151
Bubenheim P, Hackbusch S, Joye S, Kostka J, Larter SR, Liese A, Lincoln S, Marietou A, Müller R,
Noirungsee N, Oldenburg TBP, Radović J, Viamonte J (2020) Biodegradation of hydrocarbons
in deep water and sediments (Chap. 7). In: Murawski SA, Ainsworth C, Gilbert S, Hollander
D, Paris CB, Schlüter M, Wetzel D (eds) Deep oil spills: facts, fate, effects. Springer, Cham
Chen F, Yapa PD (2003) A model for simulating deep water oil and gas blowouts – Part II: comparison of numerical simulations with “Deepspill” field experiments. J Hydraul Res 41(4):
353–365. https://doi.org/10.1080/00221680309499981
Clift R, Grace J, Weber ME (1978) Bubbles, drops, and particles. Dover Publications Inc., Mineola
Daly K, Vaz AC, Paris CB (2020) Physical processes influencing the sedimentation and lateral
transport of MOSSFA in the northeast Gulf of Mexico (Chap. 18). In: Murawski SA, Ainsworth
C, Gilbert S, Hollander D, Paris CB, Schlüter M, Wetzel D (eds) Scenarios and responses to
future deep oil spills: fighting the next war. Springer, Cham
Dissanayake AL, Gros J, Socolofsky SA (2018) Integral models for bubble, droplet, and multiphase plume dynamics in stratification and crossflow. Environ Fluid Mech:1–36. https://doi.
org/10.1007/s10652-018-9591-y
Drozd GT, Worton DR, Aeppli C, Reddy CM, Zhang H, Variano E, Goldstein AH (2015) Modeling
comprehensive chemical composition of weathered oil following a marine spill to predict
ozone and potential secondary aerosol formation and constrain transport pathways. J Geophys
Res Oceans 120:7300–7315. https://doi.org/10.1002/2015JC011093
Fraga B, Stoesser T, CCK L, Socolofsky SA (2016) A LES-based Eulerian-Lagrangian approach
to predict the dynamics of bubble plumes. Ocean Model 97:27–36. https://doi.org/10.1016/j.
ocemod.2015.11.005
Gros J, Reddy CM, Nelson RK, Socolofsky SA, Arey JS (2016) Simulating gas-liquid-water partitioning and fluid properties of petroleum under pressure: implications for deep-sea blowouts.
Environ Sci Technol 50(14):7397–7408. https://doi.org/10.1021/acs.est.5b04617
Gros J, Socolofsky SA, Dissanayake AL, Jun I, Zhao L, Boufadel MC, Reddy CM, Arey JS (2017)
Petroleum dynamics in the sea and influence of subsea dispersant injection during Deepwater
Horizon. Proc Natl Acad Sci 114(38):10065–10070. https://doi.org/10.1073/pnas.1612518114
Jaggi A, Snowdon RW, Radović J, Stopford A, Oldenburg TBP, Larter SR (2020) Partitioning of
organics between oil and water phases with and without the application of dispersants (Chap.
8). In: Murawski SA, Ainsworth C, Gilbert S, Hollander D, Paris CB, Schlüter M, Wetzel D
(eds) Deep oil spills: facts, fate, effects. Springer, Cham
Jirka GH (2004) Integral model for turbulent buoyant jets in unbounded stratified flows Part 2:
plane jet dynamics resulting from multiport diffuser jets. Environ Fluid Mech 6(1):43–100.
https://doi.org/10.1007/s10652-005-4656-0
Johansen Ø, Rye H, Cooper C (2003) DeepSpill-Field study of a simulated oil and gas blowout in deep water. Spill Sci Technol Bull 8(5–6):433–443. https://doi.org/10.1016/
S1353-2561(02)00123-8
Johansen Ø, Brandvik PJ, Farooq U (2013) Droplet breakup in subsea oil releases – Part 2: predictions of droplet size distributions with and without injection of chemical dispersants. Mar
Pollut Bull 73(1):327–335. https://doi.org/10.1016/j.marpolbul.2013.04.012
Joye SB, Bracco A, Özgökmen TM, Chanton JP, Grosell M, MacDonald IR, Cordes EE, Montoya
JP, Passow U (2016) The Gulf of Mexico ecosystem, six years after the Macondo oil well blowout. Deep-Sea Res II 129:4–19. https://doi.org/10.1016/j.dsr2.2016.04.018
Le Hénaff M, Kourafalou VH, Paris CB, Helgers J, Aman ZM, Hogan PJ, Srinivasan A (2012)
Surface evolution of the Deepwater Horizon oil spill patch: combined effects of circulation
and wind-induced drift. Environ Sci Technol 46(13):7267–7273. https://doi.org/10.1021/
es301570w
Lee JHW, Cheung V (1990) Generalized Lagrangian model for buoyant jets in current. J Environ
Eng 116:1085–1106
Lee JHW, Chu VH (2003) Turbulent jets and plumes: a Lagrangian approach. Kluwer Academic
Publishers Group, Dordrecht
9 Dynamic Coupling of Near-Field and Far-Field Models
Bubenheim P, Hackbusch S, Joye S, Kostka J, Larter SR, Liese A, Lincoln S, Marietou A, Müller R,
Noirungsee N, Oldenburg TBP, Radović J, Viamonte J (2020) Biodegradation of hydrocarbons
in deep water and sediments (Chap. 7). In: Murawski SA, Ainsworth C, Gilbert S, Hollander
D, Paris CB, Schlüter M, Wetzel D (eds) Deep oil spills: facts, fate, effects. Springer, Cham
Chen F, Yapa PD (2003) A model for simulating deep water oil and gas blowouts – Part II: comparison of numerical simulations with “Deepspill” field experiments. J Hydraul Res 41(4):
353–365. https://doi.org/10.1080/00221680309499981
Clift R, Grace J, Weber ME (1978) Bubbles, drops, and particles. Dover Publications Inc., Mineola
Daly K, Vaz AC, Paris CB (2020) Physical processes influencing the sedimentation and lateral
transport of MOSSFA in the northeast Gulf of Mexico (Chap. 18). In: Murawski SA, Ainsworth
C, Gilbert S, Hollander D, Paris CB, Schlüter M, Wetzel D (eds) Scenarios and responses to
future deep oil spills: fighting the next war. Springer, Cham
Dissanayake AL, Gros J, Socolofsky SA (2018) Integral models for bubble, droplet, and multiphase plume dynamics in stratification and crossflow. Environ Fluid Mech:1–36. https://doi.
org/10.1007/s10652-018-9591-y
Drozd GT, Worton DR, Aeppli C, Reddy CM, Zhang H, Variano E, Goldstein AH (2015) Modeling
comprehensive chemical composition of weathered oil following a marine spill to predict
ozone and potential secondary aerosol formation and constrain transport pathways. J Geophys
Res Oceans 120:7300–7315. https://doi.org/10.1002/2015JC011093
Fraga B, Stoesser T, CCK L, Socolofsky SA (2016) A LES-based Eulerian-Lagrangian approach
to predict the dynamics of bubble plumes. Ocean Model 97:27–36. https://doi.org/10.1016/j.
ocemod.2015.11.005
Gros J, Reddy CM, Nelson RK, Socolofsky SA, Arey JS (2016) Simulating gas-liquid-water partitioning and fluid properties of petroleum under pressure: implications for deep-sea blowouts.
Environ Sci Technol 50(14):7397–7408. https://doi.org/10.1021/acs.est.5b04617
Gros J, Socolofsky SA, Dissanayake AL, Jun I, Zhao L, Boufadel MC, Reddy CM, Arey JS (2017)
Petroleum dynamics in the sea and influence of subsea dispersant injection during Deepwater
Horizon. Proc Natl Acad Sci 114(38):10065–10070. https://doi.org/10.1073/pnas.1612518114
Jaggi A, Snowdon RW, Radović J, Stopford A, Oldenburg TBP, Larter SR (2020) Partitioning of
organics between oil and water phases with and without the application of dispersants (Chap.
8). In: Murawski SA, Ainsworth C, Gilbert S, Hollander D, Paris CB, Schlüter M, Wetzel D
(eds) Deep oil spills: facts, fate, effects. Springer, Cham
Jirka GH (2004) Integral model for turbulent buoyant jets in unbounded stratified flows Part 2:
plane jet dynamics resulting from multiport diffuser jets. Environ Fluid Mech 6(1):43–100.
https://doi.org/10.1007/s10652-005-4656-0
Johansen Ø, Rye H, Cooper C (2003) DeepSpill-Field study of a simulated oil and gas blowout in deep water. Spill Sci Technol Bull 8(5–6):433–443. https://doi.org/10.1016/
S1353-2561(02)00123-8
Johansen Ø, Brandvik PJ, Farooq U (2013) Droplet breakup in subsea oil releases – Part 2: predictions of droplet size distributions with and without injection of chemical dispersants. Mar
Pollut Bull 73(1):327–335. https://doi.org/10.1016/j.marpolbul.2013.04.012
Joye SB, Bracco A, Özgökmen TM, Chanton JP, Grosell M, MacDonald IR, Cordes EE, Montoya
JP, Passow U (2016) The Gulf of Mexico ecosystem, six years after the Macondo oil well blowout. Deep-Sea Res II 129:4–19. https://doi.org/10.1016/j.dsr2.2016.04.018
Le Hénaff M, Kourafalou VH, Paris CB, Helgers J, Aman ZM, Hogan PJ, Srinivasan A (2012)
Surface evolution of the Deepwater Horizon oil spill patch: combined effects of circulation
and wind-induced drift. Environ Sci Technol 46(13):7267–7273. https://doi.org/10.1021/
es301570w
Lee JHW, Cheung V (1990) Generalized Lagrangian model for buoyant jets in current. J Environ
Eng 116:1085–1106
Lee JHW, Chu VH (2003) Turbulent jets and plumes: a Lagrangian approach. Kluwer Academic
Publishers Group, Dordrecht
9 Dynamic Coupling of Near-Field and Far-Field Models
