents through cubic equations of state , 1983 .
[67] P. H. van Konynenburg,et al. Critical lines and phase equilibria in binary van der Waals mixtures , 1980, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences.
[68] Ho-mu Lin,et al. Gas-liquid equilibrium in hydrogen + n-hexadecane and methane + n-hexadecane at elevated temperatures and pressures , 1980 .
[69] Ho-mu Lin,et al. Gas-liquid equilibrium in the hydrogen + n-decane system at elevated temperatures and pressures , 1980 .
[70] Ho-mu Lin,et al. Solubility of hydrogen in toluene at elevated temperatures and pressures , 1978 .
[71] Ho-mu Lin,et al. Gas-Liquid Equilibrium in Mixtures of Hydrogen and Diphenylmethane , 1978 .
[72] K. Chao,et al. Vapor-liquid equilibrium of hydrogen/tetralin system at elevated temperatures and pressures , 1977 .
[73] T. Nitta,et al. Solubilities of hydrogen and nitrogen in alcohols and n-hexane , 1976 .
[74] H. Y. Cheh,et al. The vapor‐liquid equilibrium of the hydrogen—n‐butane system at elevated pressures , 1975 .
[75] S. Saito,et al. VAPOR-LIQUID EQUILIBRIA OF BINARY AND TERNARY SYSTEMS CONTAINING HYDROGEN AND LIGHT HYDROCARBONS , 1972 .
[76] A. G. Ivakhnenko,et al. Polynomial Theory of Complex Systems , 1971, IEEE Trans. Syst. Man Cybern..
[77] F. Kurata,et al. Vapor‐liquid phase behavior of the hydrogen‐propane and hydrogen‐carbon monoxide‐propane systems , 1971 .
[78] T. E. Berty,et al. Phase Behavior in the Hydrogen-Cyclohexane System. , 1966 .
[79] J. Connolly. Thermodynamic Properties of Hydrogen in Benzene Solutions , 1962 .
[80] J. D. Seader,et al. A general correlation of vapor‐liquid equilibria in hydrocarbon mixtures , 1961 .
[81] S. Peter,et al. Das Phasengleichgewicht in den SystemenH2—n-Heptan,H2-Methylcyclohexan undH2—2,2,4-Trimethylpentan bei höheren Drucken und Temperaturen , 1960 .
[82] D. Katz,et al. Low Temperature Vapor-Liquid Equilibria in Hydrogen-n-Butane System , 1951 .
[83] J. Tooke,et al. Vapor-Liquid Equilibria in Three Hydrogen-Paraffin Systems , 1946 .
[84] W. Bonnell,et al. Solubility of Hydrogen in n -Butane , 1943 .