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Assimilation of Indian Doppler Weather Radar observations for simulation of mesoscale features of a land-falling cyclone

机译:吸收印度多普勒天气雷达观测资料以模拟降落气旋的中尺度特征

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In this paper, impact of Indian Doppler Weather Radar (DWR) data, i.e., reflectivity (Z), radial velocity (Vr) data individually and in combination has been examined for simulation of mesoscale features of a land-falling cyclone with Advance Regional Prediction System (ARPS) Model at 9-km horizontal resolution. The radial velocity and reflectivity observations from DWR station, Chennai (lat. 13.0°N and long. 80.0°E), are assimilated using the ARPS Data Assimilation System (ADAS) and cloud analysis scheme of the model. The case selected for this study is the Bay of Bengal tropical cyclone NISHA of 27–28 November 2008. The study shows that the ARPS model with the assimilation of radial wind and reflectivity observations of DWR, Chennai, could simulate mesoscale characteristics, such as number of cells, spiral rain band structure, location of the center and strengthening of the lower tropospheric winds associated with the land-falling cyclone NISHA. The evolution of 850 hPa wind field super-imposed vorticity reveals that the forecast is improved in terms of the magnitude and direction of lower tropospheric wind, time, and location of cyclone in the experiment when both radial wind and reflectivity observations are used. With the assimilation of both radial wind and reflectivity observations, model could reproduce the rainfall pattern in a more realistic way. The results of this study are found to be very promising toward improving the short-range mesoscale forecasts.
机译:在本文中,已经对印度多普勒天气雷达(DWR)数据(即反射率(Z),径向速度(Vr)数据)的影响进行了单独研究和组合研究,以利用提前区域预报模拟着陆旋风的中尺度特征。系统(ARPS)模型,水平分辨率为9公里。使用ARPS数据同化系统(ADAS)和该模型的云分析方案,对来自钦奈DWR站(北纬13.0°,东经80.0°)的径向速度和反射率观测值进行了同化。本研究选择的案例是2008年11月27日至28日的孟加拉湾热带气旋NISHA。该研究表明,结合径向风和钦奈DWR反射率观测资料的ARPS模型可以模拟中尺度特征,例如数量单元,螺旋雨带结构,中心位置以及与登陆降落旋风NISHA相关的对流层下部风增强。 850 hPa风场叠加涡度的演变表明,在同时使用径向风和反射率观测的情况下,对流层中较低的对流层风的大小和方向,时间和旋风的位置都得到了改善。通过对径向风和反射率观测值的同化,模型可以更真实地再现降雨模式。发现这项研究的结果对改善短程中尺度预报非常有前途。

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