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1.
笔者根据1986~1989年间中-美联合TOGA调查的CTD资料,应用模糊聚类法划分热带西太平洋中近黑潮源地(18°20′N断面)上部水域的水团,并描述它们的分布和主要特征以及其对1986~1989年发生的埃尔尼诺和反埃尔尼诺事件的响应。结果表明,该海域的1 000m以浅分布着三个水团:北太平洋热带表层水(包括黑潮表层水)、北太平洋次表层水(包括黑潮次表层水)和北太平洋中层水(包括黑潮中层水)(分别简称为NPTSW、NPSW和NPIW);它们的交界分别位于100和350m左右。在1986/1987的埃尔尼诺年,海区的温跃层明显上移,暖水量明显减少;NPTSW的垂直厚度大约减少了20m,上均匀层中的盐度略有增加,而温度则没有多大的差别。在1988/1989年发生的反埃尔尼诺事件的后期,温跃层上部的强度变弱,上均匀层则变薄,海区中的暖水量也明显减少;近海表面的盐度异常低,而温度略有降低。由此可见,不管是在1986/1987的埃尔尼诺年还是在1988/1989的反埃尔尼诺年,研究海区的暖水都减弱,也即都反映为“冷水年”。  相似文献   

2.
西太平洋北赤道逆流槽上部水域1 000m 以浅分布4个水团:北太平洋热带表层水、北太平洋次表层水、北太平洋中层水和南极太平洋中层水,它们的交界分别位于75、200和310m 深左右。在1986~1987年的El Ni(?)o 事件前期,海区温跃层明显上移;上均匀层盐度降低约0.35,近海表面温度略有增加。在1988~1989年的反厄尔尼诺事件盛期,海区温跃层明显下移;上均匀层盐度降低约0.35,近海表面温度则略有升高。  相似文献   

3.
应用Argo资料分析西北太平洋冬、夏季水团   总被引:1,自引:0,他引:1  
应用Argo剖面浮标观测的温、盐度资料,分析了西北太平洋海域冬、夏季的温、盐度分布、水团结构及其分布。首先采用T-S点聚图法分析了该海域水团分布的基本情况,由点聚分析结果可知,该海域至少存在6种以上水团;再用模糊聚类软化法对水团作进一步划分,分别计算了该海域6至11类水团的F和△F值,结果表明,冬、夏季的△F值都以划分为8类时为最大,这与大洋水团的稳定性是一致的,因此,该海域冬、夏季水团以划分为8类最佳,它们分别是北太平洋热带表层水、北太平洋次表层水、北太平洋中层水、北太平洋副热带模态水、北太平洋深层水和赤道表层水,以及南太平洋次表层水和南太平洋中层水。  相似文献   

4.
基于中国Argo实时资料中心发布的2004年1月至2017年12月Argo全球温盐资料,运用直线定位法和隶属关系,对吕宋岛以东海域(120°~140°E,10°~30°N)水团进行分析,划分出北太平洋次表层水团(NPSSW)和北太平洋中层水团(NPIW)的分布范围。次表层水团位于50~220 m深度,分布在10°~28°N范围内,温度16.61~27.60℃,盐度34.68~35.14,核心范围春夏季较大,秋冬季较小。中层水团位于280~900 m深度,分布在10~30°N范围内,温度3.67~16.55℃,盐度34.11~34.67,核心范围季节变化较弱,整体位于18°N以北。次表层与中层水团核心温盐具有一定的年际变化特征,次表层水团与气候变化相关性较好,核心温度和盐度均存在4 a的变化周期;而中层水团与气候变化相关性较差,核心温度和盐度则分别具有3.5 a和3 a的变化周期。  相似文献   

5.
应用Argo资料分析西北太平洋冬、夏季水团   总被引:1,自引:0,他引:1  
应用Argo剖面浮标观测的温、盐度资料,分析了西北太平洋海域冬、夏季的温、盐度分布、水团结构及其分布。首先采用T-S点聚图法分析了该海域水团分布的基本情况,由点聚分析结果可知,该海域至少存在6种以上水团;再用模糊聚类软化法对水团作进一步划分,分别计算了该海域6至11类水团的F和△F值,结果表明,冬、夏季的△F值都以划分为8类时为最大,这与大洋水团的稳定性是一致的,因此,该海域冬、夏季水团以划分为8类最佳,它们分别是北太平洋热带表层水、北太平洋次表层水、北太平洋中层水、北太平洋副热带模态水、北太平洋深层水和赤道表层水,以及南太平洋次表层水和南太平洋中层水。  相似文献   

6.
李绪录 《海洋学报》1993,15(4):12-18
笔者根据1986~1989年间中-美联合TOGA调查的CTD资料,应用模糊聚类法划分热带西太平洋中近黑潮源地(18°20'N断面)上部水域的水团,并描述它们的分布和主要特征以及其对1986~1989年发生的埃尔尼诺和反埃尔尼诺事件的响应。结果表明,该海域的1 000m以浅分布着三个水团:北太平洋热带表层水(包括黑潮表层水)、北太平洋次表层水(包括黑潮次表层水)和北太平洋中层水(包括黑潮中层水)(分别简称为NPTSW、NPSW和NPIW);它们的交界分别位于100和350m左右。在1986/1987的埃尔尼诺年,海区的温跃层明显上移,暖水量明显减少;NPTSW的垂直厚度大约减少了20m,上均匀层中的盐度略有增加,而温度则没有多大的差别。在1988/1989年发生的反埃尔尼诺事件的后期,温跃层上部的强度变弱,上均匀层则变薄,海区中的暖水量也明显减少;近海表面的盐度异常低,而温度略有降低。由此可见,不管是在1986/1987的埃尔尼诺年还是在1988/1989的反埃尔尼诺年,研究海区的暖水都减弱,也即都反映为“冷水年”。  相似文献   

7.
许建平 《海洋学报》1990,12(5):549-561
本文利用1985年秋季在东北大西洋中部--加拿利海盆区域中获得的水文观测资料,比较详细地阐述了该区域海水的温-盐度特性、水团分布、斜压流场和地转输送等.分析表明,这一区域中呈现的活性中尺度现象主要归因于源地水团(表层水、北大西洋中央水、地中海水和深层水)和外来水团(亚极地模态水、拉普拉多海水和南极中层水)之间的交织、混合和本身的消长变化.亚速尔海流和加拿利海流构成了亚热带环流的东部再循环.亚速尔海流由多个分支汇合而成.主流位于亚速尔群岛以南35°N,它在15°W附近开始分离.葡萄牙近岸发现的逆向流动可能是它的一个北向分支;亚速尔锋阻止了拉普拉多海水和亚极地中层水的南向入侵,它也是区分西北大西洋(中央)水和东北大西洋(中央)水的明显边界.  相似文献   

8.
南海北部及巴士海峡附近的水团分析   总被引:4,自引:0,他引:4  
为解释黑潮水进入南海的方式 ,通过对 2 0 0 2年 5月 2 9日~ 6月 6日在南海及巴士海峡附近太平洋海域观测所得的资料进行水团分析 ,以四边形水团定量分析方法得到各水团在海区内的分布状况 ,同时分析了温度、盐度、密度和溶解氧的分布 ,并对在相同深度层次上的南海水和黑潮水性质进行了比较。观测海域的水团分为表层水团 (SW ) ,次表层水团 (SSW ) ,中层水团 (IW )和深层水团 (DW ) ,分别处于 0~ 5 0m ,5 0~ 3 0 0m ,40 0~ 10 0 0m ,10 0 0m以深。黑潮水进入南海 ,但是势力较弱 ,未能越过 119.5°E深入南海。  相似文献   

9.
利用1949~2004年共54 a的热带气旋资料,通过对历年影响我国近海(距海岸线300 n mile范围内)25°N以北及以南热带气旋的基本要素特征值的分析,发现我国近海25°N以北与以南热带气旋影响的频数和年代际变化不一致,尤其是20世纪80年代中期以来呈现反位相特征,近海25°N以北TC偏多,强度强;25°N以南TC偏少,强度弱.对热带气旋个数偏多年与偏少年对应的夏季海温场、高度场的合成分析,发现25°N以北偏多年比以南偏多年的东太平洋海温负距平强度大、范围广,高度距平场上反映出25°N以北偏多年西太平洋(包括南海)负高度距平区更为偏北、偏东;25°N以北TC偏少年时,中东太平洋海温为正距平区,高度场上太平洋低纬区域基本为正距平区,太平洋高纬区域是负距平区,而以南TC偏少年中东太平洋海温是负距平区,高度场上太平洋高纬区域是正距平区.文中还对当年前期各月海温场、高度场与当年以北、以南热带气旋个数分别作了相关分析,得出了一些实用有效的预报因子.  相似文献   

10.
吕宋海峡附近海域水团分布及季节变化特征   总被引:4,自引:0,他引:4  
利用2003年2月至2009年4月期间在吕宋海峡附近海域由Argo剖面浮标观测的温、盐度资料,对该海域的水团分布及季节变化特征进行了探讨.结果表明,在120.5°-122.75°E、19°-23°N范围内,水团特征介于南海水和北太平洋水之间,而19°N以南区域的水交换并不显著.北太平洋热带水(NPTW)和北太平洋中层水(NPIW)通过吕宋海峡入侵南海的趋势在夏季较弱.秋季,NPTW入侵南海的趋势增强,而到了冬季,受东北季风控制,北太平洋水的入侵程度最强,然而并无NPIW进入南海的迹象.值得指出的是,整年没有发现明显的NPIW进入南海,而南海中层水可以通过海峡流入太平洋,其强度在秋、冬季节达到最大.  相似文献   

11.
INTRODUCTIONIntermediatewaterexistsinalloceansandhasreceivedattentionasanimportantpartoftheoceancirculation.ThefirstsystematicresearchontheintermediatewaterinthePacificwasdonebyReid(1965)andthenbyNitani(1972).ItisgenerallyconsideredthatthereexisttwokindsofintermediatewaterinthePacific.OneofthemisthelowsalinitywaterformedbysubsurfacemixinganddescendinginthenorthpartoftheSubantarcticConvergenceZone,whichisgenerallyknownastheSouthPacificintermediateWater(SPIW).TheSPIWmovesnorthwardata…  相似文献   

12.
利用Argo资料和《世界海洋数据集2001版》(WOD01)温盐历史资料,通过对代表性等位势面上盐度分布的分析,探讨了次表层和中层等不同层次上印尼贯通流(ITF)的起源与路径问题.分析结果表明,ITF的次表层水源主要来自北太平洋,中层水源地既包括北太平洋、南太平洋,同时也不能排除有印度洋的可能性.在印度尼西亚海域西部,ITF的次表层和中层水源分别为北太平洋热带水(NPTW)和中层水(NPIW),经苏拉威西海、望加锡海峡到达弗洛勒斯海,层次越深特征越明显.在印度尼西亚海域东部,发现哈马黑拉-新几内亚水道附近存在次表层强盐度锋面,阻隔了南太平洋热带水(SPTW)由此进入ITF海域;中层水具有高于NPIW和来自南太平洋的南极中层水(AAIW)的盐度值,既可能是AAIW和SPTW在当地发生剧烈垂直混合而形成,也可能是来自印度洋的AAIW向北延伸进入ITF的结果.  相似文献   

13.
Two field observations were conducted around the Lembeh Strait in September 2015 and 2016, respectively.Evidences indicate that seawater around the Lembeh Strait is consisted of North Pacific Tropical Water(NPTW),North Pacific Intermediate Water(NPIW), North Pacific Tropical Intermediate Water(NPTIW) and Antarctic Intermediate Water(AAIW). Around the Lembeh Strait, there exist some north-south differences in terms of water mass properties. NPTIW is only found in the southern Lembeh Strait. Water mass with the salinity of 34.6 is only detected at 200–240 m between NPTW and NPTIW in the southern Lembeh Strait, and results from the process of mixing between the saltier water transported from the South Pacific Ocean and the lighter water from the North Pacific Ocean and Sulawesi Sea. According to the analysis on mixing layer depth, it is indicated that there exists an onshore surface current in the northern Lembeh Strait and the surface current in the Lembeh Strait is southward.These dramatic differences of water masses demonstrate that the less water exchange has been occurred between the north and south of Lembeh Strait. In 2015, the positive wind stress curl covering the northern Lembeh Strait induces the shoaling of thermocline and deepening of NPIW, which show that the north-south difference of airsea system is possible of inducing north-south differences of seawater properties.  相似文献   

14.
On the basis of Argo data and historic temperature/salinity data from the World Ocean Database 2001 ( WOD01 ), origins and spreading pathways of the subsurface and intermediate water masses in the Indonesian Throughflow (ITF) region were discussed by analyzing distributions of salinity on representative isopyenal layers. Results were shown that, subsurface water mostly comes from the North Pacific Ocean while the intermediate water originates from both the North and South Pacific Ocean, even possibly from the Indian Ocean. Spreading through the Sulawesi Sea, the Makassar Strait, and file Flores Sea, the North Pacific subsurface water and the North Pacific Intermediate water dominate the western part of the Indonesian Archipelago. Furthermore as the depth increases, the features of the North Pacific sourced water masses become more obvious. In the eastern part of the waters, high sa- linity South Pacific subsurface water is blocked by a strong salinity front between Halmahera and New Guinea. Intermediate water in the eastern interior region owns salinity higher than the North Pacific intermediate water and the antarctic intermediate water ( AAIW), possibly coming from the vertical mixing between subsurface water and the AAIW from the Pacific Ocean, and possibly coming from the northward extending of the AAIW from the Indian Ocean as well.  相似文献   

15.
采用来自大洋环流模式ECCO2 (the estimating the circulation and climate of the ocean, phase II project)的再分析数据对1992—2019年北太平洋副热带西部模态水(subtropical mode water, STMW)的年代际变化特征及机制进行了分析。结果表明:STMW形成体积具有显著的年代际变化,于1992—1997年、2000—2005年和2011—2017年期间为正异常,而于1998—1999年和2006—2010年期间为负异常,由晚冬生成区混合层体积的年代际变化引起。STMW形成厚度和面积均呈现类似的年代际变化。合成分析表明, STMW形成体积正异常期间,黑潮延伸体上游南侧STMW生成区,海表涡动能相对负异常期间减小,同时预先层结相对负异常期间减弱,并伴随着海表高度异常。通过混合层收支分析发现,混合层形成体积年代际变化与海洋预先层结调控的混合层底卷吸作用变化同步且大小相当,而与海气形成率变化无关。增强(减弱)的海洋预先层结通过调控STMW形成区冬季混合层底卷吸过程,阻碍(促进)冬季混合层加深,最终使得STMW形成体积减少(增加)。进一步分析表明, STMW形成体积年代际变化受与太平洋年代际涛动相关的风应力旋度异常的远场调控。  相似文献   

16.
A basin-wide ocean general circulation model of the Pacific Ocean was used to investigate how the interior restoration in the Okhotsk Sea and the isopycnal diffusion affect the circulation and intermediate water masses. Four numerical experiments were conducted, including a run with the same isopycnal and thickness diffusivity of 1.0×103 m2/s, a run employing the interior restoration of temperature and salinity in the Okhotsk Sea with a time scale of 3 months, a run that is the same as the first run except for the enhanced isopycnal mixing, and a final run with the combination of the restoration in the Okhotsk Sea and large isopycnal diffusivity. Simulated results show that the intermediate water masses reproduced in the first run are relatively weak. An increase in isopycnal diffusivity can improve the simulation of both Antarctic and North Pacific intermediate waters, mainly increasing the transport in the interior ocean, but inhibiting the outflow from the Okhotsk Sea. The interior restoration generates the reverse current from the observation in the Okhotsk Sea, whereas the simulation of the temperature and salinity is improved in the high latitude region of the Northern Hemisphere because of the reasonable source of the North Pacific Intermediate Water. A comparison of vertical profiles of temperature and salinity along 50°N between the simulation and observations demonstrates that the vertical mixing in the source region of intermediate water masses is very important.  相似文献   

17.
西风爆发、次表层暖水东移与厄尔尼诺现象   总被引:7,自引:2,他引:7       下载免费PDF全文
利用最近20 a的大气海洋资料,分析了厄尔尼诺事件与赤道太平洋西风异常以及赤道太平洋次表层海温之间的关系.结果表明,赤道西太平洋(5°S~5°N,120°~160°E)和赤道中东太平洋(5°S~5°N,160°E~160°W)西风异常都存在着与厄尔尼诺周期一致的年际变化,但前者还包含有显著的2~3个月季节内振荡.赤道西太平洋次表层冷暖水东移也呈现年和年际时间尺度的振荡周期.在厄尔尼诺发生前,赤道西太平洋次表层海水出现持续性增暖,赤道西太平洋西风异常频率加快,强度增强.随后赤道中太平洋(160°E~160°W)出现持续性(3个月以上)强西风异常(即西风爆发),并进一步向东扩展,同时次表层暖水沿着赤道波导东移到赤道东太平洋混合层,导致赤道东太平洋海表大面积异常增暖,形成一次厄尔尼诺现象.最后,模式模拟了1980~1984年赤道太平洋海温的变化,进一步证实了赤道纬向西风异常对暖水东移起着重要的作用.  相似文献   

18.
The complicated flow pattern in the intermediate layer of the Luzon Strait could directly affect the efficiency of the water and energy exchange between the South China Sea (SCS) and the North Pacific. Here we present a subsurface anticyclonic eddy in the Luzon Strait deduced using observations conducted in October 2005. On the basis of the hydrographic and current measurements, an anticyclonic eddy was found in the intermediate layer, i.e., about 26.8–27.3σθ, 500–900 m. It captures part of the SCS Intermediate Water outflow in the northern Luzon Strait, and carries it to flow southward and then westward back into the SCS in the southern Luzon Strait, with volume transport of about 1.9 × 106 m3 s−1. The simulated results from Hybrid Coordinate Ocean Model also suggest the existence of this anticyclonic eddy that develops and lingers for a month long.  相似文献   

19.
We investigated variability in the ocean surface-subsurface layer north of New Guinea using Triangle Trans-Ocean Buoy Network (TRITON) buoys at 2°N, 138°E and 0°N, 138°E during the period from October 1999 to July 2004. Both North and South Pacific waters were observed below the subsurface at these stations. The variability in the subsurface waters was particularly high at 2°N, 138°E. Clear interannual variability occurred near the surface; the water type differed before and after onset of the 2002–03 El Niño. Before summer 2001, water that appeared to be advected from the central equatorial Pacific occupied the near surface layer. After autumn 2001, waters advected by the New Guinea Coastal Current were observed near the surface. Intraseasonal and seasonal variations were also observed below the subsurface. With regard to seasonal variability, the salinity of the subsurface saline water, the South Pacific Tropical Water, was generally high during the boreal summer-autumn, when the New Guinea Coastal Undercurrent was strong. Intraseasonal fluctuations on a scale of 20 to 60 days were also seen and may have been associated with intrinsic oceanic variability, such as ocean eddies, near the stations. Ocean variability in the thermocline layer between 100 and 200 m greatly affects the surface dynamic height variability; water variability before 2001 and variability in the pycnocline depth after 2002 are important factors affecting the thermocline.  相似文献   

20.
The Southern Hemisphere subtropical supergyre at intermediate depths connects all three ocean basins and plays a significant role in responding and conveying the climate-change-related variations in the glob- al ocean. On the basis of the Simple Ocean Data Assimilation/SODA) ocean reanalysis, the thermohaline variability and southward shift of the mid-depth supergyre are demonstrated. The steric height of the sub- surface relative to 1 500 m (400-1 500 m) from the SODA depicts exactly the flow patterns and variability of the oceanic supergyre. During 1958-2007 the water masses in the gyre interiors become cooler/fresher, with the significant exceptions of the Agulhas Current system and Agulhas leakage. The results also exhibit a pronounced strengthening of the inter-basin connection of the supergyre, and the strongest southward shift, by about 2.5° over the whole period, occurs in the central-south Pacific, which is associated with the changes in the basin-scale wind forcing.  相似文献   

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