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1.
通过对WOA13数据库季节平均数据的分析依次得到锋区内0~1 000 m各层锋轴线的位置,对马海流锋轴线位置由表层的40°N附近随深度增加逐渐南移到39°N附近且位置的季节摆动幅度增大.利用绝对梯度方法对温度锋强度与盐度锋强度的水平分布及垂直变化进行了分析;对比了四季锋强度的差异以及差异比率,得到了不同深度不同季节锋强度强弱分布的规律.对比声速穿过锋线时的差异认为表面声速从南到北逐渐减小,锋轴线南北两侧声速差异主要集中在150 m以内,且随深度增加声速差异减小.此外,还运用BELLHOP模型对锋区内700 m以浅的声道特点以及声传播损失进行了简单分析.  相似文献   

2.
西北非上升流锋研究具有较高的海洋学研究价值和军事应用价值,本文主要通过WOA13数据对西北非上升流锋区锋面分布、锋强度水平和垂直变化特点以及相应的季节变化特点等时空变化特征进行研究,旨在弥补国内外对于西北非上升流锋区研究的不足。分析认为,西北非上升流锋轴线大致沿海岸分布,且随着深度增加逐渐远离海岸;锋轴线上锋强度在水平和垂直分布不均匀,水平方向上强度大的区域集中在23°N~25°N之间,垂直方向上在水深50~150m范围内锋轴线强度较大;锋的季节变化主要表现在温度锋强度季节差异上。  相似文献   

3.
结合卫星遥感海表温度、三维再分析温度资料和数值模拟结果,研究了东海黑潮温度锋从海表到底层的三维结构特征.结果 表明:东海黑潮海表温度锋在冬季和春季较强,秋季次之,夏季消失.多年平均的东海黑潮海表温度锋区范围主要在70~700m水深区域,温度锋的中心线与黑潮的流轴大致平行,在济州岛以南的黑潮中段区域有北上的分支.受台湾暖...  相似文献   

4.
通过对WOA13多年(1955—2012年)季节平均数据的分析,利用绝对梯度最大值连线的方法,得到日本东海岸黑潮延续体温盐锋轴的空间信息,对锋轴线上的锋强度的季节变化特征进行了分析,并利用BELLHOP模型初步讨论了锋区内的声场特点。认为黑潮延续体锋轴线的位置随深度增加逐渐南移,其温盐强度随季节随深度都有明显变化,1—3月份混合层现象明显,此时水下声道受到声源深度的影响明显。  相似文献   

5.
基于海洋锋空间位置、水平分布结构和垂直扩展特征等时空特征参数,结合海洋锋空间结构几何模型,建立了区域海洋锋温盐三维结构快速重构特征模型,对黄海西部沿岸锋和东海黑潮中段锋锋区温度场进行了仿真计算,并与实测数据进行了比较分析,实验结果表明:仿真结果与实测数据符合较好,实验结果验证了特征模型的有效性和可推广性。海洋锋区声速具有明显的水平梯度变化,对声纳的水下探测和反探测产生显著影响,因此,需要建立实时估计获取锋区水下温、盐结构的方法。海洋锋特征模型能够快速有效地重构海洋锋区温度场,为实时获取海洋锋水下结构特征提供了方法。  相似文献   

6.
通过WOA13多年季节气候态数据分析了印度尼西亚5°S锋面与15°S锋面的季节变化特征及水平方向垂直方向上变化特点:两处海洋锋均在表层以下,其中5°S附近仅有温度锋,主要存在于1—6月份,1—3月份为锋强度最大时期,集中在30—100 m水层内。15°S处既存在温度锋又存在盐度锋,全年均有锋现象,但其强度存在季节差异。对比声速剖面,发现声速在从南到北穿越5°S(15°S)锋面时逐渐声速减小(增大)。  相似文献   

7.
利用高分辨率(1/18°)的POM(Princeton Ocean Model)模式数值模拟结果,结合观测数据分析了苏北浅滩外侧潮汐锋的季节分布特征和变化规律。研究结果表明,苏北浅滩外侧潮汐锋的季节变化特征显著,春末开始出现,夏季底层温度锋强度最大且锋区位置较稳定,锋区宽度约40 km,平均强度约0.35℃/km,秋、冬季随上层海洋湍流垂向混合的加强,潮汐锋逐渐减弱至消失不见。对比实测数据和模拟结果发现,沿34°N断面,夏季潮汐锋区附近等温线明显抬升,存在由陡峭地形和分层流体的内埃克曼效应共同作用形成的上升流现象。次表层海水出现低温冷水区,位于122.2°E附近。跨锋区断面的温度和流场分布特征同浅水区强烈的潮混合过程密切相关,斜压在锋面处产生了较强的南向流动。本研究结果促进了对苏北浅滩外侧陆架潮汐锋结构特征的认识,为研究黄海西部生态环境的动力过程影响提供参考。  相似文献   

8.
采用WOA13气候态季节温度数据,利用绝对梯度法对东海黑潮不同水深海洋锋的季节变化特征进行了分析,得出结论:东海黑潮温度锋具有显著的季节变化特征,它的范围和强度存在多个大值区,不同季节,温度锋的大值区存在于不同深度。在200 m以浅海域,按照冬季、春季、夏季的季节顺序,温度锋的大值区由表层逐渐增加到100 m层处;在200 m以深海域温度锋的大值区没有季节变化,大值区大约出现在400 m层附近。  相似文献   

9.
海洋锋是典型的海洋中尺度现象之一。目前卫星遥感主要利用海表温度数据分析海洋锋,但由于西北太平洋海域夏季海表温度的趋同特性,不能进行有效的锋面监测;而不同水团所具有的生物光学特性往往是不同的,且不具有太阳辐射引起的显著性季节变化,因此海色资料也成为检测海洋锋的有效数据源。文中以东海黑潮为例,详细说明了基于叶绿素a浓度融合数据,采用梯度法进行海洋锋面检测的过程,通过比较不同季节不同梯度阈值得到的东海黑潮锋结果,从保持锋面的完整性及对零碎锋区的剔除效应方面,选取了不同季节较优的梯度阈值。总体来说,文中检测出的东海黑潮区域海色锋与海流黑潮强流区较吻合,12月至4月东海黑潮海色锋检测结果不如海温锋,而5-11月东海黑潮海色锋检测结果优于海温锋,特别是台湾以东黑潮区域,不论什么季节海温锋都没有体现,而海色锋始终很明显。利用文中提出的海洋锋检测算法、分析方法及选择的梯度阈值可以有效地检测东海黑潮区域的海洋锋面,结合海色锋和海温锋,可以监测分析东海黑潮强流区的时空变化。  相似文献   

10.
基于ROMS (regional ocean modelling system)模式模拟出2019年春季东海以及临近海域的环流结构和温盐分布。利用拉格朗日方法定量地研究了2019年春季黑潮近岸分支流在台湾以东起源的深度在100—450 m范围内,平均深度约260 m。通过针对台湾海峡流和台湾以东黑潮强度的敏感性实验,进一步得出结论,增大(减小)的台湾以东黑潮流速会减小(增大)黑潮近岸分支流的强度。而增大(减小)的台湾海峡流流速会增大(减小)黑潮近岸分支流的强度。同时,增大(减小)的台湾以东黑潮流会减小(增大)黑潮近岸分支流起源的平均深度。增大(减小)的台湾海峡流流速也会减小(增大)黑潮近岸分支流起源的平均深度。相关结论可为台湾东北黑潮入侵东海变化规律的研究提供参考。  相似文献   

11.
本文根据“中日黑潮合作调查”在东海的调查资料,探讨了硝酸盐的分布特征,以及水文条件对其分布的影响,并比较了不同年份夏季硝酸盐的分布差异及其原因。分析表明,表层海水中硝酸盐分布明显受长江冲淡水影响,陆架区测值高于外海,冬季测值高于夏季; 50m ,100m 层上陆架、黑潮锋区存在着硝酸盐锋面,黑潮主干的摆动可能是影响锋面位置的主要因素  相似文献   

12.
基于西北太平洋Argo数据资料,利用参数化方法,从Argo温盐剖面数据中提取出一系列特征动力参数,定量分析黑潮延伸体海域水体的三维热结构的时-空变化特征、季节变化特征及其与地形和环流的关系。结果表明:黑潮延伸体海域水体的海表面温度存在着明显的冬春弱,夏秋强的季节变化特征,冬季平均海表面温度为15℃,夏季则达到了27℃;混合层深度在春季和夏季都较深,在180 m左右,秋冬较浅,在17 m左右,在水平方向上混合层深度有较强的梯度;温跃层春、夏、秋、冬4季的平均温度表现出明显的南北差异,夏季南部海域平均温度为14℃左右,北部海域较低为5℃左右;季节性温跃层深度大约在100 m左右;黑潮延伸体海域水体的温跃层底部最大深度在800 m左右;黑潮延伸体主体海域中心位置冬天在36°N左右,夏天大约移到34°N。  相似文献   

13.
A hybrid coordinate ocean model (HYCOM) is used to simulate the Kuroshio frontal eddies in the East China Sea (ECS). The research area is located (20°-32°N, 120°-132°E). Using the simulating data, it is figured out that the Kuroshio frontal eddies occur in summer as well as in the other season in this area. The life cycle of the Kuroshio and its frontal eddies is different with the position. The life-cycle of the Kuroshio frontal eddies of the northwest Diaoyu Islands is about 14 d; and the life cycle of the Kuroshio frontal eddies of southwest Yakushima about 20 d. This result extends the in situ researching results greatly. In addition, the vertical impact depth of the Kuroshio frontal eddies is also changing with the position. On the whole, in the ECS, the maximum impact depth of the Kuroshio frontal eddies of the northwest Taiwan Islands is about 75 m; the maximum impact depth of the Kuroshio frontal eddies of the northwest Diaoyu Islands is more than 125 m, but no more than 200 m; and the maximum impact depth of the Kuroshio frontal eddies of southwest Yakushima is up to 100 m.  相似文献   

14.
The engineering feasibility of pumping deep seawater has been achieved by using a simplified mathematical model. It was proved that the pumping power required to draw seawater from deep sea is always less than 100 kW (134 h.p.) for pipe diameters below 15 cm and mass flowrate lower than 100 tons/hr, which is suitable for mariculture farmings, and the replacement of warm surface seawater by cold deep seawater as nuclear power plant coolant is technically feasible for pipes with diameters larger than 150 cm and intake levels below 600 m. This model can be further extended to study the performance of the Ocean Thermal Energy Conversion (OTEC) system onshore.Continuation of this study should be the design of deep seawater prototype pumping system, the construction of pilot plants of cooling applications and mariculture experiments, and the feasibility analysis of the Ocean Thermal Energy Conversion power plants.  相似文献   

15.
Temperature, salinity and density structures were observed on Sept. 23 and 24, 1986 at one vertical section across the East China Sea shelf edge by an advanced type of towed vehicle with CTD sensors which was developed by the Japan Marine Science and Technology Center. The vehicle was towed at a speed of 2.5 m s−1 down to 150 m depth and at intervals of 170–500 m width. The observed profile was 50 km long on Sept. 23 and 70 km long on Sept. 24 along the cross-shelf section. An on-ship acoustic Doppler current profiler was simultaneously used to measure current velocities at depths of 20, 50 and 100 m.Interesting features were noticed. Firstly, there was a vertical displacement of pycnoclines at the lower edge of the surface mixed layer accompanied by vertical inversion of the salinity and temperature in the vicinity of the shelf edge. Pycnoclines were displaced upward by 12 m toward the outer edge on Sept. 23 and by 20 m on Sept. 24. On Sept. 23, the salinity inversion took place in a layer 20 m thick and 8 km wide, whereas the temperature inversion took place in a layer 8 m thick and 1.5 km wide. These vertical inversions were probably generated by vertical shear of tidal currents which was observed by the Doppler current profiler. These results throw light on understanding the vertical mixing process of stratified water on the continental shelf edge. Secondly, an intrusion of the shelf water into the Kuroshio water was observed along pycnoclines below the surface mixed layer 60 to 70 m deep in the Kuroshio region outer break. The measurement was successful in showing a horizontal mixing process of the shelf water and the Kuroshio water which could not be found out by standard CTD observations.  相似文献   

16.
Four surveys of airborne expendable bathythermograph with horizontal spacing of about 35 km and vertical spacing of 1 m extending from the surface down to 400 m deep are used to analyze thermal finestructures and their seasonality in frontal zones of the southern Yellow Sea and the East China Sea. Finestructure characteristics are different not only among fronts but also along the same front, implying different mixing mechanisms. Summer thermocline intrusions with thickness from few to 40 meters, generated by the vertically-sheared advection, are identified along the southern tongue of the Cheju-Yangtze Front (especially south of Cheju Island). The finestructures south of the Yangtze Bank (i.e. the western tip of the southern tongue) produced by strong along-frontal currents are not as rich as elsewhere in the southern tongue. The Cheju-Tsushima Front presents mixed finestructures due to confluent currents from various origins. The irregular-staircase finestructures in the Kuroshio region (below the seasonal thermocline), driven by double-diffusive mixing, show seasonal invariance and vertical/horizontal coherence. The strength of mixing related to finestructure is weaker in the Kuroshio region than in the Cheju-Tsushima Front or south of Cheju Island. The profiles in the Tsushima Warm Current branching area show large (∼50 m thick), irregular-staircase structures at the upper 230 m depth, which coincides roughly with the lower boundary of the maximum salinity layer. The finestructure at depths deeper 230 m is similar to that in the Kuroshio region. The possible mechanisms for generating the finestructures are also discussed.  相似文献   

17.
高爽  杨光兵  熊学军 《海岸工程》2022,41(2):144-152
声散射是重要的声学现象,海洋水体产生的高频声散射信号既可用于开展多种目的的声学海洋学研究,也可能对水下声学设备产生干扰,而海洋水体背景声散射具有显著的时空变异特征,因此针对特定海区开展声散射时变观测具有重要意义。本文利用在南海北部布放的锚系系统所搭载的声学多普勒流速剖面仪,获取了覆盖4个季节的累计约80 d的声散射数据,数据包括75 kHz和300 kHz两个频段,观测水深几乎覆盖了从海面到约600 m水深的整个水体。结果表明,水体在垂向上分布着上散射层和深散射层2个主要散射层。上散射层分布深度在冬夏较浅,位于约100 m以浅,在春秋较深,位于约200 m以浅;深散射层分布深度同样为冬季最浅,位于约300 m以深,但夏季则最深,位于约400 m以深。因此,两散射层的距离在夏季最远,在春秋最近。2个散射层的声散射强度(Sv)同样具有明显的季节变化,上散射层散射强度夏秋较强而春冬较弱,深散射层则正好相反。  相似文献   

18.
Observations made during 50 days at nine buoy moorings in the equatorial Atlantic have been used to determine the fractal and scaling characteristics of the Eulerian trajectories of currents. Within the temporal (1–10 days) and spatial range (10–100 km), the trajectories are shown to be isotropic and to have a scaling and fractal dimension that equals 1.2. The data are interpreted in the context of two-dimensional turbulence. The paper examines the multifractal structure of the density of kinetic energy dissipation, which is intermittent within the range from 4 to 100 km. The spectrum of singularities is determined using the method of Legendre transformation of generalized Renyi dimensions, and spectrum parameterization is accomplished using the universal family of Levy's random multifractal measures. Translated by Vladimir A. Puchkin.  相似文献   

19.
夏季,黑潮在台湾东北向东海陆架的入侵表现为黑潮次表层水的强烈涌升,并在陆架上形成明显的冷穹。本研究利用ROMS(Regional Ocean Modeling System)模式,模拟了夏季黑潮入侵所形成的冷穹及上升流的三维结构,并讨论了上升流形成的动力机制。结果表明,冷穹中心在50 m以上的深度位于25.5°N,122.5°E附近,最大降温5 ℃以上;在50 m以下的深度,冷穹的中心位于台湾岛北缘。表层黑潮在台湾北缘不存在明显入侵,在陆坡东向转向附近则以气旋式环流入侵至陆架以上。此外,上升流主要位于陆坡坡度最大的区域,且黑潮次表层水的涌升存在两个较为明显的路径,分别位于台湾岛以北的100 m与200 m等深线之间以及东向转向的陆坡区域。在上层,平流作用是上升流产生的主要机制;而在近底层,平流作用与底摩擦都对上升流有贡献。  相似文献   

20.
Temperature, wave and wind data over two years off Ho Peng, Shi Ti and Jang Yuan of east Taiwan are analyzed to study their seasonal variations. A model for predicting the mixed layer thickness is developed by use of wave data. The vertical profile of temperature indicates that there are basically three layers; mixed layer, thermocline layer and deep cold layer. The surface mixed layer appears in winter and disappears in summer. While surface water is warmer in summer than in winter, water at a depth of 50 m is warmer in winter than in summer. The seasonal variation in the deep cold layer is weak. The sea surface temperature is generally higher offshore than nearshore. The surface temperature off east Taiwan is almost equal to that in Taiwan Strait in summer, but in winter it is about 4°C warmer off northeast Taiwan than in the northeast of the Taiwan Strait, if compared at the same latitude. This is an effect of the seasonal variation of the Kuroshio. A model is developed for predicting the mixed layer thickness in terms of the input wave energy. The model successfully accounts for the observed features.  相似文献   

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