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Connecting Subseasonal Movements of the Winter Mean Ridge in Western

机译:连接西部冬季平均脊的亚季节运动

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A 10-yr record of PM2.5 (particulate matter of aerodynamic diameter <= 2.5 mu m), collected in Cache Valley near downtown Logan, Utah, reveals a strong peak in the PM2.5 concentration climatology that is tightly localized in mid-January. The cause of this subseasonal variation in the PM2.5 climatology is investigated through dynamical downscaling and large-scale diagnostics. Climatological analysis of the U.S. winter mean ridge reveals a mid-January subseasonal shift in the zonal direction, likely in response to variations in the Rossby wave source over the central North Pacific Ocean. This displacement of the winter mean ridge, in turn, has an impact on regional-scale atmospheric conditions-specifically, subsidence with local leeside enhancements and midlevel warming over Cache Valley. The analyses of this study indicate that the subseasonal peak of long-term mean PM2.5 concentrations in Cache Valley is linked to the large-scale circulations' subseasonal evolution, which involves remote forcing in the circumpolar circulations as well as possible tropical-midlatitude interactions. This subseasonal evolution of the winter mean circulation also affects precipitation along the West Coast.
机译:在犹他州洛根市中心附近的卡奇谷收集的10年PM2.5(空气动力学直径小于2.5微米的颗粒物)记录显示,PM2.5浓度气候出现了一个强烈的峰值,该峰值集中在中部。一月。通过动态降尺度和大规模诊断研究了PM2.5气候下这种季节性变化的原因。美国冬季平均山脊的气候学分析显示,一月中旬在季节方向上发生了亚季节变化,这可能是由于北太平洋中部罗斯比波源的变化引起的。冬季平均山脊的这种位移反过来又对区域范围的大气条件产生了影响,特别是对当地背风的下沉和喀什谷中部变暖的沉降。这项研究的分析表明,卡谢河谷长期平均PM2.5浓度的亚季节峰值与大规模环流的亚季节演变有关,这涉及到极地环流的强迫作用以及可能的热带-中纬度相互作用。冬季平均环流的这种季节性变化也影响了西海岸的降水。

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