An automatic weather station(AWS) has been installed at the Qomolangma Station of the China Academy of Sciences(QOMS) since 2005, in a northern Himalayan valley near Mount Everest, with an altitude of 4,270 m a.s.l.. Nine years of meteorological records(2006–2014) from the automatic weather station(AWS) were analyzed in this study, aiming to understand the response of local weather to the seasonal transition on the northern slopes of Mount Everest, with consideration of the movement of the subtropical jet(STJ) and the onset of the Indian Summer Monsoon(ISM). We found:(1) Both the synoptic circulation and the orography have a profound influence on the local weather, especially the local circulation.(2) Southwesterly(SW) and southeasterly(SE) winds prevail alternately at QOMS in the afternoon through the year. The SW wind was driven by the STJ during the non-monsoon months, while the SE was induced by the trans-Himalayan flow through the Arun Valley, a major valley to the east of Mount Everest, under a background of weak westerly winds aloft.(3) The response of air temperature(T) and specific humidity(q) to the monsoon onset is not as marked as that of the nearsurface winds. The q increases gradually and reaches a maximum in July when the rainy period begins.(4) The alternation between the SW wind at QOMS and the afternoon SE wind in the pre-monsoon season signals the northward shift of the STJ and imminent monsoon onset. The average interval between these two events is 14 days. 相似文献
This study focuses on the precipitation extremes recorded on the northern and southern slopes of the central Himalaya, especially those documented at higher altitudes. Daily precipitation data recorded over a 35-year period at nine meteorological stations in the region were studied. We used the precipitation extreme indices delineated by the Expert Team on Climate Change Detection and Indices (ETCCDI). The spatial and temporal variations in these precipitation extremes were calculated. When regional patterns were investigated to detect any anomalies, only 1 of the 10 precipitation extreme indices from the southern slopes of the central Himalaya showed a statistically significant trend; none from the northern slopes of the central Himalaya highlighted a statistically significant trend. On the southern slopes, all indices increased, apart from the maximum 1-day precipitation (RX1) and simple daily precipitation intensity (SDII) indices. Indices such as the consecutive dry days (CDDs) and RX1 indices exhibited similar increases on both the northern and southern slopes of the central Himalaya. These results suggest that increases in precipitation have been accompanied by an increasing frequency of extremes over the southern central Himalaya. Nonetheless, no relation could be established between the precipitation extreme indices and circulation indices for higher altitudes.
为了提高对黄土高原γ中尺度致洪暴雨预报和预警能力,利用NCEP 1°×1°逐6 h再分析资料、常规观测资料、多普勒天气雷达资料等,对2015年7月18日黄土高原发生的一次γ中尺度致洪暴雨进行了诊断分析。结果表明:700~200 h Pa深厚低涡和低层切变是这次暴雨的主要影响系统;暴雨发生前暴雨区大气层结对流不稳定增强和对流有效位能的增长为强天气的发生提供了有利条件;暴雨发生前地面图上生成的湿焓高能中心、850 h Pa和700 h Pa等压面上生成的对流涡度矢量垂直分量高值中心和暴雨落区形成很好的对应关系;线状中尺度对流系统中β中尺度对流云团的发展加强对强降水有直接影响;线状中尺度对流系统在雷达回波图上体现为多个对流单体组成的带状回波,影响暴雨区的对流单体回波中心强度50 d BZ,径向速度场分析表明γ中尺度气旋性辐合的生成和维持为暴雨的持续提供了动力条件。 相似文献