关于各种地形的气压和温度相关性

IF 4.5 2区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES
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引用次数: 0

摘要

温度(T)、压力(p)和密度(ρ)是描述大气行为的基本变量。本研究通过评估欧洲不同气象站的数据,研究了地球表面附近这些变量在实际条件下的相互依存关系。研究发现,气压和气温之间的相关性与 PBL 的动态密切相关,因此可以分为两组。第一组包括平原或谷底的所有站点,显示出弱相关性 R(p,T)。在这些站点,代表每小时气压与温度的二维密度图呈明显的三角形。无论位置如何,该三角形的上边界始终拟合一个具有恒定斜率和截距的线性方程,截距与站点的平均气压成比例。这一发现对加强气压和气温数据的质量检查具有重要意义,可以利用统一方程识别不可靠的测量结果。相比之下,第二组站点的 R(p,T)呈强正相关,密度图更加线性,包括所有靠近山顶的站点。与在相应高度提取的无线电探测数据相比,它们的相关性表现出相同的特征。研究得出的结论是:i) 第一组台站受到非静水过程的显著影响,如 PBL 中的湍流、摩擦和表面辐射加热/冷却,导致较短时间尺度上的 R(p,T)呈弱负值,在较长持续时间内变为空值;ii) 第二组台站的 R(p,T)特征与自由大气类似,主要受静水平衡和显热平流的调节。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On atmospheric pressure and temperature correlation across various terrain types
Temperature (T), pressure (p), and density (ρ) are fundamental variables describing the atmospheric behavior. This study investigates the interdependence of these variables near Earth's surface in real-world conditions, by evaluating data from different European weather stations. It has been found that the correlation between pressure and temperature is strongly related to the dynamics of the PBL that facilitates a two-group classification. The first group includes all the stations in the plain or in the valley-floor and exhibits a weak correlation, R(p,T). 2D density plots representing hourly pressure against temperature have a distinctive triangular shape at these stations. Regardless of location, the upper boundary of this triangle consistently fits a linear equation with a constant slope and an intercept that scales with the average pressure of the station. This finding holds promising implications for enhancing the quality check of pressure and temperature data, enabling the identification of implausible measurements using a unified equation. In contrast, the second group includes stations with a strongly positive correlation R(p,T) and a more linear density plot; it includes all stations near a mountain-top. Their correlations exhibit identical features when compared to radiosounding data extracted at corresponding heights. The study concludes that: i) the first group of stations is significantly influenced by non-hydrostatic processes such as turbulence, friction and surface radiative heating/cooling in the PBL, resulting in weakly negative R(p,T) for shorter timescales that become null over longer durations; ii) the second group of stations has R(p,T) characteristics similar to the free atmosphere, predominantly regulated by hydrostatic balance and the advection of sensible heat.
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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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