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Maintenance and Sudden Change of a Strong Elevated Ducting Event Associated with High Pressure and Marine Low-Level Jet 被引量:2
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作者 Zhichao LIANG Juli DING +2 位作者 Jianfang FEI Xiaoping CHENG Xiaogang HUANG 《Journal of Meteorological Research》 SCIE CSCD 2020年第6期1287-1298,共12页
Capture of a strong elevated ducting event,especially its maintenance and sudden change,is of great value to airborne radar to achieve its beyond-the-line-of-sight detection.However,the knowledge is not easily accessi... Capture of a strong elevated ducting event,especially its maintenance and sudden change,is of great value to airborne radar to achieve its beyond-the-line-of-sight detection.However,the knowledge is not easily accessible over the open ocean and hence very rare.During the Air–Sea Interaction Survey(ASIS)over the western North Pacific(WNP)in May 2016,a strong elevated ducting event with a long-life period and sudden change in its evolution was observed.Measurements from the ASIS,images from the Himawari-8 satellite,reanalysis data from the ECMWF,and Weather Research and Forecasting(WRF)model,were used to analyze the maintenance and sudden change of this strong ducting event,together with the model performance on simulating it.The results showed that the maintenance of strong elevated ducts,with their tops ranging from 750 to 1050 m and average strength of approximately 38 M units,was caused by a strong dry air mass capping over the wet marine atmospheric boundary layer(MABL),together with the subsidence inversion associated with high pressure.The WRF model performs well in simulating them.However,a sudden increase in duct height with a slight decrease of strength was recorded by the subsequent GPS radiosonde,which was finally contributed to the mechanical turbulent inversion and hydrolapse associated with the marine low-level jet(MLLJ).The height of the maximum horizontal wind speed(Umh)of the MLLJ corresponds well with the bottom of the trapping layer.However,these jet-relevant ducts are generally weak and it is difficult to accurately simulate them by using the mesoscale numerical model,since the wind-shear produced eddies are too small to be properly parameterized. 展开更多
关键词 atmospheric ducts elevated ducts marine atmospheric boundary layer(mabl) low-level jet numerical simulation
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一次层积云发展过程对黑潮延伸体海洋锋强迫的响应研究——观测与机制分析 被引量:9
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作者 张苏平 王媛 +2 位作者 衣立 刘海坤 王倩 《大气科学》 CSCD 北大核心 2017年第2期227-235,共9页
由于缺乏海上现场观测,对天气尺度扰动下,海表面温度锋(海洋锋)对海洋大气边界层(MABL)垂直结构和MABL内海洋性低云(marine stratus)的影响研究较少。2014年4月12日,中国海洋大学东方红2号科学考察船在黑潮延伸体海区的海洋锋附近捕捉... 由于缺乏海上现场观测,对天气尺度扰动下,海表面温度锋(海洋锋)对海洋大气边界层(MABL)垂直结构和MABL内海洋性低云(marine stratus)的影响研究较少。2014年4月12日,中国海洋大学东方红2号科学考察船在黑潮延伸体海区的海洋锋附近捕捉到一次层积云的迅速发展。在比较稳定的天气形势下,由暖水侧向北穿越海洋锋时,云底和云顶高度升高,云区范围迅速扩大。本文利用多种大气—海洋联合观测数据,结合卫星观测和再分析资料,对此次层积云迅速发展的机理进行了综合分析。结果表明,在海上低压后部西北风控制下,在海洋锋的暖水侧(下风方)形成热通量大值中心和低压槽,有助于高空西风动量下传,进而又使得海气界面热通量增加,这种正反馈效应为MABL内混合层厚度加大和云底/顶高度在海洋锋的下风方升高提供有利背景条件。4月12日09:00~12:00(协调世界时),来自日本本州岛陆地的低空暖平流到达该热通量中心上空,暖平流与热通量中心的共同作用,导致该时段近海面暖中心强度异常增加,MABL中静力不稳定层加深和低压槽发展,综合作用的结果使得混合层厚度明显加深,云底高度升高,云区迅速发展。本研究有助于理解在复杂大气背景扰动下MABL对海洋强迫的响应机理。 展开更多
关键词 海洋锋 海洋大气边界层 层积云 机理
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低云在不同季节对东海黑潮海洋锋响应的个例研究 被引量:8
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作者 杨爽 刘敬武 张苏平 《中国海洋大学学报(自然科学版)》 CAS CSCD 北大核心 2015年第10期7-17,共11页
本文采用高分辨率的CALIPSO(Cloud-Aerosol Lidar and Infrared Pathfinder Satellite Observations)卫星资料,结合欧洲中心的再分析资料,在东海黑潮区域分别选取冬、春、夏季的典型个例,对比分析层积云、层云、海雾3种边界层云。分... 本文采用高分辨率的CALIPSO(Cloud-Aerosol Lidar and Infrared Pathfinder Satellite Observations)卫星资料,结合欧洲中心的再分析资料,在东海黑潮区域分别选取冬、春、夏季的典型个例,对比分析层积云、层云、海雾3种边界层云。分析结果显示,层积云发生在高空槽后,云顶1.2~2.5km,云底0.7~2km,云顶平滑度差,海气界面不稳定,地表偏北风,边界层不稳定,底层混合均匀,云层上方有逆温层存在;层云发生在高空槽前,伴有强烈冷平流,位于地面低压前部,云顶高度300~700m,较平滑,云底不接地,海气界面稳定,地表南风,边界层稳定,有不接地逆温,云区无下沉运动;海雾发生在高空槽后,低层有暖平流,地面位于高压中心,雾顶小于700m,底部接地,雾顶最为平滑,海气界面稳定,地表南风,风速很小,边界层稳定,逆温层很低,并伴有强烈下沉运动,地表相对湿度大于90%。黑潮锋通过影响海气边界层,进而影响低云的高度、形态等特性,三种低云高度自南向北均逐渐下降,在SST大梯度区有突变,海雾与低云性质相似,在一定条件下可以相互转化。 展开更多
关键词 CALIPSO卫星 黑潮锋 低云 海气边界层
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一次层积云发展过程对黑潮延伸体海洋锋强迫的响应研究——数值模拟和试验 被引量:4
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作者 王媛 张苏平 +2 位作者 衣立 刘敬斌 郭九华 《中国海洋大学学报(自然科学版)》 CAS CSCD 北大核心 2017年第7期10-20,共11页
2014年4月12日,中国海洋大学东方红2号调查船在黑潮延伸体海区由暖水侧向北穿越海洋锋时,捕捉到了一次层积云云底和云顶高度升高的过程。本文利用船测数据结合WRF模式进行数值模拟和试验,对此次层积云迅速发展的机理进行了综合分析。结... 2014年4月12日,中国海洋大学东方红2号调查船在黑潮延伸体海区由暖水侧向北穿越海洋锋时,捕捉到了一次层积云云底和云顶高度升高的过程。本文利用船测数据结合WRF模式进行数值模拟和试验,对此次层积云迅速发展的机理进行了综合分析。结果显示,在黑潮延伸体区域,西北风控制下,海洋锋和来自日本本州岛陆地的低空暖平流共同作用使得层积云发展。通过数值试验发现,海洋锋作为背景场,为该区域提供了200W·m^(-2)的潜热通量并导致气压下降,从而在暖水侧产生了0.05m·s^(-1)的上升运动。同时,来自日本本州岛陆地的暖平流作为日尺度扰动,在09-12UTC到达潜热通量中心,导致该时段该区域2~3℃的增温和0.5hPa的降压。但两者并非单纯线性叠加,而是在海洋锋提供背景条件的前提下,暖平流产生触发作用,通过局地海气相互作用,使得该时段该区域垂直运动异常增强,进而造成云的异常发展。本研究有助于理解在复杂大气背景扰动扰动下MABL对海洋强迫的响应机理,同时对于理解海洋对边界层的影响又反馈到海洋的过程有一定帮助。 展开更多
关键词 海洋锋 海洋大气边界层 层积云 机理 数值模拟
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Co-variation of the surface wind speed and the sea surface temperature over mesoscale eddies in the Gulf Stream region:momentum vertical mixing aspect
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作者 HE Jingjing LIN Xiaopei 《Journal of Oceanology and Limnology》 SCIE CAS CSCD 2019年第4期1154-1164,共11页
The co-variation of surface wind speed and sea surface temperature (SST) over the Gulf Stream frontal region is investigated using high-resolution satellite measurements and atmospheric reanalysis data. Results show t... The co-variation of surface wind speed and sea surface temperature (SST) over the Gulf Stream frontal region is investigated using high-resolution satellite measurements and atmospheric reanalysis data. Results show that the pattern of positive SST-surface wind speed correlations is anchored by strong SST gradient and marine atmospheric boundary layer (MABL) height front, with active warm and cold-ocean eddies around. The MABL has an obvious transitional structure along the strong SST front, with greater (lesser) heights over the north (south) side. The significant positive SST-surface wind-speed perturbation correlations are mostly found over both strong warm and cold eddies. The surface wind speed increases (decreases) about 0.32 (0.41) m/s and the MABL elevates (drops) approximate 55 (54) m per 1℃ of SST perturbation induced by warm (cold) eddies. The response of the surface wind speed to SST perturbations over the mesoscale eddies is mainly attributed to the momentum vertical mixing in the MABL, which is confirmed by the linear relationships between the downwind (crosswind) SST gradient and wind divergence (curl). 展开更多
关键词 GULF Stream positive sea SURFACE temperature (SST)-surface wind speed correlation marine atmospheric boundary layer (mabl) height MESOSCALE EDDY MOMENTUM vertical mixing
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Seasonal response of surface wind to SST perturbation in the Northern Hemisphere
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作者 HE Jingjing HAN Xueshuang LIN Xiaopei 《Journal of Oceanology and Limnology》 SCIE CAS CSCD 2019年第4期1165-1175,共11页
The seasonal response of surface wind speed to sea surface temperature (SST) change in the Northern Hemisphere was investigated using 10 years (2002-2011) high-resolution satellite observations and reanalysis data. Th... The seasonal response of surface wind speed to sea surface temperature (SST) change in the Northern Hemisphere was investigated using 10 years (2002-2011) high-resolution satellite observations and reanalysis data. The results showed that correlation between surface wind speed perturbations and SST perturbations exhibits remarkable seasonal variation, with more positive correlation is stronger in the cold seasons than in the warm seasons. This seasonality in a positive correlation between SST and surface wind speed is attributable primarily to seasonal changes of oceanic and atmospheric background conditions in frontal regions. The mean SST gradient and the prevailing surface winds are strong in winter and weak in summer. Additionally, the eddy-induced response of surface wind speed is stronger in winter than in summer, although the locations and numbers of mesoscale eddies do not show obvious seasonal features. The response of surface wind speed is apparently due to stability and mixing within the marine atmospheric boundary layer (MABL), modulated by SST perturbations. In the cold seasons, the stronger positive (negative) SST perturbations are easier to increase (decrease) the MABL height and trigger (suppress) momentum vertical mixing, contributing to the positive correlation between SST and surface wind speed. In comparison, SST perturbations are relatively weak in the warm seasons, resulting in a weak response of surface wind speed to SST changes. This result holds for each individual region with energetic eddy activity in the Northern Hemisphere. 展开更多
关键词 SEASONALITY positive correlation sea surface temperature (SST) gradient marine atmospheric boundary layer (mabl) height MESOSCALE EDDY
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