66
N. Makarenko et al.
3. Drazin, P. (2002). Introduction to hydrodynamic stabilitry. Cambridge, UK: Cambridge
University Press.
4. Gavrilyuk, S. L., Makarenko, N. I., & Sukhinin, S. V. (2017). Waves in continuous
media. In: Lecture Notes in Geosystem Mathematics and Computing. Cham, Switzerland:
Birkhäuser/Springer.
5. Grue, J., Jensen, A., Rusås, P. O., & Sveen, J. K. (2000). Breaking and broadening of internal
solitary waves. Journal of Fluid Mechanics, 413, 181–217.
6. Helfrich, K. R., & Melville, W. K. (2006). Long nonlinear internal waves. Annual Review of
Fluid Mechanics, 38, 395–425.
7. Kakutani, T., & Yamasaki, N. (1978). Solitary waves on a two-layer fluid. Journal of the Physical Society of Japan, 45, 674–679.
8. Lamb, K., & Wan, B. (1998). Conjugate flows and flat solitary waves for a continuously stratified fluid. Physics of Fluids, 10, 2061–2079.
9. LeBlond, P. H., & Mysak, L. A. (1978). Waves in the ocean. Amsterdam: Elsevier.
10. Long, R. R. (1965). On the Boussinesq approximation and its role in the theory of internal
waves. Tellus, 17(1), 46–52.
11. Makarenko, N. I., & Maltseva, J. L. (2008). An analytical model of large amplitude internal
solitary waves. In E. Pelinovsky & C. Kharif (Eds.), Extreme Ocean Waves (pp. 179–189).
Dordrecht: Springer.
12. Makarenko, N. I., & Maltseva, J. L. (2009a). Phase velocity spectrum of internal waves in a
weakly-stratified two-layer fluid. Fluid Dynamics, 44(2), 278–294.
13. Makarenko, N. I., & Maltseva, J. L. (2009b). Solitary waves in a weakly stratified two-layer
fluid. Journal of Applied Mechanics and Technical Physics, 50(2), 229–234.
14. Makarenko, N. I., Maltseva, J. L., & Kazakov, A. Y. (2009). Conjugate flows and amplitude
bounds for inernal solitary waves. Nonlinear Processes in Geophysics, 16, 169–178.
15. Miyata, M. (1985). An internal solitary wave of large amplitude. La Mer, 23(2), 43–48.
16. Morozov, E. G. (1995). Semidiurnal internal wave global field. Deep Sea Research, 42(1),
135–148.
17. Morozov, E., Demidov, A., Tarakanov, R., & Zenk, W. (2010). Abyssal channels in the Atlantic
Ocean: Water structure and flows. Dordrecht: Springer.
18. Morozov, E. G., Tarakanov, R Yu., Lyapidevskii, V Yu., & Makarenko, N. I. (2012). Abyssal
cataracts in the Romanche and Chain fracture zones. Doklady Earth Sciences, 446, 1211–14.
19. Ovsyannikov, L. V., Makarenko, N. I., Nalimov, V. I., et al. (1985). Nonlinear problems of the
theory of surface and internal waves. Novosibirsk: Nauka (in Russian).
20. Pelinovsky, E. N., Polukhina, O., Slyunaev, A., & Talipova, T. (2007). Internal solitary waves.
In R. Grimshaw (Ed.), Solitary waves in fluids (pp. 85–110). Southhampton: WIT Press.
21. Thorpe, S. A. (1985). Laboratory observations of secondary structures in Kelvin–Helmholtz
billows and consequences for ocean mixing. Geophysical & Astrophysical Fluid Dynamics,
34, 175–190.
22. Turner, J. S. (1973). Buoyancy effects in fluid. Cambridge UK: Cambridge University Press.
23. Turner, R. E. L., & VandenBroeck, J.-M. (1988). Broadening of interfacial solitary waves.
Physics of Fluids, 31, 2486–2490.
24. Van Haren, H., Gostiaux, L., Morozov, E., & Tarakanov, R. (2014). Extremely long Kelvin–
Helmholtz billow trains in the Romanche Fracture zone. Geophysical Research Letters, 44(23),
8445–8451.
25. Voronovich, A. G. (2003). Strong solitary internal waves in a 2.5- layer model. Journal of Fluid
Mechanics, 474, 85–94.
26. Yih, C. S. (1980). Stratified Flows. New York: Academic Press.
N. Makarenko et al.
3. Drazin, P. (2002). Introduction to hydrodynamic stabilitry. Cambridge, UK: Cambridge
University Press.
4. Gavrilyuk, S. L., Makarenko, N. I., & Sukhinin, S. V. (2017). Waves in continuous
media. In: Lecture Notes in Geosystem Mathematics and Computing. Cham, Switzerland:
Birkhäuser/Springer.
5. Grue, J., Jensen, A., Rusås, P. O., & Sveen, J. K. (2000). Breaking and broadening of internal
solitary waves. Journal of Fluid Mechanics, 413, 181–217.
6. Helfrich, K. R., & Melville, W. K. (2006). Long nonlinear internal waves. Annual Review of
Fluid Mechanics, 38, 395–425.
7. Kakutani, T., & Yamasaki, N. (1978). Solitary waves on a two-layer fluid. Journal of the Physical Society of Japan, 45, 674–679.
8. Lamb, K., & Wan, B. (1998). Conjugate flows and flat solitary waves for a continuously stratified fluid. Physics of Fluids, 10, 2061–2079.
9. LeBlond, P. H., & Mysak, L. A. (1978). Waves in the ocean. Amsterdam: Elsevier.
10. Long, R. R. (1965). On the Boussinesq approximation and its role in the theory of internal
waves. Tellus, 17(1), 46–52.
11. Makarenko, N. I., & Maltseva, J. L. (2008). An analytical model of large amplitude internal
solitary waves. In E. Pelinovsky & C. Kharif (Eds.), Extreme Ocean Waves (pp. 179–189).
Dordrecht: Springer.
12. Makarenko, N. I., & Maltseva, J. L. (2009a). Phase velocity spectrum of internal waves in a
weakly-stratified two-layer fluid. Fluid Dynamics, 44(2), 278–294.
13. Makarenko, N. I., & Maltseva, J. L. (2009b). Solitary waves in a weakly stratified two-layer
fluid. Journal of Applied Mechanics and Technical Physics, 50(2), 229–234.
14. Makarenko, N. I., Maltseva, J. L., & Kazakov, A. Y. (2009). Conjugate flows and amplitude
bounds for inernal solitary waves. Nonlinear Processes in Geophysics, 16, 169–178.
15. Miyata, M. (1985). An internal solitary wave of large amplitude. La Mer, 23(2), 43–48.
16. Morozov, E. G. (1995). Semidiurnal internal wave global field. Deep Sea Research, 42(1),
135–148.
17. Morozov, E., Demidov, A., Tarakanov, R., & Zenk, W. (2010). Abyssal channels in the Atlantic
Ocean: Water structure and flows. Dordrecht: Springer.
18. Morozov, E. G., Tarakanov, R Yu., Lyapidevskii, V Yu., & Makarenko, N. I. (2012). Abyssal
cataracts in the Romanche and Chain fracture zones. Doklady Earth Sciences, 446, 1211–14.
19. Ovsyannikov, L. V., Makarenko, N. I., Nalimov, V. I., et al. (1985). Nonlinear problems of the
theory of surface and internal waves. Novosibirsk: Nauka (in Russian).
20. Pelinovsky, E. N., Polukhina, O., Slyunaev, A., & Talipova, T. (2007). Internal solitary waves.
In R. Grimshaw (Ed.), Solitary waves in fluids (pp. 85–110). Southhampton: WIT Press.
21. Thorpe, S. A. (1985). Laboratory observations of secondary structures in Kelvin–Helmholtz
billows and consequences for ocean mixing. Geophysical & Astrophysical Fluid Dynamics,
34, 175–190.
22. Turner, J. S. (1973). Buoyancy effects in fluid. Cambridge UK: Cambridge University Press.
23. Turner, R. E. L., & VandenBroeck, J.-M. (1988). Broadening of interfacial solitary waves.
Physics of Fluids, 31, 2486–2490.
24. Van Haren, H., Gostiaux, L., Morozov, E., & Tarakanov, R. (2014). Extremely long Kelvin–
Helmholtz billow trains in the Romanche Fracture zone. Geophysical Research Letters, 44(23),
8445–8451.
25. Voronovich, A. G. (2003). Strong solitary internal waves in a 2.5- layer model. Journal of Fluid
Mechanics, 474, 85–94.
26. Yih, C. S. (1980). Stratified Flows. New York: Academic Press.
