Land-atmosphere coupling characteristics in summer based on microwave radiometer data at Nagqu site of Tibetan Plateau

IF 4.5 2区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES
Guantian Wang , Zeyong Hu , Haipeng Yu , Genhou Sun , Ruijia Niu , Xin Wang
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引用次数: 0

Abstract

The energy transfer within the planetary boundary layer (PBL) is a crucial variable influencing weather processes both on the Tibetan Plateau (TP) and in its downstream areas. This paper assesses the accuracy of ground-based microwave radiometer (MWR) in comparison with radiosonde data in different weather conditions. The effects of surface heat flux and precipitation on the atmosphere in different weather conditions are quantified to facilitate the study of land- atmosphere coupling in the Nagqu region. The findings indicate that microwave radiometer can provide accurate measurements of air temperature within 4 km height and specific humidity below cloud cover. The variation in surface sensible heat aligns with changes in the convective boundary layer (CBL) height, whereas latent heat shows no significant correlation during the diurnal cycle. Furthermore, daily precipitation process influences the lower atmosphere in the Nagqu region, with the impact scaling with precipitation intensity. The MWR observations indicate that precipitation generated by the Tibetan Plateau vortex (TPV) has the most significant impact on the land-atmosphere energy exchange.
行星边界层(PBL)内的能量传递是影响青藏高原及其下游地区天气过程的关键变量。本文评估了地基微波辐射计(MWR)与无线电探空仪数据在不同天气条件下的精度对比。量化了不同天气条件下地表热通量和降水对大气的影响,以促进那曲地区陆地与大气耦合的研究。研究结果表明,微波辐射计可精确测量 4 千米高度以内的气温和云层以下的湿度。地表显热的变化与对流边界层(CBL)高度的变化一致,而潜热在昼夜周期内没有明显的相关性。此外,每日降水过程都会对那曲地区的低层大气产生影响,影响程度随降水强度的变化而变化。MWR观测结果表明,青藏高原低涡(TPV)产生的降水对陆地-大气能量交换的影响最大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Atmospheric Research
Atmospheric Research 地学-气象与大气科学
CiteScore
9.40
自引率
10.90%
发文量
460
审稿时长
47 days
期刊介绍: The journal publishes scientific papers (research papers, review articles, letters and notes) dealing with the part of the atmosphere where meteorological events occur. Attention is given to all processes extending from the earth surface to the tropopause, but special emphasis continues to be devoted to the physics of clouds, mesoscale meteorology and air pollution, i.e. atmospheric aerosols; microphysical processes; cloud dynamics and thermodynamics; numerical simulation, climatology, climate change and weather modification.
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