62
References
Adams EE, Socolofsky SA (2004) Review of deep oil spill modeling activity supported by the
DeepSpill JIP and offshore operators committee: Final Report. 26 pp
Ahmed TH (2010) Reservoir engineering handbook, 4th edn. Gulf Professional, Oxford
Aman ZM, Paris CB, May EF, Johns ML, Lindo-Atichati D (2015) High-pressure visual experimental studies of oil-in-water dispersion droplet size. Chem Eng Sci 127:392–400. https://doi.
org/10.1016/j.ces.2015.01.058
Belore R (2014) Subsea chemical dispersant research. In: Proceedings of the 37th AMOP technical
seminar on environmental contamination and response, Canmore, Alberta
Booth CP, Leggoe JW, Aman ZM (2018) The use of computational fluid dynamics to predict the
turbulent dissipation rate and droplet size in a stirred autoclave. Chem Eng Sci. In Press
Boufadel MC, Gao F, Zhao L, Özgökmen T, Miller R, King T, Robinson B, Lee K, Leifer I (2018)
Was the Deepwater Horizon well discharge churn flow?: implications on the estimation of
the oil discharge and droplet size distribution. Geophys Res Lett 45:2396–2403. https://doi.
org/10.1002/2017GL076606
Boxall JA, Koh CA, Sloan ED, Sum AK, Wu DT (2012) Droplet size scaling of water-in-oil emulsions under turbulent flow. Langmuir 28:104–110. https://doi.org/10.1021/la202293t
Brandvik PJ, Johansen Ø, Leirvik F, Farooq U, Daling PS (2013) Droplet breakup in subsurface oil
releases – part 1: Experimental study of droplet breakup and effectiveness of dispersant injection. Mar Pollut Bull 73:319–326. https://doi.org/10.1016/j.marpolbul.2013.05.020
Brandvik PJ, Davies EJ, Storey C, Leirvik F, Krause DF (2017) Subsurface oil releases –
verification of dispersant effectiveness under high pressure using combined releases of
live oil and natural gas, SINTEF report no: A27469. Trondheim Norway 2016. ISBN:
978-821405857-4
Davies EJ, Brandvik PJ, Leirvik F, Nepstad R (2017) The use of wide-band transmittance imaging
to size and classify suspended particulate matter in seawater. Mar Pollut Bull 115:105–114.
https://doi.org/10.1016/j.marpolbul.2016.11.063
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 50:7397–7408. https://doi.org/10.1021/acs.est.5b04617
Hsiang L-P, Faeth GM (1992) Near-limit drop deformation and secondary breakup. Int J Multiphase
Flow 18:635–652
Jaggi A, Snowdon RW, Stopford A, Radović JR, Oldenburg TB, Larter SR (2017) Experimental
simulation of crude oil-water partitioning behavior of BTEX compounds during a deep submarine oil spill. Org Geochem 108:1–8. https://doi.org/10.1016/j.orggeochem.2017.03.006
Johansen Ø, Rye H, Melbye AG, Jensen HV, Serigstad B, Knutsen T (2000) Deep spill JIP - experimental discharges of gas and oil at Helland Hansen – June 2000, Technical Report
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 73:327–335. https://doi.org/10.1016/j.marpolbul.2013.04.012
Kundu PK, Cohen IM, Dowling DR (2016) Fluid mechanics, Sixth edition. Academic Press,
Oxford
Lake LW, Fanchi JR (2006) Petroleum engineering handbook. Society of Petroleum Engineers,
Richardson
Lefebvre AH, McDonell VG (2017) Atomization and sprays, Second edition. CRC Press, Boca
Raton
Lehr W, Socolofsky SA (2020) The importance of understanding fundamental physics and chemistry of deep oil blowouts (Chap. 2). In: Murawski SA, Ainsworth C, Gilbert S, Hollander D,
Paris CB, Schlüter M, Wetzel D (eds) Deep oil spills: facts, fate, effects. Springer, Cham
Lehr B, Aliseda A, Bommer P, Espina P, Flores O, Lasheras JC, Leifer I, Possolo A, Riley J, Savas
O, Shaffer F, Wereley S, Yapa PD (2010) Deepwater Horizon Release: estimate of rate by PIV,
July 21, 2010, Accessed on October 29, 2018. https://www.doi.gov/sites/doi.gov/files/migrated/
K. Malone et al.
References
Adams EE, Socolofsky SA (2004) Review of deep oil spill modeling activity supported by the
DeepSpill JIP and offshore operators committee: Final Report. 26 pp
Ahmed TH (2010) Reservoir engineering handbook, 4th edn. Gulf Professional, Oxford
Aman ZM, Paris CB, May EF, Johns ML, Lindo-Atichati D (2015) High-pressure visual experimental studies of oil-in-water dispersion droplet size. Chem Eng Sci 127:392–400. https://doi.
org/10.1016/j.ces.2015.01.058
Belore R (2014) Subsea chemical dispersant research. In: Proceedings of the 37th AMOP technical
seminar on environmental contamination and response, Canmore, Alberta
Booth CP, Leggoe JW, Aman ZM (2018) The use of computational fluid dynamics to predict the
turbulent dissipation rate and droplet size in a stirred autoclave. Chem Eng Sci. In Press
Boufadel MC, Gao F, Zhao L, Özgökmen T, Miller R, King T, Robinson B, Lee K, Leifer I (2018)
Was the Deepwater Horizon well discharge churn flow?: implications on the estimation of
the oil discharge and droplet size distribution. Geophys Res Lett 45:2396–2403. https://doi.
org/10.1002/2017GL076606
Boxall JA, Koh CA, Sloan ED, Sum AK, Wu DT (2012) Droplet size scaling of water-in-oil emulsions under turbulent flow. Langmuir 28:104–110. https://doi.org/10.1021/la202293t
Brandvik PJ, Johansen Ø, Leirvik F, Farooq U, Daling PS (2013) Droplet breakup in subsurface oil
releases – part 1: Experimental study of droplet breakup and effectiveness of dispersant injection. Mar Pollut Bull 73:319–326. https://doi.org/10.1016/j.marpolbul.2013.05.020
Brandvik PJ, Davies EJ, Storey C, Leirvik F, Krause DF (2017) Subsurface oil releases –
verification of dispersant effectiveness under high pressure using combined releases of
live oil and natural gas, SINTEF report no: A27469. Trondheim Norway 2016. ISBN:
978-821405857-4
Davies EJ, Brandvik PJ, Leirvik F, Nepstad R (2017) The use of wide-band transmittance imaging
to size and classify suspended particulate matter in seawater. Mar Pollut Bull 115:105–114.
https://doi.org/10.1016/j.marpolbul.2016.11.063
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 50:7397–7408. https://doi.org/10.1021/acs.est.5b04617
Hsiang L-P, Faeth GM (1992) Near-limit drop deformation and secondary breakup. Int J Multiphase
Flow 18:635–652
Jaggi A, Snowdon RW, Stopford A, Radović JR, Oldenburg TB, Larter SR (2017) Experimental
simulation of crude oil-water partitioning behavior of BTEX compounds during a deep submarine oil spill. Org Geochem 108:1–8. https://doi.org/10.1016/j.orggeochem.2017.03.006
Johansen Ø, Rye H, Melbye AG, Jensen HV, Serigstad B, Knutsen T (2000) Deep spill JIP - experimental discharges of gas and oil at Helland Hansen – June 2000, Technical Report
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 73:327–335. https://doi.org/10.1016/j.marpolbul.2013.04.012
Kundu PK, Cohen IM, Dowling DR (2016) Fluid mechanics, Sixth edition. Academic Press,
Oxford
Lake LW, Fanchi JR (2006) Petroleum engineering handbook. Society of Petroleum Engineers,
Richardson
Lefebvre AH, McDonell VG (2017) Atomization and sprays, Second edition. CRC Press, Boca
Raton
Lehr W, Socolofsky SA (2020) The importance of understanding fundamental physics and chemistry of deep oil blowouts (Chap. 2). In: Murawski SA, Ainsworth C, Gilbert S, Hollander D,
Paris CB, Schlüter M, Wetzel D (eds) Deep oil spills: facts, fate, effects. Springer, Cham
Lehr B, Aliseda A, Bommer P, Espina P, Flores O, Lasheras JC, Leifer I, Possolo A, Riley J, Savas
O, Shaffer F, Wereley S, Yapa PD (2010) Deepwater Horizon Release: estimate of rate by PIV,
July 21, 2010, Accessed on October 29, 2018. https://www.doi.gov/sites/doi.gov/files/migrated/
K. Malone et al.
