Summertime Carbonaceous Aerosol in Interior Versus Coastal Northern Alaska

IF 3.8 2区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Allison M. Welch, Tate Matthews, Rebecca J. Sheesley, Hui Wang, Kelley C. Barsanti, Nicole Nielsen, Xiaomei Xu, Lurui Niu, Alex B. Guenther, Claudia I. Czimczik
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Abstract

Rapid warming is likely increasing primary production and wildfire occurrence in the Arctic. Projected changes in carbonaceous aerosols during the summer will impact atmospheric chemistry and climate, but our understanding of these processes is limited by sparse observations. Here, we characterize carbonaceous aerosol in Alaska, USA: Toolik Field Station in the Interior and the Atmospheric Radiation Measurement facility at Utqiaġvik on the Arctic coast, during the summers of 2022 and 2023. We estimated PM2.5 and PM10 concentrations using laser light scattering (PurpleAir sensors) and examined total carbon (TC) and its organic carbon (OC) and elemental carbon (EC) fractions in total suspended particles (TSP). We investigated the dominant sources of carbonaceous aerosol using air mass backward-trajectories from the NOAA HYSPLIT model and radiocarbon source apportionment of TC. TC concentrations were about twice as high in the Interior compared to the coast, with contemporary sources dominating at both Toolik (95%–99%) and Utqiaġvik (86%–89%) over minor contributions from fossil sources. Elevated PM, TC, OC, and EC concentrations coincided with major boreal forest fire activity in North America that brought smoke to the region. The radiocarbon signature of EC measured at Toolik during these wildfire events indicated that over 90% of the EC came from contemporary sources. Our measurements demonstrate the potential for Arctic aerosol concentrations to respond significantly to climate warming-induced changes to the landscape and emphasize the need for continuous atmospheric monitoring to advance our understanding of this rapidly changing environment.

Abstract Image

夏季阿拉斯加内陆与北部沿海的碳质气溶胶
快速变暖可能会增加北极地区的初级生产和野火发生率。预计夏季含碳气溶胶的变化将影响大气化学和气候,但我们对这些过程的理解受到稀疏观测的限制。在这里,我们描述了美国阿拉斯加州的碳质气溶胶:在2022年和2023年夏季,位于北极海岸Utqiaġvik的Toolik野外站和大气辐射测量设施。我们使用激光散射(PurpleAir传感器)估算PM2.5和PM10浓度,并检测总悬浮颗粒(TSP)中的总碳(TC)及其有机碳(OC)和元素碳(EC)组分。我们利用NOAA HYSPLIT模式的气团后向轨迹和TC的放射性碳源分配来研究含碳气溶胶的主要来源。内陆的TC浓度大约是海岸的两倍,当代来源在Toolik(95%-99%)和Utqiaġvik(86%-89%)占主导地位,而化石来源的贡献较小。PM、TC、OC和EC浓度升高与北美主要的北方森林火灾活动相吻合,这些森林火灾给该地区带来了烟雾。在这些野火事件期间在图里克测量的EC的放射性碳特征表明,超过90%的EC来自当代来源。我们的测量表明,北极气溶胶浓度可能对气候变暖引起的景观变化做出显著响应,并强调需要持续的大气监测,以促进我们对这种快速变化的环境的理解。
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来源期刊
Journal of Geophysical Research: Atmospheres
Journal of Geophysical Research: Atmospheres Earth and Planetary Sciences-Geophysics
CiteScore
7.30
自引率
11.40%
发文量
684
期刊介绍: JGR: Atmospheres publishes articles that advance and improve understanding of atmospheric properties and processes, including the interaction of the atmosphere with other components of the Earth system.
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