Prediction of Methane, Water and Ice Properties for Numerical Gas Hydrate Simulations
Öz
Gas
hydrates are considered as near-future potential energy resources. Due to the lack
of gas production data from gas hydrate reservoirs, numerical simulations are
very important to make production predictions for both experimental studies and
field production trials. Methane and water flow together when gas hydrates
dissociate inside the sediments. Hence, many parameters of methane and water
such as density, viscosity, enthalpy, internal energy and thermal conductivity
should be calculated at different pressure and temperature values during
non-isothermal numerical gas production simulations from gas hydrate
reservoirs. As a solid phase, ice might exist in the pores due to the
endothermic dissociation of gas hydrates. For this reason, water, methane, ice
properties as a function of temperature and pressure are estimated by the Matlab
codes written in this study: waterprop.m, gasprop.m, and iceprop.m. Density,
viscosity, enthalpy, internal energy and thermal conductivity of water and
methane calculated with the Matlab codes in this study, National Institute of
Standards and Technology were compared, and the reliability of waterprop.m,
gasprop.m and iceprop.m was proved.
Anahtar Kelimeler
Kaynakça
- 1. Max, MD, Johnson, AH, Exploration and production of oceanic natural gas hydrate; Springer Nature: Switzerland, 2016.
- 2. Koh, CA, Sloan, ED, Sum, AK, Unconventional energy sources: gas hydrates. In: Ginley DS, Cahen D (ed) Fundamentals of materials for energy and environmental sustainability, Cambridge University Press and Materials Research Society, Cambridge, 2012.
- 3. Merey, S, Sinayuc, C, New software that predicts hydrate properties and its use in gas hydrate studies, Journal of Chemical & Engineering Data, 2016, 61 (5), 1930–1951.
- 4. Gaddipati, M, Code comparison of methane hydrate reservoir simulators using CMG STAR, MSc thesis, West Virginia University, USA, 2008.
- 5. Moridis, GJ, Kowalsky, MB, Pruess, K, HydrateResSim User's Manual: A numerical simulator for modeling the behavior of hydrates in geologic media, Earth Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA, 2005.
- 6. NIST, Thermophysical Properties of Fluid Systems. accessed on 27 September, 2016, http:// webbook.nist.gov/chemistry/fluid/ (accessed 27.09.2016)
- 7. IAPWS, Revised Release on the IAPWS Industrial Formulation 1997 for the Thermodynamic Properties of Water and Steam, The International Association for the Properties of Water and Steam Lucerne, Switzerland, August, 2007.
- 8. Sengers, JV, Parsi, BK, Representative equations for the viscosity of water sub- stance, The Journal of Physical and Chemical Reference Data, 1984, 13, 185-205.
Ayrıntılar
Birincil Dil
İngilizce
Konular
Mühendislik
Bölüm
Araştırma Makalesi
Yazarlar
Şükrü Merey
*
Batman University, Department of Petroleum and Natural Gas Engineering, Batman, Turkey
Türkiye
Yayımlanma Tarihi
30 Haziran 2018
Gönderilme Tarihi
3 Şubat 2018
Kabul Tarihi
2 Nisan 2018
Yayımlandığı Sayı
Yıl 2018 Cilt: 14 Sayı: 2