新疆大气颗粒物污染时空演变及沙尘组分研究

薛一波, 张小啸, 雷加强, 李生宇

中国环境科学 ›› 2024, Vol. 44 ›› Issue (6) : 3012-3020.

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中国环境科学 ›› 2024, Vol. 44 ›› Issue (6) : 3012-3020.
大气污染与控制

新疆大气颗粒物污染时空演变及沙尘组分研究

  • 薛一波1,2, 张小啸1, 雷加强1, 李生宇1
作者信息 +

Study on the spatio-temporal variation of atmospheric particulate pollution and its dust components in Xinjiang, northwest China

  • XUE Yi-bo1,2, ZHANG Xiao-xiao1, LEI Jia-qiang1, LI Sheng-yu1
Author information +
文章历史 +

摘要

利用2020~2022年新疆环境监测和同期气象要素数据,结合HYSPLIT模式与PM2.5/PM10比值模型,探讨新疆颗粒物浓度的时空变化特征,并研究沙尘暴的主要输送路径、潜在源区及其对大气颗粒物浓度的贡献率.结果表明,新疆月均PM2.5和PM10浓度变化呈波浪型分布,峰值出现在12~次年3月,最低值出现在6~8月;空间分布呈南高北低的特征,南疆年均PM2.5和PM10浓度分别为42~111,151~367μg/m3,北疆和东疆PM2.5和PM10浓度年均值相对较低,分别为10~62,21~110μg/m3和28~50,100~145μg/m3;新疆69%的城市年均PM2.5和PM10浓度高于国家环境空气质量标准的二级浓度限值;大气PM2.5和PM10浓度呈显著正相关(R2=0.84),春夏秋三季以PM10污染为主,冬季以PM2.5污染为主;PM10是影响新疆空气质量的主要污染物,南疆AQI中PM10贡献率为65%~96%,其次是东疆和北疆,分别为58%~65%和3%~41%;大气PM10严重污染主要发生在春季,由PM10造成南疆空气质量污染比重均在50%以上;塔克拉玛干沙漠是新疆沙尘暴灾害的主要沙源地;沙尘的高低空输送路径明显不同,高空传输主要源于沙漠腹地,而低空输沙源以沙漠东部为主;风蚀沙尘对大气PM10和PM2.5浓度的贡献率分别为85%和66%.

Abstract

Based on the environmental monitoring and meteorological observation data of Xinjiang, northwest China from 2020 to 2022, combined with the HYSPLIT and PM2.5/PM10 ratio model, we studied the characteristics of spatio-temporal variation of atmospheric particulates, and analyzed the major transport pathways, potential source areas of dust storms as well as the dust contribution. Statistical analysis showed that the monthly average PM2.5 and PM10 concentrations presented a wavy distribution with the peak value appearing from December to March and the lowest value occurring from June to August. The spatial distribution of PM2.5 and PM10 appeared a south-north gradient from high to low. The annual average PM2.5 and PM10 concentrations in the southern Xinjiang varied from 42 to 111μg/m3 and 151 to 367μg/m3, which were relatively lower in the northern and eastern Xinjiang, ranging from 10 to 62μg/m3, 21 to 110μg/m3 and 28 to 50μg/m3, 100 to 145μg/m3, respectively. The annual average PM2.5 and PM10 concentrations in 69% of the cities in Xinjiang exceeded the second-level concentration limit of the national ambient air quality standards. There was a significant positive correlation between urban atmospheric PM2.5 and PM10 concentrations (R2=0.84). PM10 pollution dominated in spring, summer and autumn, and PM2.5 pollution prevails in winter. PM10 was the main air pollutant that significantly influenced regional air quality in Xinjiang. The contribution rate of PM10 in AQI was 65%~96% in the southern Xinjiang, followed by the eastern Xinjiang and northern Xinjiang with 58%~65% and 3%~41%, respectively. Serious atmospheric PM10 pollution mainly happened in spring, and the proportion of air pollution caused by PM10 was above 50% in the southern Xinjiang. The major source of dust storms disaster in Xinjiang was the Taklimakan Desert. There were significant differences in dust transport pathways, in which the high-altitude transport was mainly from the desert hinterland, while the low-altitude transport source was mostly in the eastern of the desert. The contribution rate of wind erosion dust to atmospheric PM10 and PM2.5 concentration was 85% and 66%, respectively.

关键词

PM10 / PM2.5 / 空气质量 / 沙尘组分 / 时空变化 / 数值模型 / 新疆

Key words

air quality / dust components / numerical model / PM10 / PM2.5 / spatio-temporal variation / Xinjiang

引用本文

导出引用
薛一波, 张小啸, 雷加强, 李生宇. 新疆大气颗粒物污染时空演变及沙尘组分研究[J]. 中国环境科学. 2024, 44(6): 3012-3020
XUE Yi-bo, ZHANG Xiao-xiao, LEI Jia-qiang, LI Sheng-yu. Study on the spatio-temporal variation of atmospheric particulate pollution and its dust components in Xinjiang, northwest China[J]. China Environmental Science. 2024, 44(6): 3012-3020
中图分类号: X513   

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基金

中国科学院西部青年学者项目(2020-XBQNXZ-015);“天山英才”培养计划项目(2022TSYCCX0012);国家自然科学基金资助项目(42177088)

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