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 |