Short description Полное описание
Li et al., 2019 Li, Q., Wu, H., Yang, H., & Zhang, Z., 2019. A numerical simulation of the generation and evolution of nonlinear internal waves across the Kara Strait. Acta Oceanologica Sinica, 38(5), pp.1–9. На карте
Sun et al., 2019 Sun, H., Zhao, W., Yang, Q., Cai, S., Liang, X., & Tian, J., 2019. Estimating Four-Dimensional Internal Wave Spectrum in the Northern South China Sea. Journal of Atmospheric and Oceanic Technology, 36(7), pp.1199–1216. На карте
Ramp et al., 2019 Ramp, S. R., Park, J.-H., Yang, Y. J., Bahr, F. L., & Jeon, C., 2019. Latitudinal Structure of Solitons in the South China Sea. Journal of Physical Oceanography, 49(7), pp.1747–1767. На карте
Karang et al., 2019 Karang, I.W.G.A., Chonnaniyah & Osawa, T., 2019. Internal solitary wave observations in the Flores Sea using the Himawari-8 geostationary satellite. International Journal of Remote Sensing, pp.1–17. На карте
Zeng et al., 2019 Zeng, Z., Chen, X., Yuan, C., Tang, S., & Chi, L., 2019. A numerical study of generation and propagation of type-a and type-b internal solitary waves in the northern South China Sea. Acta Oceanologica Sinica, 38(11), pp.20–30. На карте
Sun et al., 2019 Sun, L., Zhang, J. & Meng, J., 2019. A study of the spatial-temporal distribution and propagation characteristics of internal waves in the Andaman Sea using MODIS. Acta Oceanologica Sinica, 38(7), pp.121–128. На карте
Lai et al., 2019 Lai, Z., Jin, G., Huang, Y., Chen, H., Shang, X., & Xiong, X., 2019. The Generation of Nonlinear Internal Waves in the South China Sea: A Three‐Dimensional, Nonhydrostatic Numerical Study. Journal of Geophysical Research: Oceans, 124(12), pp.8949–8968. На карте
Bao et al., 2019 Bao, S., Meng, J., Sun, L., & Liu, Y., 2019. Detection of ocean internal waves based on Faster R-CNN in SAR images. Journal of Oceanology and Limnology, 38(1), pp.55–63. На карте
Jensen et al., 2020 Jensen, T. G., Magalhães, J., Wijesekera, H. W., Buijsman, M., Helber, R., & Richman, J., 2020. Numerical modelling of tidally generated internal wave radiation from the Andaman Sea into the Bay of Bengal. Deep Sea Research Part II: Topical Studies in Oceanography, 172, 104710. На карте
Yang et al., 2012 Yang, X., Li, X., Li, Z., Pichel, W., & Yu, Y., 2012. On the role of wind modulation of internal solitary wave signatures in SAR images. 2012 IEEE International Geoscience and Remote Sensing Symposium. На карте
Liu, 2016 Liu, B., 2016. Investigate the effect of tides on the internal wave mophorlogy and generation sites in the Sulu Sea using satellite images. 2016 IEEE International Geoscience and Remote Sensing Symposium (IGARSS). На карте
Guizien et al., 1998 Guizien, K., Ramirez, C., Barthelemy, E., & Renouard, D., 1998. The passing of long internal and external gravity wave over a step. Laboratory and in-situ measurements compared with analytical modelling. IEEE Oceanic Engineering Society. OCEANS’98. Conference Proceedings (Cat. No.98CH36259). На карте
Raju et al., 2019 Raju, N. J., Dash, M. K., Dey, S. P., & Bhaskaran, P. K., 2019. Potential generation sites of internal solitary waves and their propagation characteristics in the Andaman Sea—a study based on MODIS true-colour and SAR observations. Environmental Monitoring and Assessment, 191(S3). На карте
Mohanty et al., 2018 Mohanty, S., Rao, A.D. & Latha, G., 2018. Energetics of Semidiurnal Internal Tides in the Andaman Sea. Journal of Geophysical Research: Oceans, 123(9), pp.6224–6240. На карте
Mascarenhas, 1979 Mascarenhas, A. D. S., 1979. Characteristics of upper heated oceanic layer from satellite observations (Doctoral dissertation, Massachusetts Institute of Technology). На карте