153
Reddy CM, Arey JS, Seewald JS, Sylva SP, Lemkau KL, Nelson RK, Carmichael CA, McIntyre
CP, Fenwick J, Ventura GT, Van Mooy AS, Camilli R (2012) Composition and fate of gas and
oil released to the water column during the Deepwater Horizon oil spill. Proc Natl Acad Sci
109(50):20229–20234. https://doi.org/10.1073/pnas.1101242108
Reed M, Johansen O, Brandvik PJ, Daling P, Lewis A, Fiocco R, Mackay D, Prentki R (1999) Oil
spill modeling towards the close of the 20th century: overview of the state of the art. Spill Sci
Technol Bull 5:3–16. https://doi.org/10.1016/S1353-2561(98)00029-2
Romero IC, Schwing PT, Brooks GR, Larson RA, Hastings DW, Ellis G, Goddard EA, Hollander
DJ (2015) Hydrocarbons in deep-sea sediments following the 2010 Deepwater Horizon blowout in the northeast Gulf of Mexico. PLoS ONE 10(5):e0128371. https://doi.org/10.1371/journal.pone.0128371
Ryerson TB, Camilli R, Kessler JD, Kujawinski EB, Reddy CM, Valentine DL, Atlas E, Blake DR,
de Gout J, Meinardi S, Parrish DD, Peischl J, Seewald JS, Warneke C (2012) Chemical data
quantify Deepwater Horizon hydrocarbon flow rate and environmental distribution. Proc Natl
Acad Sci 109(50):20246–20253. https://doi.org/10.1073/pnas.1110564109
Schedler M, Hiessl R, Valladares Juárez AG, Gust G, Müller R (2014) Effect of high pressure on hydrocarbon-degrading bacteria. AMB Express 4(1):1–7. https://doi.org/10.1186/
s13568-014-0077-0
Scoma A, Barbato M, Hernandez-Sanabria E, Mapelli F, Daffonchio D, Borin S, Boon N (2016)
Microbial oil-degradation under mild hydrostatic pressure (10 MPa): which pathways
are impacted in piezosensitive hydrocarbonoclastic bacteria? Sci Rep 6:1–14. https://doi.
org/10.1038/srep23526
Socolofsky SA, Adams EE (2002) Multi-phase plumes in uniform and stratified crossflow.
J Hydraul Res 40(6):661–672
Socolofsky SA, Dissanayake AL (2016) Bent plume model source code for the Texas A&M Oilspill
Calculator (TAMOC). Center for the Integrated Modeling and Analysis of Gulf Ecosystems
II (C- IMAGE II), Gulf of Mexico Research Initiative Information and Data Cooperative
(GRIIDC). https://data.gulfresearchinitiative.org/data/R4.x267.000:000333
Socolofsky SA, Adams EE, Sherwood CR (2011) Formation dynamics of subsurface hydrocarbon
intrusions following the deepwater horizon blowout. Geophys Res Lett 38(9):L09602
Socolofsky SA, Adams EE, Boufadel MC, Aman ZM, Johansen Ø, Konkel WJ, Lindo D, Madsen
MN, North EW, Paris CB, Rasmussen D, Reed M, Rønningen P, Sim LH, Uhrenholdt T,
Anderson KG, Cooper C, Nedwed TJ (2015) Intercomparison of oil spill prediction models
for accidental blowout scenarios with and without subsea chemical dispersant injection. Mar
Pollut Bull 96(1–2):110–126. https://doi.org/10.1016/j.marpolbul.2015.05.039
Stout SA, Payne JR, Emsbo-Mattingly SD, Baker G (2016) Weathering of field-collected floating
and stranded Macondo oils during and shortly after the Deepwater Horizon oil spill. Mar Pollut
Bull 105(1):7–22. https://doi.org/10.1016/j.marpolbul.2016.02.044
Turner JS (1968) The influence of molecular diffusivity on turbulent entrainment across a density
interface. J Fluid Mech 33:639–656
Wang B, Socolofsky SA, CCK L, Adams EE, Boufadel MC (2018) Behavior and dynamics of
bubble breakup in gas pipeline leaks and accidental subsea oil well blowouts. Mar Pollut Bull
131:72–86. https://doi.org/10.1016/j.marpolbul.2018.03.053
Yapa PD, Zheng L, Chen F (2001) A model for Deepwater oil/gas blowouts. Mar Pollut Bull
43(7–12):234–241. https://doi.org/10.1016/S0025-326X(01)00086-8
Yapa PD, Dasanayaka LK, Bandara UC, Nakata K (2010) A model to simulate the transport and
fate of gas and hydrates released in deepwater. J Hydraul Res 48(5):559–572. https://doi.org/1
0.1080/00221686.2010.507010
Zhao L, Boufadel MC, Socolofsky SA, Adams EE, King T, Lee K (2014) Evolution of droplets in subsea oil and gas blowouts: development and validation of the numerical model
VDROP-J. Mar Pollut Bull 83(1):58–69. https://doi.org/10.1016/j.marpolbul.2014.04.020
Zhao L, Boufadel MC, Adams EE, Socolofsky SA, King T, Lee K, Nedwed T (2015) Simulation
of scenarios of oil droplet formation from the Deepwater Horizon blowout. Mar Pollut Bull
101(1):304–319. https://doi.org/10.1016/j.marpolbul.2015.10.068
9 Dynamic Coupling of Near-Field and Far-Field Models
Reddy CM, Arey JS, Seewald JS, Sylva SP, Lemkau KL, Nelson RK, Carmichael CA, McIntyre
CP, Fenwick J, Ventura GT, Van Mooy AS, Camilli R (2012) Composition and fate of gas and
oil released to the water column during the Deepwater Horizon oil spill. Proc Natl Acad Sci
109(50):20229–20234. https://doi.org/10.1073/pnas.1101242108
Reed M, Johansen O, Brandvik PJ, Daling P, Lewis A, Fiocco R, Mackay D, Prentki R (1999) Oil
spill modeling towards the close of the 20th century: overview of the state of the art. Spill Sci
Technol Bull 5:3–16. https://doi.org/10.1016/S1353-2561(98)00029-2
Romero IC, Schwing PT, Brooks GR, Larson RA, Hastings DW, Ellis G, Goddard EA, Hollander
DJ (2015) Hydrocarbons in deep-sea sediments following the 2010 Deepwater Horizon blowout in the northeast Gulf of Mexico. PLoS ONE 10(5):e0128371. https://doi.org/10.1371/journal.pone.0128371
Ryerson TB, Camilli R, Kessler JD, Kujawinski EB, Reddy CM, Valentine DL, Atlas E, Blake DR,
de Gout J, Meinardi S, Parrish DD, Peischl J, Seewald JS, Warneke C (2012) Chemical data
quantify Deepwater Horizon hydrocarbon flow rate and environmental distribution. Proc Natl
Acad Sci 109(50):20246–20253. https://doi.org/10.1073/pnas.1110564109
Schedler M, Hiessl R, Valladares Juárez AG, Gust G, Müller R (2014) Effect of high pressure on hydrocarbon-degrading bacteria. AMB Express 4(1):1–7. https://doi.org/10.1186/
s13568-014-0077-0
Scoma A, Barbato M, Hernandez-Sanabria E, Mapelli F, Daffonchio D, Borin S, Boon N (2016)
Microbial oil-degradation under mild hydrostatic pressure (10 MPa): which pathways
are impacted in piezosensitive hydrocarbonoclastic bacteria? Sci Rep 6:1–14. https://doi.
org/10.1038/srep23526
Socolofsky SA, Adams EE (2002) Multi-phase plumes in uniform and stratified crossflow.
J Hydraul Res 40(6):661–672
Socolofsky SA, Dissanayake AL (2016) Bent plume model source code for the Texas A&M Oilspill
Calculator (TAMOC). Center for the Integrated Modeling and Analysis of Gulf Ecosystems
II (C- IMAGE II), Gulf of Mexico Research Initiative Information and Data Cooperative
(GRIIDC). https://data.gulfresearchinitiative.org/data/R4.x267.000:000333
Socolofsky SA, Adams EE, Sherwood CR (2011) Formation dynamics of subsurface hydrocarbon
intrusions following the deepwater horizon blowout. Geophys Res Lett 38(9):L09602
Socolofsky SA, Adams EE, Boufadel MC, Aman ZM, Johansen Ø, Konkel WJ, Lindo D, Madsen
MN, North EW, Paris CB, Rasmussen D, Reed M, Rønningen P, Sim LH, Uhrenholdt T,
Anderson KG, Cooper C, Nedwed TJ (2015) Intercomparison of oil spill prediction models
for accidental blowout scenarios with and without subsea chemical dispersant injection. Mar
Pollut Bull 96(1–2):110–126. https://doi.org/10.1016/j.marpolbul.2015.05.039
Stout SA, Payne JR, Emsbo-Mattingly SD, Baker G (2016) Weathering of field-collected floating
and stranded Macondo oils during and shortly after the Deepwater Horizon oil spill. Mar Pollut
Bull 105(1):7–22. https://doi.org/10.1016/j.marpolbul.2016.02.044
Turner JS (1968) The influence of molecular diffusivity on turbulent entrainment across a density
interface. J Fluid Mech 33:639–656
Wang B, Socolofsky SA, CCK L, Adams EE, Boufadel MC (2018) Behavior and dynamics of
bubble breakup in gas pipeline leaks and accidental subsea oil well blowouts. Mar Pollut Bull
131:72–86. https://doi.org/10.1016/j.marpolbul.2018.03.053
Yapa PD, Zheng L, Chen F (2001) A model for Deepwater oil/gas blowouts. Mar Pollut Bull
43(7–12):234–241. https://doi.org/10.1016/S0025-326X(01)00086-8
Yapa PD, Dasanayaka LK, Bandara UC, Nakata K (2010) A model to simulate the transport and
fate of gas and hydrates released in deepwater. J Hydraul Res 48(5):559–572. https://doi.org/1
0.1080/00221686.2010.507010
Zhao L, Boufadel MC, Socolofsky SA, Adams EE, King T, Lee K (2014) Evolution of droplets in subsea oil and gas blowouts: development and validation of the numerical model
VDROP-J. Mar Pollut Bull 83(1):58–69. https://doi.org/10.1016/j.marpolbul.2014.04.020
Zhao L, Boufadel MC, Adams EE, Socolofsky SA, King T, Lee K, Nedwed T (2015) Simulation
of scenarios of oil droplet formation from the Deepwater Horizon blowout. Mar Pollut Bull
101(1):304–319. https://doi.org/10.1016/j.marpolbul.2015.10.068
9 Dynamic Coupling of Near-Field and Far-Field Models
