Methane and Carbon Dioxide Hydrate Formation in the Presence of Metal-Based Fluid

Nashed, O. and Partoon, B. and Lal, B. and Sabil, K.M. and Yaqub, S. and Shariff, A.M. (2022) Methane and Carbon Dioxide Hydrate Formation in the Presence of Metal-Based Fluid. Materials, 15 (23). ISSN 19961944

Full text not available from this repository.
Official URL: https://www.scopus.com/inward/record.uri?eid=2-s2....

Abstract

Hydrate-based technology has yet to find its way to commercial applications due to several issues, including formation conditions and slow kinetics. Several solid particles were introduced to speed up hydrate formation. However, these solid compounds have given contradictory results. This study investigated the effect of high thermal conductive metallic nanofluids of silver (Ag) and copper (Cu) on CH4 and CO2 hydrates. The solid particles were suspended in a 0.03 wt SDS aqueous solution, and the results were compared with the 0.03 wt SDS and deionized water samples. A stirred tank batch reactor was used to conduct the thermodynamic and kinetic experiments. The thermodynamic study revealed that 0.1 wt of solid particles do not shift the equilibrium curve significantly. The kinetic evaluation, including induction time, the initial rate of gas consumption, half-completion time, t50 and semi-completion time, t95, gas uptake, and storage capacity, have been studied. The results show that the Ag and Cu promote CH4 hydrates while they inhibit or do not significantly influence the CO2 hydrates formation. A predictive correlation was introduced to get the apparent rate constant of hydrate formation in the presence of metal-based fluid at the concentrations range of 0.005�0.1 wt. © 2022 by the authors.

Item Type: Article
Impact Factor: cited By 0
Uncontrolled Keywords: Batch reactors; Carbon dioxide; Deionized water; Gas hydrates; Hydration; Kinetics; Nanofluidics, Carbon dioxide hydrates; CH 4; Commercial applications; Completion time; Hydrate formation; Hydrate kinetics; Kinetic hydrate promoter; Kinetic hydrates; Solid particles; Yet-to-find, Rate constants
Depositing User: Mr Ahmad Suhairi Mohamed Lazim
Date Deposited: 28 Dec 2022 07:53
Last Modified: 28 Dec 2022 07:53
URI: http://scholars.utp.edu.my/id/eprint/34028

Actions (login required)

View Item
View Item