[1] 韩曾萃, 尤爱菊, 徐有成, 等. 强潮河口环境和生态需水及其计算方法[J]. 水利学报, 2006, 37(4): 395−402. doi: 10.3321/j.issn:0559-9350.2006.04.003

Han Zengcui, You Aiju, Xu Youcheng, et al. Calculation methods of environmental and ecological water demand for macro-tidal estuary[J]. Journal of Hydraulic Engineering, 2006, 37(4): 395−402. doi: 10.3321/j.issn:0559-9350.2006.04.003
[2] 陆永军, 李浩麟, 王红川, 等. 强潮河口拦门沙航道回淤及治理措施[J]. 水利学报, 2005, 36(12): 1450−1456. doi: 10.3321/j.issn:0559-9350.2005.12.009

Lu Yongjun, Li Haolin, Wang Hongchuan, et al. Back silting and regulation of waterway with sand bar in strong tidal estuary[J]. Journal of Hydraulic Engineering, 2005, 36(12): 1450−1456. doi: 10.3321/j.issn:0559-9350.2005.12.009
[3] 白玉川, 张彬, 张胤祺, 等. 波浪挟沙能力及航道骤淤机理的研究[J]. 水利学报, 2007, 38(6): 646−653. doi: 10.3321/j.issn:0559-9350.2007.06.002

Bai Yuchuan, Zhang Bin, Zhang Yinqi, et al. Sediment-carrying capacity of wave and mechanism of sudden silting in navigation channel[J]. Journal of Hydraulic Engineering, 2007, 38(6): 646−653. doi: 10.3321/j.issn:0559-9350.2007.06.002
[4] Buschman F A, Hoitink A J F, van der Vegt M, et al. Subtidal water level variation controlled by river flow and tides[J]. Water Resources Research, 2009, 45(10): W10420.
[5] Godin G, Martínez A. Numerical experiments to investigate the effects of quadratic friction on the propagation of tides in a channel[J]. Continental Shelf Research, 1994, 14(7/8): 723−748.
[6] LeBlond P H. Forced fortnightly tides in shallow rivers[J]. Atmosphere-Ocean, 1979, 17(3): 253−264. doi: 10.1080/07055900.1979.9649064
[7] Savenije H H G. Salinity and Tides in Alluvial Estuaries[M]. 2nd ed. Delft, the Netherlands: Delft University of Technology Water Resources Section, 2012.
[8] Sassi M G, Hoitink A J F. River flow controls on tides and tide-mean water level profiles in a tidal freshwater river[J]. Journal of Geophysical Research: Oceans, 2013, 118(9): 4139−4151. doi: 10.1002/jgrc.20297
[9] Horrevoets A C, Savenije H H G, Schuurman J N, et al. The influence of river discharge on tidal damping in alluvial estuaries[J]. Journal of Hydrology, 2004, 294(4): 213−228. doi: 10.1016/j.jhydrol.2004.02.012
[10] 欧素英, 杨清书. 珠江三角洲网河区径流潮流相互作用分析[J]. 海洋学报, 2004, 26(1): 125−131.

Ou Suying, Yang Qingshu. Interaction of fluctuating river flow with a barotropic tide in river network of the Zhujiang Delta[J]. Haiyang Xuebao, 2004, 26(1): 125−131.
[11] 倪培桐, 韦惺, 吴超羽, 等. 珠江河口潮能通量与耗散[J]. 海洋工程, 2011, 29(3): 67−75. doi: 10.3969/j.issn.1005-9865.2011.03.009

Ni Peitong, Wei Xing, Wu Chaoyu, et al. Tidal energy flux and dissipation in the Pearl River estuary[J]. The Ocean Engineering, 2011, 29(3): 67−75. doi: 10.3969/j.issn.1005-9865.2011.03.009
[12] Jay D A, Leffler K, Diefenderfer H L, et al. Tidal-fluvial and estuarine processes in the Lower Columbia River: I. along-channel water level variations, Pacific Ocean to Bonneville Dam[J]. Estuaries and Coasts, 2015, 38(2): 415−433. doi: 10.1007/s12237-014-9819-0
[13] 路川藤, 陈志昌, 罗小峰. 长江感潮河段二维潮流数值模拟[J]. 水运工程, 2012(8): 11−15. doi: 10.3969/j.issn.1002-4972.2012.08.003

Lu Chuanteng, Chen Zhichang, Luo Xiaofeng. Two-dimensional tidal mathematical model in tidal river of Yangtze River[J]. Port & Waterway Engineering, 2012(8): 11−15. doi: 10.3969/j.issn.1002-4972.2012.08.003
[14] 路川藤, 罗小峰, 陈志昌. 长江潮流界对径流、潮差变化的响应研究[J]. 武汉大学学报: 工学版, 2016, 49(2): 201−205.

Lu Chuanteng, Luo Xiaofeng, Chen Zhichang. Study of current limit causing by runoff and tidal range in Yangtze River[J]. Engineering Journal of Wuhan University, 2016, 49(2): 201−205.
[15] 路川藤, 陈志昌, 罗小峰. 长江口北槽潮波传播变化特征研究[J]. 长江科学院院报, 2015, 32(8): 9−14.

Lu Chuanteng, Chen Zhichang, Luo Xiaofeng. Variation characteristics of tidal wave propagation in the north channel of Yangtze estuary[J]. Journal of Yangtze River Scientific Research Institute, 2015, 32(8): 9−14.
[16] 张智伟, 蒋陈娟, 李闪闪. 长江近口段水动力特征对来水变异的响应[J]. 海洋学研究, 2017, 35(1): 25−32. doi: 10.3969/j.issn.1001-909X.2017.01.003

Zhang Zhiwei, Jiang Chenjuan, Li Shanshan. Response of hydrodynamics in tidal reach of the Yangtze River to variation in runoff[J]. Journal of Marine Sciences, 2017, 35(1): 25−32. doi: 10.3969/j.issn.1001-909X.2017.01.003
[17] Kuang Cuiping, Chen Wei, Gu Jie, et al. River discharge contribution to sea-level rise in the Yangtze River Estuary, China[J]. Continental Shelf Research, 2017, 134: 63−75. doi: 10.1016/j.csr.2017.01.004
[18] Cai Huayang, Savenije H H G, Jiang Chenjuan, et al. Analytical approach for determining the mean water level profile in an estuary with substantial fresh water discharge[J]. Hydrology and Earth System Sciences, 2016, 20(3): 1177−1195. doi: 10.5194/hess-20-1177-2016
[19] 沈焕庭, 潘定安. 长江河口潮流特性及其对河槽演变的影响[J]. 华东师范大学学报: 自然科学版, 1979(1): 131−144.

Shen Huanting, Pan Dingan. The characteristics of tidal current an its effects on channel changes of the Yangtze estuary[J]. Journal of East China Normal University: Natural Science, 1979(1): 131−144.
[20] 谷国传, 胡方西. 长江径流与长江河口海平面关系[M]//陈吉余, 沈焕庭, 恽才兴. 长江河口动力过程和地貌演变. 上海: 上海科学技术出版社, 1988: 198-204.

Gu Guochuan, Hu Fangxi. Relationship Between sea level rise and river discharge in the Changjiang River[M]//Chen Jiyu, Shen Huanting, Yun Caixing. Hydrodynamics Processes and Morphological Evolution in the Changjiang Estuary. Shanghai: Shanghai Science and Technlogy Press, 1988: 198−204.
[21] 李国芳, 谭亚, 张秀菊. 感潮河段上游流量对潮位预报的影响[J]. 河海大学学报:自然科学版, 2006, 34(2): 144−147.

Li Guofang, Tan Ya, Zhang Xiuju. Influence of upstream discharge in tidal level prediction for tidal reaches[J]. Journal of Hohai University: Natural Sciences, 2006, 34(2): 144−147.
[22] 王文才, 李一平, 杜薇, 等. 长江感潮河段潮汐变化特征[J]. 水资源保护, 2017, 33(6): 121−124. doi: 10.3880/j.issn.1004-6933.2017.06.19

Wang Wencai, Li Yiping, Du Wei, et al. Tidal variation features of tidal reach of Changjiang River[J]. Water Resources Protection, 2017, 33(6): 121−124. doi: 10.3880/j.issn.1004-6933.2017.06.19
[23] 刘新成, 沈焕庭, 杨清书. 长江河口段潮差变化研究[J]. 华东师范大学学报:自然科学版, 1999(2): 89−94.

Liu Xincheng, Shen Huanting, Yang Qingshu. Analysis of tidal range in Changjang estuary[J]. Journal of East China Normal University: Natural Science, 1999(2): 89−94.
[24] 吴玲莉, 张玮. 长江下游感潮河段极值水位的周期分析[J]. 水运工程, 2009(4): 134−139. doi: 10.3969/j.issn.1002-4972.2009.04.029

Wu Lingli, Zhang Wei. Analysis of the periodicity of yearly extreme water level in the tidal reaches of the Yangtze River[J]. Port & Waterway Engineering, 2009(4): 134−139. doi: 10.3969/j.issn.1002-4972.2009.04.029
[25] 杨正东, 朱建荣, 王彪, 等. 长江河口潮位站潮汐特征分析[J]. 华东师范大学学报: 自然科学版, 2012(5): 111−119.

Yang Zhengdong, Zhu Jianrong, Wang Biao, et al. Analysis of tidal characteristics of the tide gauges in the Changjiang Estuary[J]. Journal of East China Normal University: Natural Science, 2012(5): 111−119.
[26] Guo Leicheng, van der Wegen M, Jay D A, et al. River-tide dynamics: exploration of nonstationary and nonlinear tidal behavior in the Yangtze River estuary[J]. Journal of Geophysical Research: Oceans, 2015, 120(5): 3499−3521. doi: 10.1002/2014JC010491
[27] 郭磊城, 朱春燕, 何青, 等. 长江河口潮波时空特征再分析[J]. 海洋通报, 2017, 36(6): 652−661. doi: 10.11840/j.issn.1001-6392.2017.06.007

Guo Leicheng, Zhu Chunyan, He Qing, et al. Examination of tidal wave properties in the Yangtze River estuary[J]. Marine Science Bulletin, 2017, 36(6): 652−661. doi: 10.11840/j.issn.1001-6392.2017.06.007
[28] 宋永港, 朱建荣, 吴辉. 长江河口北支潮位与潮差的时空变化和机理[J]. 华东师范大学学报:自然科学版, 2011(6): 10−19.

Song Yonggang, Zhu Jianrong, Wu Hui. Spatial and temporal variations and mechanism of the tidal level and range in the North Branch of the Changjiang Estuary[J]. Journal of East China Normal University: Natural Science, 2011(6): 10−19.
[29] Lu Sheng, Tong Chaofeng, Lee D Y, et al. Propagation of tidal waves up in Yangtze Estuary during the dry season[J]. Journal of Geophysical Research: Oceans, 2015, 120(9): 6445−6473. doi: 10.1002/2014JC010414
[30] Savenije H H G, Veling E J M. Relation between tidal damping and wave celerity in estuaries[J]. Journal of Geophysical Research: Oceans, 2005, 110(C4): C04007.