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西北太平洋海气界面湍流热通量低频振荡强度的特征被引量:2
2009年
利用美国伍兹霍尔海洋研究所客观分析海气通量项目提供的1985~2006年日平均的湍流热通量及相关基本变量数据,通过小扰动方法和相关分析,详细讨论了西北太平洋湍流热通量低频振荡强度的特征.结果表明:(1)西北太平洋潜热低频振荡强度的空间分布主要受海气比湿差低频振荡强度(△q')和海气比湿差平均值(△q^-)的空间分布影响;感热低频振荡强度的空间分布主要受海气温差低频振荡强度(△T)的空间分布影响.(2)湍流热通量低频振荡强度冬季最强,夏季最弱.潜热低频振荡强度的季节变化受△q'强度季节变化、海表面风速低频振荡强度(U')季节变化、△q^-季节变化和风速平均值U^-季节变化共同影响;感热低频振荡强度的季节变化主要受△T强度季节变化和U^-季节变化的影响.(3)20°N以北海域和热带西太平洋,潜热(感热)低频振荡主要受大气变量q'a(Ta')和U'的影响,表现为海洋对大气强迫的响应;20°N以南的热带中东太平洋,qs'(Ts')的变化对潜热(感热)的低频振荡也有较大影响.
李根任保华郑建秋王俊
关键词:潜热通量感热通量低频振荡
Traditional El Nio and El Ni o Modoki Revisited:Is El Nio Modoki Linearly Independent of Traditional El Nio?被引量:7
2010年
The present study revisited the first two leading modes of tropical Pacific sea surface temperature anomalies (SSTA) during the period of 1979-2008. It is suggested that the so-called El Nino Modoki, which is captured by the second mode, exists objectively and exhibits obvious differences from traditional El Nifio, which is captured by the first mode, in terms of its spatial characteristics. Furthermore, the authors found that El Nino Modoki is linearly independent of traditional El Nino; hence, it cannot be described as part of the traditional El Nino evolution, and vice versa.
LI Gen REN Bao-Hua YANG Cheng-Yun ZHENG Jian-Qiu
Characteristics of low-frequency oscillation intensity of airsea turbulent heat fluxes over the northwest Pacific被引量:1
2009年
Based on the daily turbulent heat fluxes and related meteorological variables datasets (1985-2006) from Objectively Analyzed air-sea Fluxes (OAFlux) Project of Woods Hole Oceanographic Institution (WHOI), characteristics of low-frequency oscillation intensity of air-sea turbulent heat fluxes over the northwest Pacific are analyzed by linear perturbation method and correlation analysis. It can be concluded that: 1) the distribution of low-frequency oscillation intensity of latent heat flux (LHF) over the northwest Pacific is mainly affected by that of low-frequency oscillation intensity of anomalous air-sea humidity gradient (Δq′) as well as mean air-sea humidity gradient ( Δ q), while the distribution of low-frequency oscillation intensity of sensible heat flux (SHF) is mainly affected by that of low-frequency oscillation intensity of anomalous air-sea temperature gradient (ΔT′). 2) The low-frequency oscillation of turbulent heat fluxes over the northwest Pacific is the strongest in winter and the weakest in summer. And the seasonal transition of low-frequency oscillation intensity of LHF is jointly influenced by those of low-frequency oscillation intensity of Δq′, low-frequency oscillation intensity of anomalous wind speed (U′), Δ q and mean wind speed (U ), while the seasonal transition of low-frequency oscillation intensity of SHF is mainly influenced by those of low-frequency oscillation intensity of ΔT′ and U . 3) Over the tropical west Pacific and sea areas north of 20°N, the low-frequency oscillation of LHF (SHF) is mainly influenced by atmospheric variables qa′ (Ta′) and U′, indicating an oceanic response to overlying atmospheric forcing. In contrast, over the tropical eastern and central Pacific south of 20°N, qs′ (Ts′) also greatly influences the low-frequency oscillation of LHF (SHF).
LI Gen, REN BaoHua, ZHENG JianQiu & WANG Jun School of Earth and Space Sciences, University of Science and Technology of China, Hefei 230026, China
关键词:NORTHWESTPACIFICLATENTHEATFLUXHEATFLUXLOW-FREQUENCY
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