个人简介
姓 名: 孙文金
职 称: 副教授
最高学历: 理学博士
主讲课程: 《海洋数值模拟》、《海洋中的数学物理方法》 、《地球流体动力学》、《实验地球流体力学》 、《海洋要素分析与预报》
主要研究领域: 海洋中尺度涡旋;涡致混合;涡旋参数化;海洋热浪;人工智能海洋学;台风与波浪相互作用
研究生招生专业:
物理海洋学
学术兼职:
1)南方海洋科学与工程广东省实验室(珠海),深海远洋多尺度动力过程创新团队骨干成员
2)自然资源部第二海洋研究所青年“海星学者”
近期科研项目:
4)、国家重点研发计划子课题《区域高分辨率风-浪-流耦合的新型台风模式的研发》,2025.01 ~ 2027.12,参与,骨干
3)、国家自然科学基金重大项目《洋际相互作用对西北太平洋海洋热浪的影响及其机理》,2022.01~2026.12,参与,骨干
2)、国家自然科学基金,青年基金《黑潮—亲潮延伸体海域“异常”中尺度涡生消机制的研究》,2020.01--2022.12,结题,主持
1)、中国博士后基金面上项目《南大洋紧致中尺度涡旋对厚度扩散率影响的研究》,2018.10~2019.06,结题,主持
论文发表情况:
2026年
(47) Wang, Y., Sun, W., Xie, M., Pan, Y., & Dong, C. (2026). Three-dimensional structural characteristics and geometric morphology ofmarine heatwaves in the South China Sea. Ocean Modelling, 102752
(46) Sun, W., Wang, Y., & Dong, C. (2026). Exploring the connection of marine heatwaves and mesoscale eddies in the South China Sea. Journal of Oceanology and Limnology, 44(3), 921–935. https://doi.org/10.1007/s00343-025-4332-9
(45) Xie, M., Sun, W., Han, Y., & Dong, C. (2026). An interpretable significant wave height forecasting model using a causal AI framework with error correction. Ocean Engineering, 348, 124135. https://doi.org/10.1016/j.oceaneng.2025.124135
(44) Liu, C., Wang, Z., Chen, D., Han, X., Leng, H., Liang, X., Yan, L., Li, X., Stevens, C., Hogg, A. M., Kusahara, K., Yamazaki, K., Ohshima, K. I., Zhou, M., Cheng, X., Wang, D., Dong, C., Liu, J., Yang, Q., … Li, Q. (2026). The coupled Southern Ocean–sea ice–ice shelf model (SOSIM v1.0): Configuration and evaluation. Geoscientific Model Development, 19(7), 2985–3033. https://doi.org/10.5194/gmd-19-2985-2026
(43) Xie, M., Sun, W., Han, Y., & Dong, C. (2026). Interpretable significant wave height prediction in the South China Sea using PCMCI-driven fused causal neural networks. Journal of Ocean Engineering and Science. Advance online publication. https://doi.org/10.1016/j.joes.2026.06.002
(42) Sun, W., Wang, Y., Yang, J., Hu, Y., & Dong, C. (2026). Wind-sea–swell separation reveals outer-region swell hazards for deep-ocean operations under western North Pacific tropical cyclones. Environmental Research Letters, 21(13), 134024. https://doi.org/10.1088/1748-9326/ae8319
(41) Sun, W., Li, J., Cui, T., Yang, J., & Dong, C. (2026). Low cross-product agreement in global coastal marine heatwaves (1982–2023) and implications for trend attribution. Geophysical Research Letters, 53(14), e2026GL124134. https://doi.org/10.1029/2026GL124134
2025年
(40) Liu, C., Wang, Z., Liang, X., Li, X., Han, X., Sun, W., Wu, Y., Li, X., & Cheng, C. (2025). The instabilities of the Antarctic slope current in an idealized model. Journal of Marine Systems, 247, 104034. https://doi.org/10.1016/j.jmarsys.2024.104034
(39) Bethel, B. J., Dong, C., Zhou, S., Sun, W., & Bao, Y. (2025). Assessing long short-term memory network significant wave height forecast efficacy in the Caribbean Sea and Northwestern Atlantic Ocean. Ocean Engineering, 317, 120045. https://doi.org/10.1016/j.oceaneng.2024.120045
(38) Zhang, N., Lan, J., Sun, W., & Dong, C. (2025). Contrasting impacts of two types of El Niño on interannual variations of marine heatwaves in the South China Sea. Journal of Geophysical Research: Oceans, 130(3), e2024JC021991. https://doi.org/10.1029/2024JC021991
(37) Dong, C., You, Z., Dong, J., Ji, J., Sun, W., Xu, G., Lu, X., Xie, H., Teng, F., Liu, Y., Xu, A., Wang, Q., Xia, Q., Lin, X., Fu, M., Wang, J., Cao, Y., & Han, G. (2025). Oceanic mesoscale eddies. Ocean-Land-Atmosphere Research, 4, 0081. https://doi.org/10.34133/olar.0081
(36) Pan, Y., Sun, W., Bao, S., Xie, M., Jiang, L., Ji, J., Yu, Y., & Dong, C. (2025). Global variability and future projections of marine heatwave onset and decline rates. Remote Sensing, 17(8), 1362. https://doi.org/10.3390/rs17081362
(35) Su, S., Fu, Y.-X., Sun, W., & Dong, J. (2025). Marine heatwaves and cold spells accompanied by mesoscale eddies globally. Remote Sensing, 17(14), 2468. https://doi.org/10.3390/rs17142468
(34) Xie, M., Sun, W., Han, Y., & Dong, C. (2025). Causal matrix long short-term memory network for interpretable significant wave height forecasting. Journal of Marine Science and Engineering, 13(10), 1872. https://doi.org/10.3390/jmse13101872
2024年
(33) Zhang, Q., Sun, W., Guo, H., Dong, C., & Zheng, H. (2024). A transfer learning-enhanced generative adversarial network for downscaling sea surface height through heterogeneous data fusion. Remote Sensing, 16(5), 763. https://doi.org/10.3390/rs16050763
(32) Fu, M., Han, G., Lu, X., Sun, W., Sommeria, J., Stegner, A., Caldeira, R. M. A., & Dong, C. (2024). Analysis of vortex merging from a rotating tank laboratory experiment. Progress in Oceanography, 222, 103227. https://doi.org/10.1016/j.pocean.2024.103227
(31) Li, C., Sun, W., Ji, J., & Zhu, Y. (2024). Historical marine cold spells in the South China Sea: Characteristics and trends. Remote Sensing, 16(7), 1171. https://doi.org/10.3390/rs16071171
(30) Sun, W., Yang, Y., Wang, Y., Yang, J., Ji, J., & Dong, C. (2024). Characterization and future projection of marine heatwaves under climate change in the South China Sea. Ocean Modelling, 188, 102322. https://doi.org/10.1016/j.ocemod.2024.102322
(29) Gao, X., Han, G., Sun, W., Zhou, S., Xie, W., Cen, H., Ji, J., Wang, H., & Dong, C. (2024). Application of deep learning in estimating the convective mixing induced by brine rejection. Ocean Modelling, 188, 102314. https://doi.org/10.1016/j.ocemod.2024.102314
(28) Xu, G., Xie, W., Lin, X., Liu, Y., Hang, R., Sun, W., Liu, D., & Dong, C. (2024). Detection of three-dimensional structures of oceanic eddies using artificial intelligence. Ocean Modelling, 190, 102385. https://doi.org/10.1016/j.ocemod.2024.102385
(27) Zhou, S., Wang, J., Cao, Y., Bethel, B. J., Xie, W., Xu, G., Sun, W., Yu, Y., Zhang, H., & Dong, C. (2024). Improving the accuracy of global ECMWF wave height forecasts with machine learning. Ocean Modelling, 192, 102450. https://doi.org/10.1016/j.ocemod.2024.102450
(26) Sun, W., Wang, Y., Yang, Y., Yang, J., Ji, J., & Dong, C. (2024). Marine heatwaves/cold-spells associated with mixed layer depth variation globally. Geophysical Research Letters, 51, e2024GL112325. https://doi.org/10.1029/2024GL112325
2023年
(25) Sun, W., An, M., Liu, J., Liu, J., Yang, J., Tan, W., Lim Kam Sian, K. T. C., Ji, J., Liu, Y., & Dong, C. (2023). Comparative analysis of four types of mesoscale eddies in the North Pacific Subtropical Countercurrent region—Part II: Seasonal variation. Frontiers in Marine Science, 10, 1121731. https://doi.org/10.3389/fmars.2023.1121731
(24) Zhao, B.-J., Jiang, Z.-M., & Sun, W. (2023). A new combined ZK-mZK dynamic model for Rossby solitary wave. Thermal Science, 27, 599–606. https://doi.org/10.2298/TSCI2301599Z
(23) Li, J., Tan, W., Sun, W., Yang, L., Lin, L., & Fu, Q. (2023). Seasonal–interannual–decadal variations of sea level in the South China Sea and connections with the tropical–subtropical Pacific. International Journal of Climatology, 43(11), 5196–5207. https://doi.org/10.1002/joc.8140
(22) Sun, W., Zhou, S., Yang, J., Gao, X., Ji, J., & Dong, C. (2023). Artificial intelligence forecasting of marine heatwaves in the South China Sea using a combined U-Net and ConvLSTM system. Remote Sensing, 15(16), 4068. https://doi.org/10.3390/rs15164068
(21) Fu, M., Dong, C., Dong, J., & Sun, W. (2023). Analysis of mesoscale eddy merging in the subtropical Northwest Pacific using satellite remote sensing data. Remote Sensing, 15(17), 4307. https://doi.org/10.3390/rs15174307
(20) Sun, W., Yin, L., Pei, Y., Shen, C., Yang, Y., Ji, J., Yang, J., & Dong, C. (2023). Marine heatwaves in the Western North Pacific region: Historical characteristics and future projections. Deep Sea Research Part I: Oceanographic Research Papers, 200, 104161. https://doi.org/10.1016/j.dsr.2023.104161
2022年
(19) Bethel, B. J., Sun, W., Dong, C., & Wang, D. (2022). Forecasting hurricane-forced significant wave heights using a long short-term memory network in the Caribbean Sea. Ocean Science, 18(2), 419–436. https://doi.org/10.5194/os-18-419-2022
(18) Zhang, L., Liu, C., Sun, W., Wang, Z., Liang, X., Li, X., & Cheng, C. (2022). Modeling mesoscale eddies generated over the continental slope, East Antarctica. Frontiers in Earth Science, 10, 916398. https://doi.org/10.3389/feart.2022.916398
(17) Bethel, B. J., Dong, C., Zhou, S., Sun, W., & Bao, Y. (2022). Assessing long short-term memory network significant wave height forecast efficacy in the Caribbean Sea and Atlantic Ocean (SSRN Scholarly Paper No. 4153300). Social Science Research Network. https://doi.org/10.2139/ssrn.4153300
(16) Dong, C., Liu, L., Nencioli, F., Bethel, B. J., Liu, Y., Xu, G., Ma, J., Ji, J., Sun, W., Shan, H., Lin, X., & Zou, B. (2022). The near-global ocean mesoscale eddy atmospheric-oceanic-biological interaction observational dataset. Scientific Data, 9, 436. https://doi.org/10.1038/s41597-022-01550-9
(15) Sun, W., & Dong, C. (2022). Isopycnal and diapycnal mixing parameterization schemes for submesoscale processes induced by mesoscale eddies. Deep Sea Research Part II: Topical Studies in Oceanography, 202, 105139. https://doi.org/10.1016/j.dsr2.2022.105139
(14) Sun, W., An, M., Liu, J., Liu, J., Yang, J., Tan, W., Dong, C., & Liu, Y. (2022). Comparative analysis of four types of mesoscale eddies in the Kuroshio-Oyashio Extension region. Frontiers in Marine Science, 9, 984244. https://doi.org/10.3389/fmars.2022.984244
(13) An, M., Liu, J., Liu, J., Sun, W., Yang, J., Tan, W., Lim Kam Sian, K. T. C., Ji, J., & Dong, C. (2022). Comparative analysis of four types of mesoscale eddies in the North Pacific Subtropical Countercurrent region—Part I: Spatial characteristics. Frontiers in Marine Science, 9, 1004300. https://doi.org/10.3389/fmars.2022.1004300
(12) Yang, Y., Sun, W., Yang, J., Lim Kam Sian, K. T. C., Ji, J., & Dong, C. (2022). Analysis and prediction of marine heatwaves in the Western North Pacific and Chinese coastal region. Frontiers in Marine Science, 9, 1048557. https://doi.org/10.3389/fmars.2022.1048557
2021年
(11) Zhou, S., Bethel, B. J., Sun, W., Zhao, Y., Xie, W., & Dong, C. (2021). Improving significant wave height forecasts using a joint empirical mode decomposition–long short-term memory network. Journal of Marine Science and Engineering, 9(7), 744. https://doi.org/10.3390/jmse9070744
(10) Sun, W., Yang, J., Tan, W., Liu, Y., Zhao, B., He, Y., & Dong, C. (2021). Eddy diffusivity and coherent mesoscale eddy analysis in the Southern Ocean. Acta Oceanologica Sinica, 40(10), 1–16. https://doi.org/10.1007/s13131-021-1881-4
(9) Sun, W., Liu, Y., Chen, G., Tan, W., Lin, X., Guan, Y., & Dong, C. (2021). Three-dimensional properties of mesoscale cyclonic warm-core and anticyclonic cold-core eddies in the South China Sea. Acta Oceanologica Sinica, 40(10), 17–29. https://doi.org/10.1007/s13131-021-1770-x
2020年
(8) Zhao, B.-J., Cheng, L., & Sun, W. (2020). Solitary waves of two-layer quasi-geostrophic flow and analytical solutions with scalar nonlinearity. Dynamics of Atmospheres and Oceans, 89, 101129. https://doi.org/10.1016/j.dynatmoce.2019.101129
(7) Yang, X., Xu, G., Liu, Y., Sun, W., Xia, C., & Dong, C. (2020). Multi-source data analysis of mesoscale eddies and their effects on surface chlorophyll in the Bay of Bengal. Remote Sensing, 12(21), 3485. https://doi.org/10.3390/rs12213485
2019年
(6) Sun, W., Dong, C., Tan, W., & He, Y. (2019). Statistical characteristics of cyclonic warm-core eddies and anticyclonic cold-core eddies in the North Pacific based on remote sensing data. Remote Sensing, 11(2), 208. https://doi.org/10.3390/rs11020208
2018年
(5) Zhao, B.-J., Wang, R.-Y., Sun, W., & Yang, H. (2018). Combined ZK-mZK equation for Rossby solitary waves with complete Coriolis force and its conservation laws as well as exact solutions. Advances in Difference Equations, 2018, Article 42. https://doi.org/10.1186/s13662-018-1492-3
(4) Sun, W., Dong, C., Tan, W., Liu, Y., He, Y., & Wang, J. (2018). Vertical structure anomalies of oceanic eddies and eddy-induced transports in the South China Sea. Remote Sensing, 10(5), 795. https://doi.org/10.3390/rs10050795
2017年
(3) Sun, W., Dong, C., Wang, R., Liu, Y., & Yu, K. (2017). Vertical structure anomalies of oceanic eddies in the Kuroshio Extension region. Journal of Geophysical Research: Oceans, 122(2), 1476–1496. https://doi.org/10.1002/2016JC012226
(2) Zhao, B.-J., Sun, W., & Zhan, T.-M. (2017). The modified quasi-geostrophic barotropic models based on unsteady topography. Earth Sciences Research Journal, 21(1), 23–28. https://doi.org/10.15446/esrj.v21n1.63007
(1) Zhao, B.-J., Wang, R.-Y., Fang, Q., Sun, W., & Zhan, T.-M. (2017). Rossby solitary waves excited by the unstable topography in weak shear flow. Nonlinear Dynamics, 90(2), 889–897. https://doi.org/10.1007/s11071-017-3700-1
教育经历
[1] 临沂大学 | 物理学 | 理学学士 | 大学本科毕业
[2] 河海大学 | 物理海洋学 | 理学博士 | 博士研究生毕业
工作经历
[1] 2023.7- 至今
南京信息工程大学
|
海洋科学学院
|
副教授
[2] 2022.12- 2023.12
GEOMAR德国亥姆霍兹物理海洋研究所
|
海洋观测PO课题组
|
高级访问学者
[3] 2019.7- 2023.6
南京信息工程大学
|
海洋科学学院
|
讲师
[4] 2017.7- 2019.7
南京信息工程大学
|
海洋科学学院
|
博士后
合作导师:董昌明,何宜军
社会兼职
-
[1] 2019.7- 至今
南方海洋科学与工程广东省实验室(珠海),深海远洋多尺度动力过程创新团队骨干成员 -
[2] 2022.1- 至今
自然资源部第二海洋研究所 海星学者
研究方向
[1] 海洋热浪
[2] 海洋中尺度涡旋 涡致混合 黑潮延伸体 南海
其他联系方式
[3] 通讯/办公地址:
[6] 邮箱:
团队成员
团队名称:海洋数值模拟和观测实验室
