Simpson William R, Mao Jingqiu, Fochesatto Gilberto J, Law Kathy S, DeCarlo Peter F, Schmale Julia, Pratt Kerri A, Arnold Steve R, Stutz Jochen, Dibb Jack E, Creamean Jessie M, Weber Rodney J, Williams Brent J, Alexander Becky, Hu Lu, Yokelson Robert J, Shiraiwa Manabu, Decesari Stefano, Anastasio Cort, D'Anna Barbara, Gilliam Robert C, Nenes Athanasios, St Clair Jason M, Trost Barbara, Flynn James H, Savarino Joel, Conner Laura D, Kettle Nathan, Heeringa Krista M, Albertin Sarah, Baccarini Andrea, Barret Brice, Battaglia Michael A, Bekki Slimane, Brado T J, Brett Natalie, Brus David, Campbell James R, Cesler-Maloney Meeta, Cooperdock Sol, Cysneiros de Carvalho Karolina, Delbarre Hervé, DeMott Paul J, Dennehy Conor J S, Dieudonné Elsa, Dingilian Kayane K, Donateo Antonio, Doulgeris Konstantinos M, Edwards Kasey C, Fahey Kathleen, Fang Ting, Guo Fangzhou, Heinlein Laura M D, Holen Andrew L, Huff Deanna, Ijaz Amna, Johnson Sarah, Kapur Sukriti, Ketcherside Damien T, Levin Ezra, Lill Emily, Moon Allison R, Onishi Tatsuo, Pappaccogli Gianluca, Perkins Russell, Pohorsky Roman, Raut Jean-Christophe, Ravetta Francois, Roberts Tjarda, Robinson Ellis S, Scoto Federico, Selimovic Vanessa, Sunday Michael O, Temime-Roussel Brice, Tian Xinxiu, Wu Judy, Yang Yuhan
Geophysical Institute, University of Alaska Fairbanks, Fairbanks, Alaska 99775, United States.
Department of Chemistry and Biochemistry, University of Alaska Fairbanks, Fairbanks, Alaska 99775, United States.
ACS EST Air. 2024 Feb 21;1(3):200-222. doi: 10.1021/acsestair.3c00076. eCollection 2024 Mar 8.
The Alaskan Layered Pollution And Chemical Analysis (ALPACA) field experiment was a collaborative study designed to improve understanding of pollution sources and chemical processes during winter (cold climate and low-photochemical activity), to investigate indoor pollution, and to study dispersion of pollution as affected by frequent temperature inversions. A number of the research goals were motivated by questions raised by residents of Fairbanks, Alaska, where the study was held. This paper describes the measurement strategies and the conditions encountered during the January and February 2022 field experiment, and reports early examples of how the measurements addressed research goals, particularly those of interest to the residents. Outdoor air measurements showed high concentrations of particulate matter and pollutant gases including volatile organic carbon species. During pollution events, low winds and extremely stable atmospheric conditions trapped pollution below 73 m, an extremely shallow vertical scale. Tethered-balloon-based measurements intercepted plumes aloft, which were associated with power plant point sources through transport modeling. Because cold climate residents spend much of their time indoors, the study included an indoor air quality component, where measurements were made inside and outside a house to study infiltration and indoor sources. In the absence of indoor activities such as cooking and/or heating with a pellet stove, indoor particulate matter concentrations were lower than outdoors; however, cooking and pellet stove burns often caused higher indoor particulate matter concentrations than outdoors. The mass-normalized particulate matter oxidative potential, a health-relevant property measured here by the reactivity with dithiothreiol, of indoor particles varied by source, with cooking particles having less oxidative potential per mass than pellet stove particles.
阿拉斯加分层污染与化学分析(ALPACA)野外实验是一项合作研究,旨在增进对冬季(寒冷气候和低光化学活性)污染源和化学过程的理解,调查室内污染,并研究频繁出现的温度逆温对污染扩散的影响。该研究在阿拉斯加费尔班克斯进行,许多研究目标是由当地居民提出的问题所驱动。本文描述了2022年1月和2月野外实验期间的测量策略和遇到的情况,并报告了测量如何实现研究目标的早期实例,特别是居民感兴趣的那些目标。室外空气测量显示颗粒物和污染物气体(包括挥发性有机碳物种)浓度很高。在污染事件期间,低风速和极其稳定的大气条件将污染物困在73米以下,垂直尺度极浅。基于系留气球的测量在高空截获了羽流,通过传输模型将其与发电厂点源联系起来。由于寒冷气候下居民大部分时间待在室内,该研究包括室内空气质量部分,在房屋内外进行测量以研究渗透和室内污染源。在没有烹饪和/或使用颗粒炉取暖等室内活动的情况下,室内颗粒物浓度低于室外;然而,烹饪和颗粒炉燃烧常常导致室内颗粒物浓度高于室外。室内颗粒物的质量归一化氧化潜力(此处通过与二硫苏糖醇的反应性来衡量的与健康相关的特性)因来源而异,烹饪产生的颗粒物每质量的氧化潜力低于颗粒炉产生的颗粒物。