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1.
Five diagnostic experiments with a 3D baroclinic hydrodynamic and sediment transport model ECOMSED in couple with the third generation wave model SWAN and the Grant-Madsen bottom boundary layer model driven by the monthly sediment load of the Yellow River, were conducted to separately diagnose effects of different hydrodynamic factors on transport of suspended sediment discharged from the Yellow River in the Bohai Sea. Both transport and spatio-temporal distribution of suspended sediment concentration in the Bohai Sea were numerially simulated. It could be concluded that suspended sediment discharged from the Yellow River cannot be delivered in long distance under the condition of tidal current. Almost all of sediments from the Yellow River are deposited outside the delta under the condition of wind-driven current, and only very small of them are transported faraway. On the basis of wind forcing, sediments from the Yellow River are mainly transported north-northwestward, and others which are first delivered to the Laizhou Bay are continuously moved northward. An obvious 3D structure characteristic of sediment transport is produced in the wind-driven and tide-induced residual circulation condition. Transport patterns at all layers are generally consistent with circulation structure, but there is apparent deviation between the depth-averaged sediment flux and the circulation structure. The phase of temporal variation of sediment concentration is consistent with that of the bottom shear stress, both of which are proved to have a ten-day cycle in wave and current condition.  相似文献   

2.
黄河入海泥沙悬移输送机制的控制试验   总被引:2,自引:0,他引:2  
李国胜  王海龙 《地理研究》2009,28(3):571-582
以三维斜压动力—悬沙模型ECOMSED联合第三代海浪模型SWAN及Grant-Madsen浪流耦合底边界层模型,对黄河入海泥沙悬移扩散的时空变化过程进行了数值模拟。通过5项控制试验,初步揭示了不同动力因子对黄河入海泥沙悬移输送的贡献和影响。研究结果表明,单纯潮流作用下黄河入海悬沙不能形成长距离输送。风海流作用下,绝大部分悬沙直接沉降在黄河三角洲的附近,只有非常小的部分发生长距离输送。风场作用下,黄河入海悬沙主要向北-西北方向输送,部分输往莱州湾的悬沙继续向北输送。环流作用下,悬沙输送具有明显的三维结构,分层结构与环流结构基本一致,而深度平均的悬沙输送通量与环流结构有较大的差别。浪流联合作用下的悬沙浓度变化与底剪切应力都呈现为10天左右的变化周期,表明其变化主要是由风应力所控制。  相似文献   

3.
河流输送泥沙和颗粒态生源要素通量研究进展   总被引:1,自引:0,他引:1  
河流中的泥沙是河流向河口和近海水域输送营养盐的重要载体,N、P、C、Si等营养盐是组成生命的最基本生源要素。按照形态组成,可将营养盐划分为溶解态和颗粒态两类,因此,从方法学上,对河流输送泥沙通量的估算是研究河流输送颗粒态营养盐通量的基本前提。本文从元素生物地球化学循环的角度,对国内外河流输送泥沙和颗粒态营养盐通量的研究进展进行了综述。国内外的研究表明: 20世纪50-90年代,估算的全球河流入海泥沙通量变化范围为8.8~64 Pg/yr(1 Pg=1012 kg),这一时期的研究重点是探讨自然因素对于河流输送颗粒态物质通量的影响;20世纪末-21世纪初,估算的全球河流的入海泥沙通量变化范围在11~27 Pg/yr之间,这一时期除重视自然因素外,还特别关注人类活动对于河流输送物质通量及其未来趋势变化的影响。很多研究报道了基于全球尺度上的河流输送泥沙通量和颗粒态营养盐通量模型,并据此估算出全球河流每年向海洋输送的POC、PN和PP总量分别达170~210 Tg、21~30 Tg和9~20 Tg(1 Tg=109 kg)。但将这些模型应用于某个特定流域还要进行进一步校正和检验。  相似文献   

4.
玛纳斯河泥沙特征概述   总被引:2,自引:0,他引:2  
本文通过玛纳斯河的泥沙资料,分析了玛纳斯河泥沙的一般特性,并对玛纳斯河红山嘴水文站县移质泥沙和推移质泥沙与其它水文要素之间的关系作了论证。  相似文献   

5.
泥沙研究的发展趋势和新课题   总被引:21,自引:1,他引:20  
王兆印 《地理学报》1998,53(3):245-255
根据国内外近年来泥沙运动研究的动向和资料积累,本文探讨了未来泥沙研究的发展趋势和面临的新课题,包括河道运动动力学、河床形态与泥沙输移的关系、非恒定流河床冲刷率、湿地泥沙生态学模拟、河口萎缩和海流输沙、全球产沙和泥沙概算、泥沙造陆、河流自净、土地利用变化的影响、黄河人造高含沙水流输沙入海和人工智能的应用等.  相似文献   

6.
孙虎  甘枝茂 《中国沙漠》1997,17(3):261-268
对黄河中游河口镇至龙门区间的产沙岩层中流我质输沙进行了耦合平衡分析,确定了该区间各种产沙岩层的产沙数量,并推算出黄土、基岩和风少对河流粗泥沙的贡献率分别为61.2%、34.2%和4.6%。同时,分析了该区间侵蚀产粗泥沙的分布规律。  相似文献   

7.
黄河下游河道泥沙存贮-释放及其临界条件   总被引:1,自引:1,他引:0  
许炯心 《地理科学》2008,28(3):354-360
确定了黄河下游河道处于泥沙存贮-释放临界状态的水沙临界条件。当场次洪水平均含沙量小于31.68 kg/m3,或者来自中游多沙粗沙区场次洪水来沙量小于4 543×104 t,下游河道将由泥沙存贮状态变为泥沙释放状态。当河口镇以上清水区径流占场次洪水总径流量比率大于0.70时,也会由泥沙存贮状态变为泥沙释放状态。场次洪水泥沙输移比随洪水平均流量的增到而增大,流量为4 000 m3/s(相当于平滩流量)时达到峰值,此后有所减少。这表明,平滩流量时泥沙存贮最少,低于平滩流量和高于平滩流量时泥沙存贮均增大。  相似文献   

8.
利用泥沙自身携带的核信息,定量研究黄土高原晋陕蒙接壤区泥沙侵蚀量及其来源组成。结论为该地区侵蚀泥沙主要来自基岩,其量占侵蚀泥沙总量的55.0-76.5%.  相似文献   

9.
黄河口不同粒度泥沙沉积与扩散分析   总被引:1,自引:0,他引:1  
师长兴 《地理研究》2021,40(4):1125-1133
本文采集和收集大量黄河三角洲沉积物剖面和钻孔泥沙粒度资料以及黄河口来沙粒度组成数据,定量研究了黄河口泥沙的沉积与扩散特征.结果 显示黄河口来沙以粉砂为主,黏土次之,砂最少,年均中值粒径无长期变化趋势.黄河三角洲平原相泥沙与来沙的黏土、粉砂和砂含量无显著差异;前缘相泥沙比来沙的黏土含量较低,砂含量较高;前三角洲相泥沙比来...  相似文献   

10.
通过分析陕西南河流泥沙的输移 比现状,输移比的时空变化及发展趋势,指出在特定的自然地理条件下,泥沙中推移质比例较大,致使该区泥输移经远小于1,这是陕南河流泥沙运移的重要特征;输移比在空间上有明显差异并且沿程逐渐增大。  相似文献   

11.
Based on sediment and discharge flux data for the Yellow River, realistic forcing fields and bathymetry of the Bohai Sea, a suspended sediment transport module is driven by a wave-current coupled model to research seasonal variations and mechanisms of suspended load transport to the Bohai Sea. It could be concluded that surface sediment concentration indicates a distinct spatial distribution characteristic that varies seasonally in the Bohai Sea. Sediment concentration is rather high near the Yellow River estuary, seasonal variations of which are controlled by quantity of sediment from the Yellow River, suspended sediment concentration reaches its maximum during summer and fall. Furthermore, sediment concentration decreases rapidly in other seas far from the Yellow River estuary and maintains a very low level in the center of the Bohai Sea, and is dominated by seasonal variations of climatology wind field in the Bohai Sea. Only a small amount of sediments imported from the Yellow River are delivered northwestward to the southern coast of the Bohai Bay. Majority of sediments are transported southeastward to the Laizhou Bay, where sediments are continuously delivered into the center of the Bohai Sea in a northeastward direction, and part of them are transported eastward alongshore through the Bohai Strait. 69% of sediments from the Yellow River are deposited near the river delta, 31% conveyed seaward, within which, 4% exported to the northern Yellow Sea through the Bohai Strait. Wind wave is the most essential contributor to seasonal variations of sediment concentration in the Bohai Sea, and the contribution of tidal currents is also significant in shallow waters when wind speed is low.  相似文献   

12.
Five diagnostic experiments with a 3D baroclinic hydrodynamic and sediment transport model ECOMSED in couple with the third generation wave model SWAN and the Grant–Madsen bottom boundary layer model driven by the monthly sediment load of the Yellow River, were conducted to separately diagnose effects of different hydrodynamic factors on transport of suspended sediment discharged from the Yellow River in the Bohai Sea. Both transport and spatio-temporal distribution of suspended sediment concentration in the Bohai Sea were numerially simulated. It could be concluded that suspended sediment discharged from the Yellow River cannot be delivered in long distance under the condition of tidal current. Almost all of sediments from the Yellow River are deposited outside the delta under the condition of wind-driven current, and only very small of them are transported faraway. On the basis of wind forcing, sediments from the Yellow River are mainly transported north-northwestward, and others which are first delivered to the Laizhou Bay are continuously moved northward. An obvious 3D structure characteristic of sediment transport is produced in the wind-driven and tide-induced residual circulation condition. Transport patterns at all layers are generally consistent with circulation structure, but there is apparent deviation between the depth-averaged sediment flux and the circulation structure. The phase of temporal variation of sediment concentration is consistent with that of the bottom shear stress, both of which are proved to have a ten-day cycle in wave and current condition.  相似文献   

13.
长江口水域悬沙浓度时空变化与泥沙再悬浮   总被引:29,自引:0,他引:29  
根据近年来长江河口及其邻近水域8个测站1年的表层悬沙浓度逐日观测资料,并结合水动力状况,对悬沙浓度的时空变化进行了分析。结果发现,长江口自徐六泾以下悬沙浓度不断增高,并呈现口内夏高冬低,而口外冬高夏低,且量值为口外大于口内,杭州湾大于长江口。表明长江入海泥沙在海洋动力作用下强烈再悬浮;悬沙浓度在时间上呈现明显的大小潮周期和季节性变化。进一步分析认为,海洋动力 (风浪和潮流) 是泥沙再悬浮的主导因素,制约悬沙浓度的年内变化,其中潮流控制悬沙浓度的大小潮周期变化,风浪引起悬沙浓度的季节性变化,河流径流和海洋动力的对比制约悬沙浓度的空间分布。  相似文献   

14.
A detailed analysis of suspended sediment concentration (SSC) variations over a year period is presented using the data from 8 stations in the Yangtze River estuary and its adjacent waters, together with a discussion of the hydrodynamic regimes of the estuary. Spatially, the SSC from Xuliujing downwards to Hangzhou Bay increases almost constantly, and the suspended sediment in the inner estuary shows higher concentration in summer than in winter, while in the outer estuary it shows higher concentration in winter than in summer, and the magnitude is greater in the outer estuary than in the inner estuary, greater in the Hangzhou Bay than in the Yangtze River estuary. The sediments discharged by the Yangtze River into the sea are resuspended by marine dynamics included tidal currents and wind waves. Temporally, the SSC shows a pronounced neap-spring tidal cycle and seasonal variations. Furthermore, through the analysis of dynamic mechanism, it is concluded that wave and tidal current are two predominant factors of sediment resuspension and control the distribution and changes of SSC, in which tidal currents control neap-spring tidal cycles, and wind waves control seasonal variations. The ratio between river discharge and marine dynamics controls spatial distribution of SSC.  相似文献   

15.
长江口水域悬沙浓度时空变化与泥沙再悬浮   总被引:4,自引:0,他引:4  
A detailed analysis of suspended sediment concentration (SSC) variations over a year period is presented using the data from 8 stations in the Yangtze River estuary and its adjacent waters, together with a discussion of the hydrodynamic regimes of the estuary. Spatially, the SSC from Xuliujing downwards to Hangzhou Bay increases almost constantly, and the suspended sediment in the inner estuary shows higher concentration in summer than in winter, while in the outer estuary it shows higher concentration in winter than in summer, and the magnitude is greater in the outer estuary than in the inner estuary, greater in the Hangzhou Bay than in the Yangtze River estuary. The sediments discharged by the Yangtze River into the sea are resuspended by marine dynamics included tidal currents and wind waves. Temporally, the SSC shows a pronounced neap-spring tidal cycle and seasonal variations. Furthermore, through the analysis of dynamic mechanism, it is concluded that wave and tidal current are two predominant factors of sediment resuspension and control the distribution and changes of SSC, in which tidal currents control neap-spring tidal cycles, and wind waves control seasonal variations. The ratio between river discharge and marine dynamics controls soatial distribution of SSC.  相似文献   

16.
黄河入海泥沙输运及沉积过程的数值模拟   总被引:19,自引:0,他引:19  
李国胜  王海龙  董超 《地理学报》2005,60(5):707-716
以利津站代表的黄河入海径流和泥沙数据驱动ECOMSED模型,对黄河入海泥沙悬移输运过程的逐月时空变化、输送通量以及海底沉积效应进行了数值模拟实验。分析结果表明,在忽略再悬浮作用条件下,黄河入海泥沙的输运扩散过程具有明显的季节变化规律,且这种变化具有年际相似性。黄河泥沙入渤海后总体朝向辽东湾西侧海岸扩散,而主要沉降区域是黄河口附近,且随着距离的增大,沉积通量迅速降低。模拟沉积速率一般在0.5~0.1 mm/年左右,与实际调查结果非常接近。海底地形等高线向渤海海盆西部、渤海湾南部,以及渤海海峡方向突出,也反映了泥沙通量的输送方向。从黄河入海泥沙悬移扩散过程的季节变化特征及其海底沉积效应来看,渤海海域泥沙悬移输运过程受潮汐动力、余流和和底层流场等因子的制约。除了黄河河口地区以外,各月悬浮泥沙高浓度区基本一致,集中分布在潮流能量最强的海域,潮流水平动能的大小与悬沙浓度大小分布基本一致。泥沙悬移输运方向与模拟获得的渤海三维风驱-潮致Lagrange余流的方向具有明显的相关关系,泥沙扩散的方向和强度明显受余流方向和强度的控制。  相似文献   

17.
渤海风驱-潮致拉格朗日余流的数值模拟与季相时空变异   总被引:5,自引:0,他引:5  
利用HellermanandRosenstein全球风应力资料中的多年月平均风场资料驱动ECOM模型,设计了潮致、纯风生以及风与潮两者叠加三个数值实验对渤海海域风驱-潮致拉格朗日(Lagrange)余流的逐月时空分布与季节变化进行了模拟。研究结果表明,季风的大小和方向决定了渤海风驱-潮致拉格朗日余流的大小和方向,是影响余流流向和流速的重要因素。冬季,从渤海西岸到莱州湾海域风驱-潮致拉格朗日余流表现出一个大逆时针环流,辽东湾呈现顺时针方向流动,渤海中部存在一个弱的顺时针流环。夏季,整个渤海海域呈现顺时针流况,渤海海盆存在一微弱的逆时针涡旋,一支西南向流沿辽东湾东岸穿越渤海海盆,与起自渤海湾的东向流一起进入莱州湾。风驱-潮致拉格朗日余流主要受风的控制,潮汐则起到一定的调整作用。  相似文献   

18.
海洋悬浮泥沙二元特征参数MODIS遥感反演模型研究   总被引:1,自引:0,他引:1  
王芳  李国胜 《地理研究》2007,26(6):1186-1196
本文提出了一种采用海面离水辐射率和泥沙粒径二元特征参数来反演研究海区(渤海)海洋表层悬浮泥沙浓度的新的遥感反演算法,以此为基础分别建立了基于MODIS遥感数据和泥沙粒径二元特征参数的主成分和神经网络两种泥沙浓度反演模型,并对比分析了两类模型的反演精度以及泥沙粒径因子对模型的影响。分析结果表明,新建立的二元特征参数反演算法在采用主成分模型和神经网络模型时的检验误差分别为0.256和0.244,而忽略泥沙粒径因子贡献的主成分模型和神经网络模型的检验误差分别为0.384和0.390,因此可以认为,在泥沙浓度反演模型中加入粒径因子时,模型的预测精度和模型稳定性均比只考虑浓度对反射率贡献的模型有显著改善。  相似文献   

19.
This study focuses on the fluvial sediment input to the Laptev Sea and concentrates on the hydrology of the Lena basin and the geochemistry of the suspended particulate material. The paper presents data on annual water discharge, sediment transport and seasonal variations of sediment transport. The data are based on daily measurements of hydrometeorological stations and additional analyses of the SPM concentrations carried out during expeditions from 1975 to 1981. Samples of the SPM collected during an expedition in 1994 were analysed for major, trace, and rare earth elements by ICP-OES and ICP-MS. Approximately 700 km3 freshwater and 27 times 106 tons of sediment per year are supplied to the Laptev Sea by Siberian rivers, mainly by the Lena River. Due to the climatic situation of the drainage area, almost the entire material is transported between June and September. However, only a minor part of the sediments transported by the Lena River enters the Laptev Sea shelf through the main channels of the delta, while the rest is dispersed within the network of the Lena Delta. Because the Lena River drains a large basin of 2.5 times 106 km2, the chemical composition of the SPM shows a very uniform composition. In contrast, smaller rivers with more restricted catchment areas exhibit significant differences.  相似文献   

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