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1.
白玉川  谢琦  徐海珏 《海洋通报》2019,38(2):141-149
本文利用 1962 年、1986 年以及 2015 年的三个典型年代的实测资料建立黄河口数学模型,并对河口潮流场和潮流特征进行模拟,借用 MATLAB 软件进行分潮调和分析,得到黄河口近 60 年潮流特征以及各个阶段的潮流演化过程,得出以下结论:(1) 1962 年河口流场较为平整,有明显切变锋形态,该阶段存在两个较为明显的高流速区并且潮流在河口处呈现为往复流;(2) 1986 年黄河三角洲岸线曲折多拐,从湾湾沟到清水沟滋生了多个小型高流速区群,并且潮流在滨海处呈现往复流的形态而在远海处为旋转流; (3) 2015 年涨落潮时潮流在河口处形成明显的环流,此时在沿线凸出沙嘴处会形成 3 个明显的高流速区,并且潮流在大部分区域呈现旋转流而在河口东北向远海处部分区域呈现往复流的特征.  相似文献   

2.
A three-dimensional semi-implicit finite volume numerical model has been developed and applied to study tidal circulation and salinity stratification in the region of Oujiang River Estuary, China. The model employs horizontally unstructured grids and boundary-fitted coordinate system in the vertical direction. Governing equations consisting of continuity, momentum, and transport equations are all solved in the integral form of the equations, which provides a better representation of the conservative laws for mass, momentum, and transport in the coastal region with complex geometry and bottom bathymetry. The model performance was firstly quantified with skill assessment statistics on the choice of different parameters and validated with observed tidal elevation, current velocity, direction and salinity data over a spring–neap tidal cycle collected in 2006. Numerical results show that the model with wetting–drying capability successfully simulated the tidal currents and salinity fields with a reasonable accuracy and indicate that the Oujiang River Estuary is a macrotidal estuary with strong tidal mixing. In addition, the model results also show that the Oujiang River Estuary is a well-mixed estuary during spring tide. Then, the numerical simulations were performed to compare the hydrodynamic process and salinity distribution before and after a river training, which was conducted by blocking the south branch of the Oujiang River mouth. The results reveal that with the only north access to the sea, the influence of the blocking project on the flood discharge capacity is limited and the incremental velocity is beneficial to the navigation channel maintenance, although it will cause some scour to the embankment. Furthermore, the redistribution of tidal prism passing in or out the north branch makes a little severe salinity intrusion during high tide or low tide. However, the salinity intrusion is still within acceptable range, although it can cause some adverse effect on water intaking of production and life. The variations of salinity levels in Yueqing Bay situated at the north of the river mouth are not obvious, so the blocking project will not bring damage to local aquiculture. However, significant changes of salinity happen inside or outside of the south branch, so enough attention need to be paid to the changes of environment caused by the salinity variation after the blocking project. Overall, by weighing advantages and disadvantages of the blocking project, it is feasible and the model can be considered as a tool for managing and studying estuarine circulation.  相似文献   

3.
钱塘江年最大涌潮几乎都发生在台风期间。基于实测潮汐资料,结合天文潮调和分析,研究台风对钱塘江河口涌潮起潮点下游河段潮汐的影响,探讨因潮汐变化间接引起的钱塘江涌潮变化。结果表明:台风引起低潮位、潮差、潮到时间、涨潮历时等变化,间接影响涌潮,造成涌潮高度、陡度、传播速度、到达时间和涌潮流速等变化。总体而言,台风期间盐官涌潮高度平均增大0.18 m,到达时间平均提早37 min;澉浦至盐官段涌潮传播速度平均增大8.9%,陡度变陡,流速有增有减,但单宽流量增大。  相似文献   

4.
The issue of sea level rise is receiving considerable attention all over the world. Although the Indian stations have shown mixed trends, a positive sea level trend has been noticed in the Hooghly Estuary, situated on the east coast of India. The Hooghly River serves as a navigable waterway to Calcutta and Haldia ports. The river is tidal for nearly 250 km. To study the water levels and tidal currents in the lower part of the Hooghly Estuary, from sea face at Sagar to Hooghly Point, a vertically integrated numerical model has been used. The model is fully nonlinear and uses a semiexplicit finite‐difference scheme to solve the basic hydrodynamic equations on a staggered grid. This model is coupled with a one‐dimensional model, which has been used for the upper estuary from Hooghly Point to Swarupganj, where the flow is unidirectional. The computed water levels and currents are found to be in good agreement with the available observations. This model is applied to study the alterations in tidal circulation for a rise and fall in the sea level. The results have shown a substantial increase in the amplitude and velocities of the tidal wave due to the sea level rise.  相似文献   

5.
近年来,随着长江流域来沙量的减少,河口水沙动力条件以及河床地形必将发生一定程度的变化。通过对长江口南﹑北港河道连续9d小潮至大潮水沙定点观测发潮流速增强,大潮期含沙量较高,表明泥沙再悬浮明显。通过实测数据分别给出大、中小潮南、北港河道挟沙力经验公式,显示出潮流与含沙量具有良好的相关性,同时显示出潮流流速与挟沙能力的方次变化有良好的对应性。  相似文献   

6.
Based on the one-dimensional salinity transport equation with constant diffusion coefficient, and separated water flow velocity into runoff and tidal current with the single-frequency in an idealized estuary, the simplest unsteady analytical so- lution of salinity intrusion is deduced and the estimation formula of diffusion coefficient is obtained in this paper. The unsteady solution indicates that salinity process in estuaries results from the interaction of runoff and tidal current, and its amplitude is in direct proportion to the product of the velocity of runoff water and the amplitude of tidal flow velocity and in inverse proportion to the diffusion coefficient and the tidal angular frequency, and its phase lag tidal flow with 7/2 which reveals the basic features of the maximum salinity appearing after flood slack and the minimum salinity appearing before ebb slack under the effect of runoff (the advance or lag time is relative to the magnitude of runoff and tidal flow). According to the measured flow velocity and salinity data, the salinity diffusion coefficient could be estimated. Finally, with the field data of observing sites on the deepwater navigation channel of the Yangtze Estuary, the diffusion coefficient is calculated and a comparative analysis of simulated and measured of salinity process is made. The results show that the solution can comprehensively reflects the basic characteristics and processes of salinity intrusion under the interaction of runoff and tidal flow in estuaries. The solution is not only suitable for theoretical research, but also convenient for estimating reasonable physical parameters and giving the initial condition in the salinity intrusion numerical simulation.  相似文献   

7.
Water motion in estuarine waters is the result of the action of various dynamic factors. Firstly, based on the hydro-dynamic characteristics in estuarine waters, neglecting the nonlinear effects of various flow hydrodynamic factors, the logarithm velocity profile of tidal current and the cubic velocity profile of Hansen and Rattray (1965) made for linear superposition at a sense of first order, a new model for velocity profile in estuarine waters is established. Then, by introducing the least square method combination of enumeration, the velocity profile data of wind-driven current measured in the laboratory and that observed at the North and the South Branches of the Yangtze Estuary are verified and compared with other formulas, all with satisfactory results. The results show that the new model not only considers the influences of various dynamic factors, such as tide, wind force, run-off and density pressure with high accuracy, but also provides reasonable boundary conditions on the bottom for hydrodynamics numerical simulation in estuarine waters. Thereby, the accuracy and credibility of numerical computation and prediction of water flow are improved. The research is theoretically important for the estuarine hydrodynamics.  相似文献   

8.
闽江口河网二维潮流数学模型   总被引:6,自引:0,他引:6  
应用“河网正交贴体坐标”技术拟合闽江河口多汊道河网,将网格控制在河道有效区域内,使网格空间步长大大缩小,提高了计算的可信度,应用“矩阵追赶法”和“非线性二维潮流模型”等求解方法,很好地模拟了闽江河口复杂的潮流场,计算时间步长可长达10min。该数学模型已在闽江口等多个工程中得到应用,效果良好。  相似文献   

9.
垂向二维潮流数值模型及其在长江口北槽的应用   总被引:1,自引:0,他引:1  
应用变网格有限元方法,采用任意四边形等参单元,离散横向积分的Navier—Stokes方程,建立河口潮流垂向二维数学模型。应用此模型,对长江口北槽水域两个观测站的潮流水位、流速垂线分布和整个北槽潮流流速纵向分布进行了模拟。潮流水位、流速垂线分布的模拟值分别与观测站的实测值可以较为吻合,证明了本文模型的实用有效。模拟得到的涨急、落急时刻整个北槽潮流流速纵向分布给出了定性的结果。  相似文献   

10.
长江河口盐水入侵对大通枯季径流量变化的响应时间   总被引:4,自引:3,他引:1  
应用河口海岸三维数值模式, 计算区域包括大通至长江河口及其邻近海域, 设计高分辨率网格, 数值模拟和分析不同潮型下长江河口盐水入侵对大通径流量变化的响应时间。计算结果表明, 不同潮型期间大通径流量的增加, 河口盐度响应的时间在4.0~6.2 d之间, 但小潮期的响应时间明显长于其他潮型期的响应时间。本文给出了长江河口盐水入侵对大通枯季径流量变化的响应时间, 可为河口水文、泥沙和环境等研究中取何时径流量提供了依据。  相似文献   

11.
Quasi-3D Numerical Simulation of Tidal Hydrodynamic Field   总被引:2,自引:0,他引:2  
Based on the 2D horizontal plane numerical model,a quasi-3D numerical model is establishedfor coastal regions of shallow water.The characteristics of this model are that the velocity profiles can be ob-tained at the same time when the equations of the value of difference between the horizontal current velocityand its depth-averaged velocity in the vertical direction are solved and the results obtained are consistent withthe results of the 2D model.The circulating flow in the rectangular area induced by wind is simulated and ap-plied to the tidal flow field of the radial sandbanks in the South Yellow Sea.The computational results fromthis quasi-3D model are in good agreement with analytical results and observed data.The solution of the finitedifference equations has been found to be stable,and the model is simple,effective and practical.  相似文献   

12.
江苏中部淤泥质海岸岸线变化遥感监测研究   总被引:4,自引:0,他引:4  
陈玮彤  张东  施顺杰  周静  康敏 《海洋学报》2017,39(5):138-148
海岸线监测是了解海岸冲淤变化的基础。针对淤泥质海岸潮间带坡度平缓的特点,考虑到潮汐对遥感海岸线监测的影响,基于多潮位站插值校正的水边线离散点潮位赋值及坡度计算对水边线方法进行了改进,并结合潮间带实测坡度资料校正,推算遥感海岸线。选择江苏中部冲淤变化频繁、自然岸线保有率较高的扁担河口至川东港岸段开展海岸线变迁遥感监测研究。结果表明,研究区坡度主要在0.001~0.002之间,潮间带宽度由北向南越来越宽。北部扁担河口至射阳河口岸段处于冲刷环境中,大量以养殖塘围堤为主的人工岸线不断被侵蚀后退;射阳河口至四卯酉河口岸段以海岸线在自然状态下的动态变化为主,2010-2015年平均冲淤速率小于10 m/a,变化幅度较小;南部四卯酉河口至川东港岸段,自然岸线淤长明显,同时人工围垦导致岸线不断向海推进。根据监测结果,认为新洋港至斗龙港岸段应为研究区由北部侵蚀转向南部淤长的过渡带。  相似文献   

13.
采用短期资料的潮流准调和分析方法,对2018年6月上海近海海域9个站位的同步潮流资料进行分析。分析结果表明:该海域潮流涨落潮不等现象显著,大部分站位的落潮流历时长于涨潮流历时,长江口内(C1~C3)落潮流最大流速远大于涨潮;该海域基本以半日潮为主,同时存在规则半日潮和不规则半日潮,考虑到该海域浅海分潮流具有较大的比重,潮流性质应为不规则半日潮浅海潮流的类型;大部分站位各层的运动形式以往复流为主;大部分站位的余流流速表现为表层>中层>底层,大致呈现自西向东流。  相似文献   

14.
The instantaneous sea level determined at two sites in the Murderkill Estuary, a tributary of Delaware Bay, results from the superposition of temporal variability operating over different time and spatial scales. Over the relatively short tidal time scales, the semidiurnal tides that represent the dominant tidal constituents in lower Delaware Bay show a modest increase in tidal amplitudes from the bay mouth (Lewes, Delaware), up to Bowers Beach (the mouth of the Murderkill Estuary). However, as the tides propagate into the Murderkill Estuary, the semidiurnal constituents undergo heavy attenuation, resulting in a 48% reduction in tidal amplitude from Bowers to Frederica (approximately the extent of saline intrusion). The diurnal tide, on the other hand, experiences only a 25% reduction in amplitude. The limited tidal asymmetry that is observed may be a result of interaction between flows in the tidal channel and the adjacent salt marsh. At longer time scales, the subtidal sea level experiences no attenuation. The Murderkill Estuary thus behaves like a low pass filter to preferentially damp out high frequency sea level forcing from lower Delaware Bay. The subtidal volume flux in the Murderkill is highly coherent with the time rate of change of sea level, indicating that the Murderkill basically co-oscillates with Delaware Bay in a standing wave fashion over the subtidal time scale. This remote coupling controls more than 90% of the variance in subtidal sea level in the estuary. The surface slopes in the lower bay and the Murderkill Estuary are closely correlated with winds along the orientation of the two waterways, consistent with the effect of local wind on subtidal sea level.  相似文献   

15.
徐六泾控制节点污染物运移轨迹模拟   总被引:3,自引:0,他引:3       下载免费PDF全文
吴德安  严以新  谢锐 《海洋学报》2009,31(3):158-166
对三维多功能动力-生态耦合模式(COHERENS)进行二次开发,运用"网格冻结法"实现了漫滩和露滩过程中的干湿交替,突破其为固定边界和限制水深的局限,使COHERENS模式成功应用于长江口浅滩过程的模拟。对潮位和水流流速的模拟结果进行了较好地验证。在斜压流场的基础上对示踪颗粒拉格朗日运移进行追踪,对污染物欧拉输运进行数值模拟。以徐六泾控制节点横断面设置颗粒示踪子和污染物排放点,对排放的悬浮颗粒物质和溶解性污染物的运动轨迹和特征进行了模拟和比较分析,给出了模拟期间的流场特征和污染物输移规律。  相似文献   

16.
2020年黄河丰水期入海径流量是往年平均值的2倍以上,必然会引起河口水动力和盐度分布的动态变化。本作者基于有限体积海岸海洋模型(Finite Volume Community Ocean Model,FVCOM),模拟2020年黄河冲淡水在丰水期和枯水期的扩散情况,研究黄河口以及莱州湾海域的盐度分布状况变化,以及径流量变化和口门变迁对黄河冲淡水扩散的影响,模型结果与观测结果吻合较好。模拟结果表明,黄河口西北侧潮流沿岸线方向,随着涨落潮呈西北-东南向往复;黄河口以南包括莱州湾的潮流均随着涨落潮呈东北-西南方向往复。高流速区域主要集中在黄河口和莱州湾北部,在0.5 m/s以上。在余流作用下,大量的黄河冲淡水会涌入莱州湾,丰水期时27psu等盐线包络面积占到整个莱州湾的1/4左右。径流量和风的变化主要影响羽流的扩散面积,而口门的变迁会改变其扩散方向。黄河冲淡水经北向口门入海主要影响莱州湾区域,经东向口门入海更多地会向北扩散。通过对2020年黄河口及莱州湾海域盐度分布的分析,为黄河入海径流管理及莱州湾渔业资源保护提供科学参考。  相似文献   

17.
在海堤建设等人类活动和三角洲蚀淤等自然演变的共同作用下,黄河三角洲岸线水深近年来发生了剧烈变化,同时也将引起邻近海域潮波系统及物质输运路径的重要变化。本文基于FVCOM数值模式,建立了黄河三角洲及邻近海域三维高分辨率潮汐、潮流及拉格朗日粒子追踪数值模型。通过与环渤海长期验潮站的潮汐调和常数、黄河三角洲临时潮位站和测流站的实测资料对比,模型结果验证良好,能较好反映黄河三角洲及邻近海域潮汐、潮流运动特征,并获得了2019年M2分潮无潮点位置。通过设置1980年、2019年黄河三角洲岸线自然演变、海堤建设及相应水深地形变化的5个数值实验,结果表明:在人类活动与自然演变共同驱动下,黄河三角洲海域的M2分潮无潮点向东南方向移动,主要影响因素为水深。黄河口向海延伸和海堤丁坝建设导致的岸线变化,对无潮点位置影响较小,但在该凸出岸段两侧形成余流流涡,使得黄河入海物质在莱州湾内停留时间变长,向渤海输运扩散的时间推迟。  相似文献   

18.
径流量变化对长江口水动力特性的影响   总被引:1,自引:0,他引:1  
为了研究径流量变化对长江口水动力特性的影响,利用MIKE21建立长江口水动力数学模型,分别模拟计算长江口不同径流量影响的潮流场,统计分析不同径流量时各汊道涨落潮量和净泄量以及分配比例;统计分析不同径流量对各汊道潮位变化的影响;统计分析不同径流量对北槽中下段水动力特性的影响。得到如下结论:1)径流量的变化对于涨潮分流的影响显著,随着径流量的增加,更多的潮流从北支、北港、南槽进入长江口内。当上游的径流动力增强,外海潮流受上游径流的阻挡,难以继续上溯。2)越是靠近上游,径流量的变化对平均潮位的影响程度越高,入海口处受径流的影响微弱;上游径流量越大,潮波向内陆传播越受阻,能量消耗越大,致使其动力减弱。3)径流量的变化对平均流速的影响与上述潮位变化类似,上游径流量越大,各汊道流速越大;越靠近海洋,径流影响越小。4)长江口北槽中下段转流时刻会出现平面对流现象。横向方向上普遍存在越堤水流,且南北导堤均为北向越堤流占优势。  相似文献   

19.
根据长江口6个主要潮位站1993-2008年潮位资料,通过经验正交函数分析法(EOF法)分析了长时间序列和三峡工程前后月平均高潮位变化规律以及2000年的日高潮位变化规律,并探究其影响因素。结果表明:EOF分析前三个主成分贡献率为98.19%,可以反映潮位变化的主要过程。EOF1的影响因子是径流量,在空间上均为正值,呈上游至下游递减趋势,时间系数呈季节性变化;EOF2的影响因子是月平均海平面变化,在空间上有明显的分布差异,时间系数总体有上升趋势。三峡工程前后影响因子的作用有一定变化,径流量的影响增强,海平面减小。徐六泾以上河段的潮位站受径流丰枯影响,徐六泾以下高潮位受平均海平面控制更大。  相似文献   

20.
古长江河口湾充填潮流作用机制的初步探讨   总被引:10,自引:0,他引:10  
朱玉荣 《海洋学报》1999,21(3):73-82
长江三角洲的发育是以古长江河日湾的充填来实现的.研究潮汐、潮流在古长江河口湾充填中所起的作用,可深入了解长江三角洲的形成发育过程.建立了渤海、黄海、东海的二维潮流数学模型,数值模拟了冰后期最大海侵,即现今长江三角洲地区为巨大河口湾时的M2潮汐、潮流.在此基础上,计算了古长江河口湾及其周围海域8种粒径泥沙的潮平均悬移与推移输沙率,并根据输沙率散度的正负,划分了海底冲刷区与淤积区.根据计算结果得出,冰后期最大海侵时,存在大致以古长江河口湾湾口中点为腹点、波腹线向海凸起的独特驻潮波波腹区.在其控制下,外海潮流大致以古长江河口湾湾口中点为顶点作辐聚、辐散运动.在古潮流场作用下,经历每一个潮周期后,古长江河口湾周围海域的泥沙均向河口湾内净输运,并在河口湾内淤积.古长江河口湾的充填是在长江带来大量泥沙,外海的潮汐、潮流又有利于泥沙向河口湾内净输运,且在河口湾内沉积的情况下实现的.外海的潮汐、潮流为古长江河口湾的充填、长江三角洲的发育提供了必要而又有利的水动力环境.  相似文献   

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