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1.
利用2000—2009年美国国家航空航天局(NASA)在中国近海海域(0°~45°N,105°~135°E)的QuikSCAT卫星遥感风场资料与近海测风塔(位于上海近海)、海上石油平台(位于东海和渤海)、岛屿站(南海珊瑚岛和西沙海边观测塔)的实测风场资料进行对比分析,检验了QuikSCAT卫星遥感风场资料在中国近海海域的可靠性。研究结果如下:各站点实测风速与站点位置以及站点附近的QuikSCAT卫星遥感风场资料相关系数均在0.7以上;QuikSCAT卫星遥感风场资料与海上石油平台的风速均方根误差较小(约1.5 m/s);其年均值均大于实测值,差值范围是0.1~1.3 m/s;其Weibull形状参数K与海上石油平台以及近海测风塔的K值较为接近,表明QuikSCAT卫星遥感风场资料各风速段的频次分布形态与观测站的实测值基本吻合,QuikSCAT卫星遥感风场资料能基本合理地反映出中国近海风速的分布状况。利用QuikSCAT卫星遥感风场资料分析了中国近海及其邻近水域风速的空间分布特征:(1)台湾海峡是中国近海风速最大的区域,从台湾海峡向东北至日本海,往西南至南海北部115°E附近和巴林塘海峡为风速的次大值区;(2)28°N到长江入海口的东海海域年均风速为7.0~7.5 m/s,在黄海和渤海为5.5~7.0 m/s,在南海北部自东向西由8.5 m/s递减为6.0 m/s,北部湾最大风速区位于东方附近海域。  相似文献   

2.
3种海面风场资料在台湾海峡的比较和评估   总被引:7,自引:3,他引:4  
本文对3种海面风场资料(CCMP、NCEP、ERA)在台湾海峡风场的平面分布和时间变化特征进行了相互比较,并应用2011年浮标观测的风速和风向资料分别对3种风场的误差进行了分析及评估。主要结论如下:(1)3种资料风场的平面分布、季节变化和年际变化特征基本一致,差异主要表现在冬季NCEP资料在海峡中部和南部的风速相对CCMP和ERA资料较大;(2)CCMP资料的风速偏差、风速均方根误差和风向均方根误差分别为-0.62m/s、1.67m/s和31°,NCEP分别为0.15m/s、1.64m/s和31°,ERA分别为-1.36m/s、2.4m/s和33°;NCEP资料的风速整体略偏大、CCMP略偏小、ERA偏小明显,CCMP和NCEP资料比ERA资料更接近观测;(3)在西南季风影响期以及风速较小时(风速不大于10m/s)CCMP资料的风速可信度较高、NCEP资料的风速偏大;在东北季风影响期以及风速较大时(大于10m/s)NCEP资料的风速可信度较高、CCMP资料的风速偏小;(4)3种资料的风向误差接近,均在低风速时(风速小于5m/s)误差较大。本文的结论可以为台湾海峡的海洋和大气科学研究选择合适的海面风场资料提供借鉴和参考。  相似文献   

3.
利用国际海-气综合数据集(ICOADS)中的海面风场实测数据作为真实值,对海洋二号卫星散射计风场产品进行真实性检验,得到初步结论:(1)在中、低风速条件下,海洋二号散射计风速与ICOADS实测风速具有较好一致性,但在较高风速条件下海洋二号散射计会出现风速低估现象;(2)海洋二号散射计风向与ICOADS实测风向的误差主要集中在-15°—15°范围内,在低风速条件下,海洋二号散射计与ICOADS两者风向存在较大偏差,风向多解也主要发生在低风速时;(3)在2—24 m/s风速条件下,剔除超过3个标准偏差风速样本后,海洋二号与ICOADS两者风速的平均绝对误差为1.36 m/s,均方根误差为1.92 m/s,若忽略风向多解的影响,两者风向的平均绝对误差为14.98°,均方根误差为20.21°。  相似文献   

4.
北黄海QuikSCAT 卫星风速与浮标风速的对比分析   总被引:1,自引:0,他引:1  
对北黄海QuikSCAT散射计矢量风资料与黄海实测浮标站风速资料进行对比分析,结果表明:北黄海QuikSCAT卫星风速和浮标观测风速的大小基本吻合,二者平均偏差是0.26 m/s,相关系数是0.74;风向偏差较大,平均偏差是117.52°。根据卫星风速和浮标风速的对比分析结果,提出了修正方案。修正后的QuikSCAT风向与实测浮标站风向的平均偏差显著提高到20.44°。该修正方案实施简单,修正效果显著,为更准确地使用卫星资料提供了保证。  相似文献   

5.
我国近海风能资源分布特征分析   总被引:3,自引:0,他引:3       下载免费PDF全文
基于美国NCEP(National Centers for Environmental Prediction)的CFSR(Climate Forecast System Reanalysis)近20a(1991-2010)10m风场再分析数据(0.3°×0.3°,1h/次,简称CFSR风场),对我国近海风能资源分布特征进行了统计分析与评估。利用天津渤海A平台观测站(118°25′E,38°27′N)逐时观测风速数据对CFSR风速数据进行了检验,发现均方根误差和平均偏差仅为均较小(分别为2.28m/s与0.16m/s)。基于此CFSR风场,本文章进一步统计并给出了我国陆地年平均风功率密度分布,结果与第三次风能普查(1971-2000年)及相关文献结果 (1991-2010年)相当一致。依据国家风电场风能资源评估方法,由CFSR风场推算了我国近海20a平均的70m高度风能资源分布。结果显示,年平均风功率密度均达到了200 W/m2以上,大于6m/s的风速累积小时数为4 000h以上;其中台湾海峡和东海南部海区风能最为丰富,黄海中部、渤海中部和辽东湾海区风能次之。参照海上风场选址要求,28°N以北的近岸海域由于水深较浅,30m/s以上风速发生频次极低,比较适合建立海上风电场。  相似文献   

6.
利用1999年8月-2009年7月具有高精度的QuikSCAT/NCEP混合风场,对中国海海表风场的风速风向、极值风速、大风频率等特征进行分析,研究发现:MAM和SON的风速大值中心位于台湾海峡,JJA位于南海西南部海域,DJF大值区主要位于琉球群岛-台湾海峡-东沙群岛-平顺海岛一带,风向也具有明显的季节特征;极值风速...  相似文献   

7.
利用MASNUM海浪模式、ECMWF高分辨率风场对2012年8月份台风过程下的浙江海域的海浪状况进行了数值模拟,与近岸观测站的风、浪资料进行了对比检验和误差分析,最后针对8月份"达维""海葵"及"布拉万"3个台风过程对浙江海域的影响进行了对比分析.风速验证结果显示2个站点ECMWF风速和观测风速的偏差分别为0.18、-0.34 m/s,平均绝对误差则为2.57、1.96m/s,均方根误差为3.40、2.65 m/s,与观测风速有较好的一致性.海浪验证结果显示8月份有效波高的相关系数在0.84以上;8月份发生的"达维""海葵"及"布拉万"3个台风期间的有效波高、波周期的模拟值与观测值的均方根误差分别介于0.19~0.37 m、0.88~1.28 s,波向的平均绝对误差介于19.39°~37.65°,表明MASNUM海浪模式能够较好的再现浙江海域台风期间的海浪状况,能够较好模拟出浙江近海的最大波高.在数值模拟和实际观测的基础上,进一步的对比分析表明:"海葵"台风期间,浙江外海有效波高的最大值达7.6 m,而"达维"和"布拉万"台风期间,数值显示最大有效波高分别为4.4、5.4 m.  相似文献   

8.
ASCAT洋面风资料在中国北方海域的真实性检验   总被引:2,自引:0,他引:2  
采用北方海域6个海洋观测站风资料对2009年3月—2013年6月ASCAT卫星反演洋面风(10 m)资料进行了检验。ASCAT反演洋面风与测站风向、风速偏差均较小,二者风速平均偏差为0.99 m/s,ASCAT风速略高于测站风速,二者风向平均偏差为-12.97°,表明ASCAT洋面风资料在北方海域具有可信性;分风级统计表明,在北方海域,风力为0—7级(0—17.1 m/s)时,利用ASCAT风速代表洋面风速是可行的(其中风力为4—5级时,ASCAT与测站风速误差最小,为0.10 m/s),当风力达到8级以上时ASCAT的可信度较低。  相似文献   

9.
利用NCEP风场产品和dropsonde探测资料,对中国近海ASCAT全场和单点的风速反演精度进行验证分析.研究发现ASCAT反演风场与NCEP风场的风速、风向平均绝对偏差分别为2.06 m/s和21.98°;均方根误差分别为2.87 m/s和34.29°.两者风速反演精度较一致,风向误差相对偏大.ASCAT反演风场与dropsonde探测资料的风速、风向平均绝对偏差分别为1.55 m/s和3.43°;均方根误差分别为1.73 m/s和4.15°.ASCAT资料可以较好的反演台风风场.  相似文献   

10.
基于CCMP卫星风场数据和NECP-DOE再分析数据两者典型空间模态近20 a的长期统计关系,构建了中国海域海表面风的统计降尺度模型。降尺度模型交叉验证结果表明:模拟与观测两者风速在空间分布和变化趋势上均具有很好的吻合性,风速空间分布的相关性(R)可达到0.98以上,风速变化趋势的相关性(R)可达0.89以上。模型预测风速的均方根误差(RMSE)和绝对误差(AE),在绝大多数海区均低于0.25 m/s和0.30 m/s,相对误差(RE)-5%或5%的海区面积仅约占全海域面积的5%左右。从空间上而言,降尺度模型的模拟误差大值区多发生在陆域附近的近海区,主要原因是近海区影响风场的中小尺度天气因子众多。  相似文献   

11.
Sea surface wind stress variabilities near and off the east coast of Korea, are examined using 7 kinds of wind datasets from measurements at 2 coastal (land) stations and 2 ocean buoys,satellite scatterometer (QuikSCAT), and global reanalyzed products (ECMWF,NOGAPS,and NCEP/NCAR). Temporal variabilities are analyzed at 3 frequency bands; synoptic (2-20 d), intra-seasonal (20-90 d),and seasonal (>90 d).Synoptic and intra-seasonal  相似文献   

12.
台湾海峡西岸地面风气候变化分析   总被引:3,自引:0,他引:3  
利用1961—2005年台湾海峡西部沿岸平潭、崇武、东山及厦门等4个气象代表站的地面风观测资料,通过计算各代表站的年、季、月平均风速气候趋势系数和各风向频率趋势,较详细地分析了近45a来台湾海峡西部沿岸地面风的气候变化特征.结果表明:(1)近45a来各代表站年平均风速呈明显减小趋势,其中秋、冬、春季平均风速减小趋势明显,夏季风速减小趋势不明显.(2)海峡西部沿岸主导风向有沿海岸线由北向南顺转的特点.(3)海峡西部沿岸地面风速在上世纪80年代初存在着气候突变现象,80年代中期后年平均风速减小明显.  相似文献   

13.
Interannual variability of the Kuroshio intrusion in the South China Sea   总被引:13,自引:1,他引:13  
The interannual variability of intrusions of the Kuroshio into the South China Sea (SCS) is investigated using satellite remote sensing data supported by in-situ measurements. The mesoscale circulation of the SCS is predominantly wind-forced by the northeast winter and southwest summer monsoons. Although the region has been studied extensively, considerable uncertainty remains about the annual and interannual mesoscale nature of the circulation. The frequency and characteristics of Kuroshio intrusions and their effect on circulation patterns in the northeast SCS are also not well understood. Satellite observations of Sea Surface Temperature (SST) from the Tropical Rainfall Measuring Mission (TRMM) and the Advanced Very High Resolution Radiometer (AVHRR) and Sea Surface Height Anomalies (SSHA) from TOPEX/ Poseidon for the period 1997–2005 are used here to analyze the annual and interannual variability in Kuroshio intrusions and their effects on the region. Analysis of SST and SSHA shows the formation and characteristics of intrusions vary considerably each year. Typically, the intrusion occurs in the central region of Luzon Strait and results in an anticyclonic circulation in the northeastern SCS. However, in some years, the intrusion is located in the northern portion of Luzon Strait and a cyclonic intrusion results. Wind stress and wind stress curl derived from the National Aeronautics and Space Administration (NASA) QuikSCAT satellite scatterometer are used to evaluate the relationship between wind stress or wind stress curl and the presence of winter Kuroshio intrusions into the SCS.  相似文献   

14.
The C-band wind speed retrieval models, CMOD4, CMOD - IFR2, and CMOD5 were applied to retrieval of sea surface wind speeds from ENVISAT (European environmental satellite) ASAR (advanced synthetic aperture radar) data in the coastal waters near Hong Kong during a period from October 2005 to July 2007. The retrieved wind speeds are evaluated by comparing with buoy measurements and the QuikSCAT (quick scatterometer) wind products. The results show that the CMOD4 model gives the best performance at wind speeds lower than 15 m/s. The correlation coefficients with buoy and QuikSCAT winds are 0.781 and 0.896, respectively. The root mean square errors are the same 1.74 m/s. Namely, the CMOD4 model is the best one for sea surface wind speed retrieval from ASAR data in the coastal waters near Hong Kong.  相似文献   

15.
Currents in the Taiwan Strait as observed by surface drifters   总被引:2,自引:0,他引:2  
The trajectories of 110 satellite-tracked surface drifters from 1989 to 2007 were analyzed to elucidate near-surface circulation in the Taiwan Strait. Although the summer circulation observed generally agrees with previous studies, several aspects of the winter circulation were revealed by the analyses. Unlike many earlier studies, which have suggested that a northward (southward) current prevails in the eastern (western) part of the Taiwan Strait during the northeast monsoon season, this study shows that almost all winter drifters that entered the Taiwan Strait eventually moved southward. Inside the Taiwan Strait, northward moving tracks can only be found in the Penghu Channel. After passing the Penghu Channel, the drifters were blocked by the northeast monsoon wind and the Yun-Chang Rise, and turned southward. None of the drifters flowed persistently northward through the Taiwan Strait in winter. In the southern Taiwan Strait, three typical patterns of circulation were observed for the winter trajectories—the “throughflow” pattern that enters the South China Sea flowing westward along the slope; the loop current pattern that circulates anticyclonically and returns to the Kuroshio; and the blocked intrusion pattern that penetrates into the Taiwan Strait through the Penghu Channel.  相似文献   

16.
Since QuikSCAT is available in cloudy and rainy condition, its wind data are valuable in monitoring and real timeorecasting the wind field, especially in sparse genesis regions of tropical cyclones. In order to understand and investigate the impact of QuikSCAT wind data, the three-dimensional variational data assimilation (3D-VAR) of scatterometric wind data has been employed for the tropical cyclone “Vongfong” in the year 2002. The result shows that the QuikSCAT wind data have positive impact on the analysis and forecasting. But the positive impact is slight. The present results suggest that how to assimilate QuikSCAT wind data effectively is important and will be a challenge to meteorologists.  相似文献   

17.
陈德文  董剑  袁方超 《海洋通报》2012,31(4):376-383
建立了一种卫星遥感风场的最大风速半径(Rmax )反演方法.该方法基于 QuikSCAT 风场,结合 JTWC 台风参数资料,将遥感平均风剖面与 Holland 台风模型进行最小二乘法拟合来反演 Rmax.2001-2009年13个台风69幅数据反演结果统计分析表明:用气压表征台风强度的 P 算法遥感反演结果与 JTWC 分析结果的标准差为10.7 km,效果较好.此外,通过0513、0519和0221 3个典型台风过程的 Rmax 演变情况分析表明:对于对称性结构较好的成熟台风,反演结果能较好地反映出不同台风的 Rmax 尺寸差别,台风过程中 Rmax 的演变情况符合台风发展情况;台风风场对称性差、地形以及背景流场的影响,是导致 Rmax 反演出现较大偏差主要因素.  相似文献   

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