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1.
对比3套不同来源的海表热通量和风应力资料在热带太平洋和印度洋区域的差异,然后把这些海表强迫场作为一个全球海洋环流模式(LICOM)的上边界条件,进行动力和热力强迫的敏感性试验.通过对比分析试验结果,评估了LICOM对印度洋和西太平洋暖池季节变化的模拟能力,探讨了印度洋和西太平洋暖池对动力和热力强迫的敏感性.首先,模式结果表明LICOM能较真实地模拟出印度洋和西太平洋暖池面积和强度的季节变化特征以及两海区暖池季节变化的差异,而且上层海洋垂向分层的加密能有效改善混合层深度季节变化的模拟.其次,模式中暖池的季节变化基本由海表净热通量和混合层深度的季节变化共同决定,但是试验结果中难以反映垂向挟卷和湍流混合对暖池区混合层深度的影响,可能原因是气候态月平均强迫场时间分辨率较粗,不能真实反映一些重要的天气尺度过程对混合层动力过程的影响,故有必要增加强迫场时间分辨率做进一步研究.最后,不同强迫场的敏感性试验对比分析结果表明,印度洋暖池对海表动力和热力强迫场的差异均较为敏感,而西太平洋暖池则只对海表热量强迫场的差异较为敏感,对动力强迫场的差异不敏感.  相似文献   

2.
宋伟  王玉  崔凤娟  谢强 《海洋与湖沼》2019,50(4):752-758
南海上层海洋热力结构年代际变化的研究,是海气相互作用与变化研究的热点之一,对南海区域及更大范围的气候异常的研究和南海海洋环流年际变化的研究都具有重要意义。本文采用多套海温、流场和海气界面通量资料,基于热平衡方程和统计分析方法,分析了南海上层热含量的年代际变化,研究了南海上层热含量影响因子的变化特征,比较了混合层及混合层以下热含量变化的异同,进而探讨了影响因子在混合层及混合层以下的不同作用;利用区域积分海温方程后得到的热量收支方程,诊断南海内区不同海域的热收支方程中的各项,发现了不同海域在影响热收支的物理过程方面存在差异。结果表明:南海混合层的热含量的变化主要受海气界面热通量的影响,夹卷效应在热含量的变化中也有接近1/3的贡献。在整个上层400m的热含量变化中,平流效应占据了主导地位。  相似文献   

3.
北印度洋的经向热输送与热收支的季节与年际变化   总被引:3,自引:1,他引:3  
探讨赤道以北印度洋的热量收支及变化机制。根据积分10年(1987~1996)的全球海洋模式(MOM 2 )资料,利用积分形式的热量平衡方程,系统地研究了北印度洋的经向热输送和热量收支的季节与年际变化。主要结论为:在季节尺度上,越赤道的经向热输送和赤道以北印度洋热含量变化有年循环特征,而海面净热通量呈现半年周期变化特点;在年际尺度上,热含量的变化主要由经向热输送的变化引起,其它项的影响较小;经向热输送集中在上5 0 0m ,尤其在15 0m以上;在总的经向热输送中,经向翻转环流的贡献起主要作用,涡动项的贡献比较小;某一纬度上经向热输送异常以及此纬度以北印度洋总的海面净热通量异常与此纬度上纬向积分的纬向风应力异常有很好的相关关系;还分析了10°N阿拉伯海和10°N孟加拉湾的经向热输送与越赤道的经向热输送的关系,以及海面净热通量各分量的变化特点。  相似文献   

4.
关皓  周林  施伟来  张滨 《海洋预报》2006,23(Z1):47-59
根据1955~2003年次表层海温、海洋上层400m热含量和混合层深度资料,采用EOF分析方法,研究热带太平洋-印度洋上层海温、热含量和混合层深度的年变化特征及其与厄尔尼诺、印度洋偶极子、热带辐合带分布和活动的关系。结果表明:海表温度SST的分布和变化不能代表海洋上层热含量的分布和变化,热含量HST的分布与混合层MLD分布比较相似,尤其在热带印度洋和东太平洋,MLD季节变化比HST和SST提前2~3个月左右。太平洋10°N附近HST带状强扰动区和赤道地区HST反相变化是热带太平洋上层海水温度扰动最主要特征。HST的强扰动区主要由60~300m次表层海温距平的扰动引起,80m左右扰动最强,这种扰动沿着斜温层由上向下,自东向西传递,上半年增温,下半年降温,具有明显的年周期变化。这种变化对ENSO循环期间热含量异常信号传播的影响值得关注。热带太平洋HST的扰动变化和太平洋的ITCZ和SPCZ的移动和变化也有一定的关联。印度洋的西北部和东南部次表层海温距平呈年周期的反相振荡,但这种固有振荡和印度洋偶极子DMI振荡反相,这可能是导致印度洋大部分偶极子生命史都很短的原因之一。  相似文献   

5.
基于海表净热通量数据估算上层比容海平面变化,同时将估算结果与严格基于温盐定义计算的比容海平面变化和卫星高度计实测海平面变化进行对比,结果显示:季节尺度上,在黑潮延伸体和湾流海域,利用热通量数据估算的比容变化与利用定义计算的比容变化差异不大,且可以很好地解释实测海平面变化;而在热带太平洋海域,热通量估算结果与利用定义计算的比容结果有很大不同,而前者更接近于高度计实测结果;低频时间尺度上,上述海域热通量估算结果不能很好地刻画实测海平面变化,而利用定义计算的比容结果却与实测数据符合很好。  相似文献   

6.
采用卫星遥感资料反演出的海洋大气参数,应用通量算法(CORAER3.0),计算出了印度洋区域海气热通量,据此,分析研究了该区域海气热通量的年、年际和年代际变化特征。进而分析探讨了该区域热通量变化与南海夏季风爆发之间的联系。结果表明,北印度洋的热通量具有明显的季节变化特征,在一年四季最大热通量基本发生在阿拉伯海和孟加拉湾,但其量值具有明显的差异。特别是在南海季风爆发前后,其量值显著增大,4月份之前,平均潜热通量维持在110—120W/m2之间,4月份开始增大为130W/m2,5月份突然增大超过160W/m2。这种增大过程可能是影响南海夏季风或南亚夏季风爆发的关键。由分析可知,南海夏季风的爆发与北印度洋的热通量变化存在显著的相关关系,且它们均具有显著的年代际变化周期为16a。当3年前的5月份北印度洋区域海气潜热通量出现偏大(小)时,南海夏季风爆发时间会出现偏晚(早)的趋势。另外,为了预测南海夏季风爆发时间,建立了一个简单的回归方程,用来预测2012年南海夏季风爆发时间。预测结果表明,2012年南海夏季风爆发时间将会出现偏晚1—2候的趋势。  相似文献   

7.
热带印度洋-太平洋热力异常联合模及其指数定义研究   总被引:1,自引:0,他引:1  
根据1955-2003年的全球海洋上层热含量资料,利用经验正交函数(EOF)分解法分析了热带印度洋-太平洋上层热含量距平场的时空变化.结果表明,无论在印度洋还是在太平洋,上层热含量距平场都存在着一种显著的东西向偶极型振荡,其年际变化与ENSO循环有密切的联系.据此定义了热带印度洋-太平洋热力异常联合模指数,功率谱分析和10 a滑动的t检验结果表明,该联合模具有显著的年际和年代际变化,并在1976年前后经历了一次由冷到暖的气候跃变.进一步分析还发现,该联合模的变化特征能较好地反映太平洋ENSO事件和印度洋偶极子事件的基本信息.  相似文献   

8.
利用一个较高分辨率的全球海洋环流模式在COADS 1945~1993年逐月平均资料的强迫下对海温和环流场进行了模拟,分析了北太平洋海温和环流场的年代际变化特征,同时诊断了1976-77年代际跃变过程中海温场变化的机制.模式模拟出了北太平洋海温年代际异常的主要模态以及1976-77年跃变前后的演变特征,模拟的北太平洋中部、加州沿岸和KOE区的海温异常的强度和演变趋势均和观测比较一致;同时,模式重现了分别始于20世纪70和80年代的中纬度海温异常信号沿等密度面向低纬地区的两次潜沉过程.在表层,流场的异常主要表现为与风应力异常基本符合Ekman关系的一个异常海洋涡旋,而整个上层海洋平均的流场异常则表现为两个海洋涡旋的异常,其中副热带海洋涡旋的异常的强度要显著于副极地海洋涡旋的异常,而副极地海洋涡旋异常出现的时间比副热带海洋涡旋晚3a左右的时间.对1976-77年前后3个区域上层海温各贡献项的诊断结果表明,北太平洋中部变冷主要是水平平流和热通量异常贡献的结果;而加州沿岸变暖主要归因于热通量的贡献;在KOE区,垂直平流、热通量和水平平流三者都起了重要作用,其中水平平流异常对这一区域海温年代际跃变出现的时间起了至关重要的作用.  相似文献   

9.
利用第五次耦合模式比较计划(coupled model intercomparison project phase 5,简称CMIP5)中的月平均资料,基于合成分析、相关分析等现代气象统计方法,对热带太平洋、印度洋和大西洋年平均海温增暖不均匀特征及其成因进行分析。9个海洋模式集合的平均结果表明:在全球增暖背景下,3个热带大洋的海温增暖均表现出不均匀性,且增暖原因存在较大差异。热带太平洋赤道及其以北地区以海洋动力作用为主,赤道以南地区则以大气热力作用为主,而且海水上翻/下沉运动对海温增暖的作用在东、西太平洋之间存在明显差异;热带印度洋大面积海域的海温变化难以通过海气热通量交换来解释,海水上翻/下沉运动与温度平流对海温增暖的作用比较一致(二者同时利于海温增暖);热带大西洋赤道附近地区的海温增暖是表层温度平流和上翻/下沉运动共同作用的结果,赤道以北的大西洋海温变化则以温度平流的作用为主,而赤道以南的大西洋海温的变化主要是海水上翻/下沉作用引起的。  相似文献   

10.
南海夏季风爆发与西太平洋暖池区热含量及对流异常   总被引:19,自引:3,他引:19       下载免费PDF全文
利用1955~1998年逐月的上层海洋热含量资料和NCEP/NCAR再分析资料,研究了南海夏季风爆发与热带西太平洋暖池区热含量异常的关系,并对影响过程进行了探讨.结果表明:(1)热带西太平洋暖池区是热带上层海洋热含量变化最大的区域,暖池区的热含量的变化与ENSO关系密切,是ENSO循环的重要组成部分,也是影响南海夏季风爆发最明显的地区.(2)南海夏季风爆发与前期(特别是前期冬、春季)暖池热状态的变化有密切关系,当前期暖池热含量高时,南海夏季风爆发早,反之爆发晚,这与由暖池变化所产生的上空大气的对流活动密切相关;4月暖池区热含量高(低)是预报南海夏季风爆发早(晚)的一个很好指标.(3)西太平洋暖池区热含量正异常时,辐散中心位于南海—西太平洋,对流强,西太副高弱且位置偏东,季风环流(印度洋纬向环流和经向环流)和Walker环流为正距平环流;正距平的季风环流有利于低空西到西南气流的加强,南海夏季风爆发早,反之爆发晚.由暖池变化所引起的大尺度季风环流和Walker环流的异常变化可能是影响南海夏季风爆发的一个重要动力机制.  相似文献   

11.
吕宋海峡西部深海盆内孤立波潜标观测研究   总被引:2,自引:0,他引:2  
Using a net surface heat flux (Qnet) product obtained from the objectively analyzed air-sea fluxes (OAFlux) project and the international satellite cloud climatology project (ISCCP), and temperature from the simple ocean data assimilation (SODA), the seasonal variations of the air-sea heat fluxes in the northwestern Pa cific marginal seas (NPMS) and their roles in sea surface temperature (SST) seasonality are studied. The seasonal variations of Qnet, which is generally determined by the seasonal cycle of latent heat flux (LH), are in response to the advection-induced changes of SST over the Kuroshio and its extension. Two dynamic regimes are identified in the NPMS: one is the area along the Kuroshio and its extension, and the other is the area outside the Kuroshio. The oceanic thermal advection dominates the variations of SST and hence the sea-air humidity plays a primary role and explains the maximum heat losing along the Kuroshio. The heat transported by the Kuroshio leads to a longer period of heat losing over the Kuroshio and its Extension. Positive anomaly of heat content corresponds with the maximum heat loss along the Kuroshio. The oceanic advection controls the variations of heat content and hence the surface heat flux. This study will help us understand the mechanism controlling variations of the coupled ocean-atmosphere system in the NPMS. In the Kuroshio region, the ocean current controls the ocean temperature along the main stream of the Ku roshio, and at the same time, forces the air-sea fluxes.  相似文献   

12.
基于南沙群岛海域综合科学考察11个航次的实测资料,研究了南沙群岛海域的混合层深度季节变化特征。研究结果表明,南沙群岛海域混合层深度存在明显的季节变化,并且与季风和海表热通量的变化密切相关。春季,风速较小且风向不稳定,海面得到的净热通量全年最大,上层水体层结稳定,混合层深度较小;夏季,南海西南季风盛行,上层为反气旋式环流,海面得到的净热通量减少,混合层呈加深的趋势;秋季,海面净热通量继续减少,混合层深度达到最大值;冬季,东北季风驱动下形成的上层气旋式环流引起深层冷水的上升,限制了混合层的加深。  相似文献   

13.
The results obtained from an Ocean General Circulation Model (OGCM), the Modular Ocean Model 2.2, forced with the National Center for Environmental Prediction/National Center for Atmospheric Research reanalysis data, and observational data have been utilized to document the climatological seasonal cycle of the upper ocean response in the Tropical Indian Ocean. We address the various roles played by the net surface heat flux and the local and remote ocean dynamics for the seasonal variation of near-surface heat budget in the Tropical Indian Ocean. The investigation is based in seven selected boxes in the Arabian Sea, Bay of Bengal and the Equatorial Indian Ocean. The changes of basin-wide heat budget of ocean process in the Arabian Sea and the Western Equatorial Indian Ocean show an annual cycle, whereas those in the Bay of Bengal and the Eastern Equatorial Indian Ocean show a semi-annual cycle. The time tendency of heat budget in the Arabian Sea depends on both the net surface heat flux and ocean dynamics while on the other hand, that in the Bay of Bengal depends mainly on the net surface flux. However, it has been found that the changes of heat budget are very different between western and eastern regional sea areas in the Arabian Sea and the Bay of Bengal, respectively. This difference depends on seasonal variations of the different local wind forcing and the different ocean dynamics associated with ocean eddies and Kelvin and Rossby waves in each regional sea areas. We also discuss the comparison and the connection for the seasonal variation of near-surface heat budget among their regional sea areas. This revised version was published online in July 2006 with corrections to the Cover Date.  相似文献   

14.
Heat content change in the surface isothermal layer of a typical warm core ring in the sea east of Japan is described based on approximately 90 CTD profiles obtained by one profiling float. Erosion of the seasonal thermocline and development of a surface isothermal layer from the mid-summer to the early winter of 1999 are clearly seen. While heat content change between two consecutive profiles with a 35-hour time interval is much noisier, its 10-day running mean is consistent with net surface heat flux, indicating that surface heat flux dominates the temporal heat content change in the surface isothermal layer in the warm core ring.  相似文献   

15.
Using the high-resolution Hybrid Coordinate Ocean Model and the Navy Coupled Ocean Data Assimilation Global 1/12° Analysis (GLBa0.08), and the Objectively Analyzed Air–Sea Fluxes and the International Satellite Climatology Cloud Project products, we investigated the seasonal and interannual evolutions of heat budget, including the pseudo-heat content change, the net air–sea heat flux and the eddy heat transport (EHT), based on the time-dependent heat budget analysis in the western Pacific warm pool (WPWP). The results show that the pseudo-heat content change has significant semi-annual variation, which peaks in April–May and September. There is strong positive feedback between EHT and the net air–sea heat flux. EHT is important in balancing the sea surface heat flux into the WPWP. The seasonal EHT variability is dominated by its meridional component. On the interannual time scale, the zonal and vertical components of EHT show comparable amplitudes with the meridional one. The observed net air–sea heat flux in the WPWP is highly correlated with EHT and the pseudo-heat content change on the interannual time scale. The net air–sea heat flux leads the pseudo-heat content change by about half a month and leads EHT by about one month. The variations of the air–sea heat flux and EHT are connected to the El Niño Southern Oscillation events: during the development of El Niño (La Niña) events, the warm pool expanded eastward (retreated westward), the net air–sea surface flux into the WPWP increased (decreased) and EHT enhanced (weakened) significantly.  相似文献   

16.
Heat balance of the upper 200 m of the sea south of Japan is studied, by the use of marine meteorological and oceanographic data at Ocean Weather Station T (29°N, 135°E), intensively obtained from June 1950 to November 1953. Local time change of the heat content in the surface layer and the net heat flux through the air-sea interface are calculated directly from these data, and the heat convergence in the sea is estimated from their residuals. Regarding the relative importance of one- and three-dimensional processes, it is found that, on a time scale of a few days to one month, the variation of heat content depends on heat convergence in the sea, while on a seasonal time scale, the heat content is determined primarily by the heat flux through the sea surface in December through February, by heat convergence within the sea from March to May, and by both processes from June to November. It is inferred that the heat convergence in the sea is caused by advection of water masses which are bounded by sharp fronts. Spectral analysis of sea surface temperature indicates that they typically take 2 to 3 days to pass the station, and their typical size is estimated as around 20 km by assuming the typical advection velocity of water masses to be 10 cm s?1.  相似文献   

17.
Based on hydrographic data obtained at an ice camp deployed in the Makarov Basin by the 4th Chinese Arctic Research Expedition in August of 2010, temporal variability of vertical heat flux in the upper ocean of the Makarov Basin is investigated together with its impacts on sea ice melt and evolution of heat content in the remnant of winter mixed layer(r WML). The upper ocean of the Makarov Basin under sea ice is vertically stratified. Oceanic heat flux from mixed layer(ML) to ice evolves in three stages as a response to air temperature changes, fluctuating from 12.4 W/m2 to the maximum 43.6 W/m2. The heat transferred upward from ML can support(0.7±0.3) cm/d ice melt rate on average, and daily variability of melt rate agrees well with the observed results. Downward heat flux from ML across the base of ML is much less, only 0.87 W/m2, due to enhanced stratification in the seasonal halocline under ML caused by sea ice melt, indicating that increasing solar heat entering summer ML is mainly used to melt sea ice, with a small proportion transferred downward and stored in the r WML. Heat flux from ML into r WML changes in two phases caused by abrupt air cooling with a day lag. Meanwhile, upward heat flux from Atlantic water(AW) across the base of r WML, even though obstructed by the cold halocline layer(CHL), reaches0.18 W/m2 on average with no obvious changing pattern and is also trapped by the r WML. Upward heat flux from deep AW is higher than generally supposed value near 0, as the existence of r WML enlarges the temperature gradient between surface water and CHL. Acting as a reservoir of heat transferred from both ML and AW, the increasing heat content of r WML can delay the onset of sea ice freezing.  相似文献   

18.
Various statistical methods (empirical orthogonal function (EOF), rotated EOF, singular value decomposition (SVD), principal oscillation pattern (POP), complex EOF (CEOF) and joint CEOF) were applied to low-pass filtered (>7 years) sea surface temperature (SST), subsurface temperature and 500 hPa geopotential height in order to reveal standing and propagating features of decadal variations in the North Pacific. Four decadal ocean-atmosphere covariant modes were found in this study. The first mode is the well-known ENSO-like mode associated with the “Pacific-North American” atmospheric pattern, showing SST variations reversed between the tropics and the extratropics. In the western tropical Pacific, subsurface temperature variations were found to be out of phase with the SST variations. The other three modes are related to the oceanic general circulation composed of the subtropical gyre, the Alaskan gyre and the subpolar gyre, respectively. The 1988/89 event in the northern North Pacific was found to be closely associated with the subtropical gyre mode, and the atmospheric pattern associated with this mode is the Arctic Oscillation. An upper ocean heat budget analysis suggests that the surface net heat flux and mean gyre advection are important to the Alaskan gyre mode. For the subpolar gyre mode, the mean gyre advection, local Ekman pumping and surface net heat flux play important roles. Possible air-sea interactions in the North Pacific are also discussed. The oceanic signals for these decadal modes occupy a thick layer in the North Pacific, so that accumulated heat content may in turn support long-term climate variations. This revised version was published online in July 2006 with corrections to the Cover Date.  相似文献   

19.
利用COADS资料,首先计算了1949-1979年逐月北太平洋洋面的潜热通量与感热通量之和,并进行EOF分解,然后分析它们的时空变化特征。结果表明:1、在北太平洋,季平均热通值的季节变化具有两种形式,而且主要决定于风速值的季节变化,尤以东亚季风的效应为最明显。2、暖池区全年平均的多年月平均热通量及其标准差都居北太平洋诸洋流区之首。3、北太平洋异常热通量场具有最重要的两种类型。1月异常热通量主要类型  相似文献   

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