阿拉斯加中部冬季北极空气污染:前alpaca运动

E. Ioannidis, K. Law, Jean-Christophe Raut, T. Onishi, L. Marelle, Tjarda Roberts, B. Barret, B. d'Anna, Brice Temine-Roussel, N. Mölders, J. Mao, W. Simpson
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引用次数: 0

摘要

冬季的北极受到来自中纬度地区的空气污染的影响,导致北极雾霾的形成,以及在非常寒冷的冬季条件下为取暖和发电而燃烧的当地排放。这导致了严重的空气污染事件,气溶胶浓度增加,在较清洁的时期相互分散。然而,在寒冷/黑暗的北极冬季条件下,二次气溶胶颗粒(硫酸盐、有机物、硝酸盐)的形成可能导致这些污染事件,人们对其了解甚少。在这项有助于北极空气污染:气候、环境和社会——阿拉斯加分层污染和北极化学分析(pace - alpaca)倡议的研究中,在2019-2020年冬季alpaca前运动期间,使用化学天气研究预报模型(WRF-Chem)来调查阿拉斯加中部的冬季污染,重点是费尔班克斯地区。费尔班克斯是美国冬季污染最严重的城市,原因是当地的高排放量和强烈的地表逆温现象将污染物困在地表附近。首先,在阿拉斯加测试了不同的WRF气象和地面方案,并特别关注改善冬季边界层结构的模拟,包括逆温。根据对现有数据的评估,选择了一个最佳的WRF设置,其垂直分辨率提高到2公里以下。其次,使用改进的WRF设置,使用准半球WRF- chem模拟来评估大尺度天气条件,并评估在竞选期间影响阿拉斯加中部的来自偏远人为和自然来源的本底气溶胶。该模型与评估短期污染物对气候和空气质量的影响(ECLIPSE) v6b人为排放和改进的海洋喷雾气溶胶排放一起运行。正在调查与现有数据比较的模拟气溶胶的差异(例如缺少暗形成机制、去除过程的处理)。第三,利用高分辨率发射(如2019年CAMS库存),包括费尔班克斯地区的局部点源,进行精细分辨率模拟,研究在野外活动期间观测到的不同气象条件下影响气溶胶的化学和动力学过程,包括冷稳定期和高空气团可能混合的时期。该模型根据从地面监测点收集的可用气溶胶、氧化剂(臭氧)和气溶胶前体数据进行评估,并在运动前收集,包括在最低20米收集的垂直剖面数据。研究了冬季条件下模拟气溶胶对相对湿度、温度梯度和垂直混合等气象因子的敏感性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wintertime Arctic Air Pollution over central Alaska: pre-ALPACA campaign

The wintertime Arctic is influenced by air pollution transported from mid-latitudes, leading to formation of Arctic Haze, as well as local emissions such as combustion for heating and power production in very cold winter conditions. This contributes to severe air pollution episodes, with enhanced aerosol concentrations, inter-dispersed with cleaner periods. However, the formation of secondary aerosol particles (sulphate, organics, nitrate) in cold/dark wintertime Arctic conditions, which could contribute to these pollution episodes, is poorly understood.

In this study, which contributes to the Air Pollution in the Arctic: Climate, Environment and Societies - Alaskan Layered Pollution and Arctic Chemical Analysis (PACES-ALPACA) initiative, the Weather Research Forecasting Model with chemistry (WRF-Chem) is used to investigate wintertime pollution over central Alaska focusing on the Fairbanks region, during the pre-ALPACA campaign in winter 2019-2020. Fairbanks is the most polluted city in the United States during wintertime, due to high local emissions and the occurrence of strong surface temperature inversions trapping pollutants near the surface.

Firstly, different WRF meteorological and surface schemes were tested over Alaska with a particular focus on improving simulations of the wintertime boundary layer structure including temperature inversions. An optimal WRF set-up, with increased vertical resolution below 2km, was selected based on evaluation against available data.

Secondly, a quasi-hemispheric WRF-Chem simulation, using the improved WRF setup, was used to assess large-scale synoptic conditions and to evaluate background aerosols originating from remote anthropogenic and natural sources affecting central Alaska during the campaign. The model was run with Evaluating the Climate and Air Quality Impacts of Short-Lived Pollutants (ECLIPSE) v6b anthropogenic emissions and improved sea-spray aerosol emissions. Discrepancies in modelled aerosols compared available data are being investigated (e.g. missing dark formation mechanisms, treatment of removal processes).

Thirdly, fine resolution simulations, using high resolution emissions (e.g. 2019 CAMS inventory), including local point sources, over the Fairbanks region, were used to investigate chemical and dynamical processes influencing aerosols under different meteorological conditions observed during the field campaign including a cold stable episode and a period with possible mixing of air masses from aloft. The model was evaluated against available aerosol, oxidant (ozone) and aerosol precursor data from surface monitoring sites and collected during the pre-campaign, including vertical profile data collected in the lowest 20m. The sensitivity of modelled aerosols to meteorological factors, such as relative humidity, temperature gradients and vertical mixing under winter conditions are investigated.

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