Properties of inhibitors of methane hydrate formation via molecular dynamics simulations

被引:263
作者
Anderson, BJ
Tester, JW
Borghi, GP
Trout, BL
机构
[1] MIT, Dept Chem Engn, Cambridge, MA 02139 USA
[2] EniTecnol SpA, Ctr Upstream Oil & Gas Technol, I-20097 San Donato Milanese, Italy
关键词
D O I
10.1021/ja0554965
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Within the framework of a proposed two-step mechanism for hydrate inhibition, the energy of binding of four inhibitor molecules (PEO, PVP, PVCap, and VIMA) to a hydrate surface is estimated with molecular dynamic simulations. One key feature of this proposed mechanism is that the binding of an inhibitor molecule to the surface of an ensuing hydrate crystal disrupts growth and therein crystallization. It is found through the molecular dynamic simulations that inhibitor molecules that experimentally exhibit better inhibition strength also have higher free energies of binding, an indirect confirmation of our proposed mechanism. Inhibitors increasing in effectiveness, PEO < PVP < PVCap < VIMA, have increasingly negative (exothermic) binding energies of -0.2 < -20.6 < -37.5 < -45.8 kcal/mol and binding free energies of increasing favorability (+0.4 approximate to +0.5 < -9.4 < -15.1 kcal/mol). Furthermore, the effect of an inhibitor molecule on the local liquid water structure under hydrate-forming conditions was examined and correlated to the experimental effectiveness of the inhibitors. Two molecular characteristics that lead to strongly binding inhibitors were found: (1) a charge distribution on the edge of the inhibitor that mimics the charge separation in the water molecules on the surface of the hydrate and (2) the congruence of the size of the inhibitor with respect to the available space at the hydrate-surface binding site. Equipped with this molecular-level understanding of the process of hydrate inhibition via low-dosage kinetic hydrate inhibitors we can design new, more effective inhibitor molecules.
引用
收藏
页码:17852 / 17862
页数:11
相关论文
共 41 条
[31]  
MAKOGON TY, 2002, 4 INT C GAS HYDR, P498
[32]   CARBON DIOXIDE CLATHRATE IN MARTIAN ICE CAP [J].
MILLER, SL ;
SMYTHE, WD .
SCIENCE, 1970, 170 (3957) :531-&
[33]   Nucleation of crystalline phases of water in homogeneous and inhomogeneous environments [J].
Radhakrishnan, R ;
Trout, BL .
PHYSICAL REVIEW LETTERS, 2003, 90 (15) :4
[34]   Nucleation of hexagonal ice (Ih) in liquid water [J].
Radhakrishnan, R ;
Trout, BL .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (25) :7743-7747
[35]   A new approach for studying nucleation phenomena using molecular simulations:: Application to CO2 hydrate clathrates [J].
Radhakrishnan, R ;
Trout, BL .
JOURNAL OF CHEMICAL PHYSICS, 2002, 117 (04) :1786-1796
[36]   Effects of kinetic inhibitors on the formation and growth of hydrate crystals at a liquid-liquid interface [J].
Sakaguchi, H ;
Ohmura, R ;
Mori, YH .
JOURNAL OF CRYSTAL GROWTH, 2003, 247 (3-4) :631-641
[37]  
Sloan E., 1998, CLATHRATE HYDRATES N, V2nd
[38]   A MOLECULAR MECHANISM FOR GAS HYDRATE NUCLEATION FROM ICE [J].
SLOAN, ED ;
FLEYFEL, F .
AICHE JOURNAL, 1991, 37 (09) :1281-1292
[39]   Kinetic inhibitor of hydrate crystallization [J].
Storr, MT ;
Taylor, PC ;
Monfort, JP ;
Rodger, PM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2004, 126 (05) :1569-1576
[40]  
Storr MT, 2000, ANN NY ACAD SCI, V912, P669