高超

发布时间:2026-07-31浏览次数:94

一作/通讯*

[1] Gao, C., Lazarus, E. D., D’Alpaos, A., Ghinassi, M., Ielpi, A., Parker, G., ... & Finotello, A. (2024). Morphometry of tidal meander cutoffs indicates similarity to fluvial morphodynamics. Geophysical Research Letters, 51(1), e2023GL105893.

[2] Gao, C., Wang, Y. P., Li, Z., Liu, C. Q., & Gao, S. (2024). Hydrodynamics of meander chute cutoffs in microtidal mudflats. Water Resources Research60(6), e2024WR037129.

[3] Gao, C., Finotello, A., D’Alpaos, A., Ghinassi, M., Carniello, L., Pan, Y., ... & Wang, Y. P. (2022). Hydrodynamics of meander bends in intertidal mudflats: a field study from the macrotidal Yangkou Coast, China. Water Resources Research58(12), e2022WR033234.

[4] Gao, C., Finotello, A., Chen, Y., Yang, Z., Chen, S., Gao, S., & Wang, Y. P. (2024). Hydroacoustic measurements highlight channel impact on macrotidal mudflat morphodynamics. Catena246, 108361.

[5] Gao, C., Finotello, A., & Wang, Y. P. (2022). Predominant landward skewing of tidal meanders. Earth Surface Processes and Landforms47(13), 3199-3215.

[6] Gao, C., & Wang, S. (2019). Evolution of the gravel-bedded anastomosing river within the Qihama reach of the First Great Bend of the Yellow River. Journal of Geographical Sciences29(2), 306-320.

[7] Chen, J., Gao, C.*, Gu, Y.*, Ou, X., Cheng, X., Zhu, S., & Wang, Y. P. (2026). Geomorphology-constrained bathymetric inversion of turbid tidal channels using centerline-network priors and machine learning. International Journal of Applied Earth Observation and Geoinformation152, 105465.

[8] Chen, D., Li, G., Tang, J., Zhao, L., Wang, Y. P.*, & Gao, C*. (2024). Evaluating the effects of laver cultivation on tidal flat erosion: Toward sustainable environmental practices. Journal of Environmental Management366, 121830.

[9] Lu, T., Wang, Y. P.*, Jin, J., Zhu, S., Gao, J., Ding, H., ... & Gao, C*. (2026). Harnessing Machine learning to quantify ecosystem services in coastal Wetlands: A case study of the Bohai economic Rim. Ecosystem Services78, 101818.

[10] 高超, 王随继. 1990年以来黄河第一湾齐哈玛河段砾质网状河的演变特征. 地理学报, 2018, 73(7): 1352-1364.

[11] 高超, 王随继. 黄河青藏高原网状河段不同流量下活动河道的分布规律. 地理科学, 2018, 38(4): 618-627

合作参与

[1] Puppin, A., Tognin, D., Ghinassi, M., D’Alpaos, A., Lazarus, E. D., Gao, C., & Finotello, A. (2025). Rapid infill of abandoned tidal channels creates hotspots for bluecarbon accumulation in coastal wetlands. Geophysical Research Letters52(7), e2024GL113705.

[2] Pan, Y., Wang, Y. P., Cai, W., Liu, S., Xing, F., Gao, J., Yu, Y., Gao, C., Yang, Z. (2025). Sedimentary response of the modern Huanghe (Yellow River) delta front to water-sediment regulation schemes: Insights into hyperpycnal flow dynamics and delta stability. Journal of Hydrology: Regional Studies62, 102909.

[3] Liu, Z., Xue, L., Gao, C., Shi, B., Wang, Y. P., & Gao, S. (2024). Impact of mild winds on morphological evolution in a macrotidal tidal flat-channel system: a case study from Rudong, Jiangsu, China. Geo-Marine Letters44(4), 26.

[4] Lu, T., Wang, Y. P., Quan, Q., Gao, C., & Gao, S. (2023). Wave heights from sea surface and bottom measurements: Variations with different water depths. Ocean Engineering287, 115848.

[5] Yang, Z., Finotello, A., Goodwin, G., Gao, C., Mudd, S. M., Lague, D., ... & D'Alpaos, A. (2022). Seaward expansion of salt marshes maintains morphological self-similarity of tidal channel networks. Journal of Hydrology615, 128733.

[6] Liu, S., She, D., Gao, C., Amatulli, G., Wang, L., Lu, X., ... & Xia, X. (2021). Groundwater as a limited carbon dioxide source in a large river (the Yangtze River). Science of the Total Environment760, 143336.

[7] 张忍顺,高超,汪亚平.公元9世纪以来长江潮区界的迁移过程重建.古地理学报,2020,22(6):1221-1232.