Natural gas exploitation by carbon dioxide from gas hydrate fields—high-pressure phase equilibrium for an ethane hydrate system

Author(s):  
S Nakano ◽  
K Yamamoto ◽  
K Ohgaki

Natural gas hydrate fields, which have a large amount of methane and ethane deposits in the subterranean Arctic and in the bottom of the sea at various places in the world, have become the object of public attention as a potential natural gas resource. Here the idea of natural gas exploitation from natural gas hydrate fields combined with CO2 isolation using CO2 hydrate has been presented. As a fundamental study, high-pressure phase behaviour for the ethane hydrate system was investigated in a high-pressure cell up to a maximum pressure of 100 MPa, following a previous study of CO2 and methane hydrates. Consequently, the phase equilibrium relationship of an ethane hydrate—water—liquid ethane mixture was obtained in the temperature range from 290.4 to 298.4 K and over a pressure range of 19.48 to 83.75 MPa. The observed phase boundary corresponds to the three-phase coexisting line with a non-variant quadruple point of ethane hydrate—water—liquid ethane—gaseous ethane at 288.8 K and 3.50 MPa, similar to the CO2 hydrate—water—liquid CO2 system.

2015 ◽  
Vol 27 ◽  
pp. 661-665 ◽  
Author(s):  
Maria T. Mota-Martinez ◽  
Sabbir Samdani ◽  
Abdallah S. Berrouk ◽  
Marisa A.A. Rocha ◽  
Emad Y. Alhseinat ◽  
...  

1994 ◽  
Vol 6 (23A) ◽  
pp. A187-A192 ◽  
Author(s):  
J A Schouten ◽  
M G E van Hinsberg ◽  
M I M Scheerboom ◽  
J P J Michels

2018 ◽  
Vol 473 ◽  
pp. 132-137 ◽  
Author(s):  
Evertan A. Rebelatto ◽  
Gean Pablo S. Aguiar ◽  
Angelo L. Piato ◽  
João P. Bender ◽  
Marcelo Lanza ◽  
...  

2020 ◽  
Vol 6 (1) ◽  
pp. 9
Author(s):  
Małgorzata E. Zakrzewska ◽  
Ana B. Paninho ◽  
M. Fátima C. Guedes da Silva ◽  
Ana V. M. Nunes

Selective water (by-product) separation from reaction mixtures stands as an important process intensification strategy for equilibrium-limited reactions. In this work, the possibility of using a high-pressure biphasic reaction media composed of a hydrophobic ionic liquid, 1-hexy-3-methylimidazolium tetracyanoborate, and carbon dioxide was explored for levulinic acid production from 1,4-butanediol. Vapour-liquid equilibrium measurements were performed for the binary (diol+CO2), ternary (diol+CO2+IL), and quaternary systems (diol+CO2+IL+water), at 313.2 K and pressures up to 18 MPa. The static analytical method was used in a high-pressure phase equilibrium apparatus equipped with a visual sapphire cell. The capability of the quaternary system to perform physical water separation is discussed in this paper.


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