Results 221 to 230 of about 3,576,588 (296)

Deep-sea gas hydrate mounds and chemosynthetic fauna discovered at 3640 m on the Molloy Ridge, Greenland Sea. [PDF]

open access: yesNat Commun
Panieri G   +8 more
europepmc   +1 more source

Potential applications based on the formation and dissociation of gas hydrates

Renewable and Sustainable Energy Reviews, 2021
Owing to the substantial deposits and widespread applications of gas hydrates, research in gas hydrates has been increasing in recent decades. The inherent excellent physiochemical properties of gas hydrates determine the prominent roles that they play ...
Lunxiang Zhang   +2 more
exaly   +2 more sources

Effects of gas occurrence pattern on distribution and morphology characteristics of gas hydrates in porous media

Energy, 2021
Natural gas hydrates have attracted much attention in recent years. It is important to investigate the effects of gas occurrence pattern on hydrate growth habits since distribution and morphology characteristics of gas hydrates have significant effects ...
Xiaosen Li, Zhaoyang Chen, Yi Wang
exaly   +2 more sources

AREAS OF LOCATION OF GAS HYDRATES Subwater gas hydrates

Проблемы окружающей среды и природных ресурсов, 2023
M.P. Gromova   +2 more
openaire   +2 more sources

Review of natural gas hydrates as an energy resource: Prospects and challenges

Applied Energy, 2016
Ponnivalavan Babu   +2 more
exaly   +2 more sources

Gas Hydrates

Catalysis from A to Z, 2020
B. Cornils
semanticscholar   +3 more sources

Geochemistry, origin and accumulation of natural gas hydrates in the Qiongdongnan Basin, South China Sea: Implications from site GMGS5-W08

, 2021
The recent discovery of natural gas hydrates in the Qiongdongnan Basin (QDNB) during the fifth “China National Gas Hydrate Drilling Expedition” (GMGS5) confirms the great potential of gas hydrate resources within this basin.
Lai Hongfei   +7 more
semanticscholar   +1 more source

Compressibility of Gas Hydrates

ChemPhysChem, 2011
AbstractExperimental data on the pressure dependence of unit cell parameters for the gas hydrates of ethane (cubic structure I, pressure range 0–2 GPa), xenon (cubic structure I, pressure range 0–1.5 GPa) and the double hydrate of tetrahydrofuran+xenon (cubic structure II, pressure range 0–3 GPa) are presented. Approximation of the data using the cubic
Andrey Yu, Manakov   +5 more
openaire   +2 more sources

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