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University of Houston

LARGE-EDDY SIMULATION OF DEEP-WATER HYDROCARBON PLUME DYNAMICS

Abstract

dc:description.abstract

During a deep-water wellhead blowout incident, the dynamics of the released hydrocarbon plume is strongly affected by the gas dissolution and hydration process that weakens the bubble-induced buoyancy for driving the plume. In this study, a new modeling strategy is developed to efficiently incorporate the gas dissolution and hydration effects into a fast Eulerian-Eulerian large-eddy simulation (LES) model. By simultaneously simulating the evolutions of the bubble mass concentration and number density functions, the average bubble size in each LES computational cell can be calculated locally. Based on the cell-averaged bubble diameter, the local gas dissolution rate and hydrate formation/decomposition rate and bubble rise velocity are parameterized, which are then used in the gas transport equations to model the evolution of the gas bubble field due to turbulent transport and gas dissolution and hydrate formation and decomposition. In Chapter 2, the LES model is applied to simulate several blowout scenarios with different initial bubble sizes. The results show that the plumes that have smaller initial bubble sizes exhibit a faster relative bubble dissolution rate compared to the plumes with larger initial bubble sizes. As a result, the plumes with smaller bubbles also have lower peel and trap heights than those with larger bubbles. For comparison, a set of cases without including the gas dissolution is also performed. In Chapter 3, a multi-component gas dissolution model is implemented to study the contribution of dissolution from each component and the distribution of dissolved gas in each component. The results show the dissolution ratio for each gas component is different and the average dissolved gas are distributed at different altitude. In Chapter 4, the hydrate formation and decomposition effect are considered in the LES model for hydrocarbon plumes with deeper release conditions. When the gas bubble is released under the equilibrium depth, the gas bubbles and ambient water compose the hydration shell surrounding the bubble surface under deep ocean conditions as well as the gas dissolution into the surrounding seawater and loses its upward buoyancy force throughout the plume's ascent. As the hydrates rise, the hydrates will dehydrate slowly and dissolve into ambient water.

Degree

thesis:*
Name thesis:degree_name
Doctor of Philosophy
Level thesis:degree_level
Doctoral
Discipline thesis:degree_discipline
Mechanical Engineering
Grantor
University of Houston
Year dc:date.issued
2022

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Peng, Chen
Advisor dc:contributor.advisor
  • Yang, Di
Committee members dc:contributor.committeemember
  • Metcalfe, Ralph W.
  • Momen, Mostafa
  • Liu, Dong
  • Ostilla-Mónico, Rodolfo

Subjects

dc:subject × 6

Rights

dc:rights
Statement dc:rights
  • The author of this work is the copyright owner. UH Libraries and the Texas Digital Library have their permission to store and provide access to this work. UH Libraries has secured permission to reproduce any and all previously published materials contained in the work. Further transmission, reproduction, or presentation of this work is prohibited except with permission of the author(s).
Language dc:language.iso
eng

Identifiers

dc:identifier.*
Handle dc:identifier.uri
https://hdl.handle.net/10657/13329
OAI identifier oai:identifier
oai:uh-ir.tdl.org:10657/13329

Chain of custody

source
Harvested from
University of Houston
Base URL
uh-ir.tdl.org/server/oai/request
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Peng, Chen. LARGE-EDDY SIMULATION OF DEEP-WATER HYDROCARBON PLUME DYNAMICS. Doctoral thesis, University of Houston, 2022. https://hdl.handle.net/10657/13329