已发表论文: (1) Xing, L.*, Li, G., Pongpiachan, S., Wang, Q., Han, Y., Cao, J., et al. (2020). Quantifying the contributions of local emissions and regional transport to elemental carbon in Thailand. Environmental Pollution, 262. doi:10.1016/j.envpol.2020.114272 该文章利用WRF-Chem数值模拟评估了泰国黑碳气溶胶的来源。泰国本地人为源排放是黑碳气溶胶的最主要来源,贡献为75.1%,泰国生物质燃烧排放贡献为6.1%。泰国周边国家对泰国黑碳气溶胶的浓度贡献为18.8%。 (2) 杨雪玲, 邢莉*, 王颖, 刘随心, 刘文霞. (2020), 宝鸡市冬季一次持续性重污染过程特征分析. 环境科学研究, 33(10): 2256-2264. 该文章分析了宝鸡市一次重污染过程。在污染的不同阶段宝鸡市主要污染源贡献有所不同。该次污染的发展、维持、消退阶段对应的主要污染源影响分别为偏燃煤型、偏二次型、偏扬尘型,显示二次污染在宝鸡市重污染天气维持阶段的重要性。 (3) Xing, L., Wu, J., Elser, M., Tong, S., Cao, J.*, Li, G.*, et al. (2019). Wintertime secondary organic aerosol formation in Beijing-Tianjin-Hebei (BTH): contributions of HONO sources and heterogeneous reactions. Atmospheric Chemistry and Physics, 19(4), 2343-2359. doi:10.5194/acp-19-2343-2019 该文章利用WRF-Chem模式模拟京津冀地区冬季二次有机气溶胶的来源。发现亚硝酸(HONO)的非均相生成过程及由居民燃烧直接排放的乙二醛和甲基乙二醛是增强冬季京津冀地区二次有机气溶胶生成的重要因素。 (4) Xing, L., Shrivastava, M.*, Fu, T.-M.*, Roldin, P., Qian, Y., Xu, L., et al. (2018). Parameterized Yields of Semivolatile Products from Isoprene Oxidation under Different NO Levels: Impacts of Chemical Aging and Wall-Loss of Reactive Gases. Environmental Science & Technology, 52(16), 9225-9234. doi: 10.1021/acs.est.8b00373 该文章发展了一个可模拟挥发性有机气体经过多步反应生成二次有机气溶胶的箱型模式,模式中的氧化机制可依据最新实验结果揭示的反应路径灵活调整。应用该模式与烟雾箱实验数据拟合,得到异戊二烯(isoprene)在不同初始氮氧化物(NOx)浓度下生成二次有机气溶胶的产率。 (5) 邢莉,傅宗玫* (2015), 有机气溶胶对中国境内云凝结核数量的贡献研究, 北京大学学报(自然科学版), 51(1), 13-23, doi: 10.13209/j.0479-8023.2014.413. 该文章利用化学传输模式GEOS-Chem的多物种气溶胶组分模拟结果估算中国地区有机气溶胶对云凝结核的贡献年平均为28%,但地区和季节差异性明显,且受到气溶胶混合状态的影响。 (6) Xing, L., Fu, T.-M.*, Cao, J. J., Lee, S. C., Wang, G. H., Ho, K. F., et al. (2013). Seasonal and spatial variability of the OM/OC mass ratios and high regional correlation between oxalic acid and zinc in Chinese urban organic aerosols. Atmospheric Chemistry and Physics, 13(8), 4307-4318. doi:10.5194/acp-13-4307-2013 该文章分析了冬季和夏季中国14个城市的有机气溶胶组分的有机气溶胶与有机碳气溶胶比值(OM/OC)。夏季我国OM/OC比值为1.75±0.13,显著高于冬季比值1.59±0.18。夏季南北方城市OM/OC比值无显著差异,冬季北方城市比值(1.51±0.07)显著低于南方城市(1.65±0.15)。该文章首次报道夏季中国城市气溶胶中草酸和锌浓度显著正相关,说明气溶胶里形成了稳定的草酸锌这种化合物,对大气有机酸的浓度及吸湿性有重要影响。 (7) Liu, H., Wang, Q., Xing, L., Zhang, Y., Zhang, T., Ran, W., & Cao, J. (2021). Measurement report: quantifying source contribution of fossil fuels and biomass-burning black carbon aerosol in the southeastern margin of the Tibetan Plateau. Atmospheric Chemistry and Physics, 21(2), 973-987. doi:10.5194/acp-21-973-2021 (8) Han, Y., Bandowe, B. A. M., Schneider, T., Pongpiachan, S., Ho, S. S. H., Wei, C., Wang, Q. Y., Xing, L., et al. (2021). A 150-year record of black carbon (soot and char) and polycyclic aromatic compounds deposition in Lake Phayao, north Thailand. Environmental Pollution, 269. doi:10.1016/j.envpol.2020.116148 (9) ChooChuay, C., Pongpiachan, S., Tipmanee, D., Deelaman, W., Suttinun, O., Wang, Q., Xing, L., et al. (2020). Long-range Transboundary Atmospheric Transport of Polycyclic Aromatic Hydrocarbons, Carbonaceous Compositions, and Water-soluble Ionic Species in Southern Thailand. Aerosol and Air Quality Research, 20(7), 1591-1606. doi:10.4209/aaqr.2020.03.0120 (10) ChooChuay, C., Pongpiachan, S., Tipmanee, D., Suttinun, O., Deelaman, W., Wang, Q., Xing, L., et al. (2020). Impacts of PM2.5 sources on variations in particulate chemical compounds in ambient air of Bangkok, Thailand. Atmospheric Pollution Research, 11(9), 1657-1667. doi:10.1016/j.apr.2020.06.030 (11) Deelaman, W., Pongpiachan, S., Tipmanee, D., Choochuay, C., Iadtem, N., Suttinun, O., Xing, L., et al. (2020). Source identification of polycyclic aromatic hydrocarbons in terrestrial soils in Chile. Journal of South American Earth Sciences, 99. doi:10.1016/j.jsames.2020.102514 (12) Pongpiachan, S., Wang, Q., Xing, L., Li, G., Han, Y., & Cao, J. (2019). Data relating to carbonaceous components in Songkhla Lake sediments, Thailand. Data in brief, 22, 1012-1017. doi:10.1016/j.dib.2019.01.039 (13) Long, X., Bei, N., Wu, J., Li, X., Feng, T., Xing, L., et al. (2018). Does afforestation deteriorate haze pollution in Beijing-Tianjin-Hebei (BTH), China? Atmospheric Chemistry and Physics, 18(15), 10869-10879. doi:10.5194/acp-18-10869-2018 (14) Long, X., Tie, X., Li, G., Cao, J., Feng, T., Zhao, S., Xing, L., et al. (2018). Effect of ecological restoration programs on dust concentrations in the North China Plain: a case study. Atmospheric Chemistry and Physics, 18(9), 6353-6366. doi:10.5194/acp-18-6353-2018 (15) Bei, N., Wu, J., Elser, M., Feng, T., Cao, J., El-Haddad, I., Xing, L., et al. (2017). Impacts of meteorological uncertainties on the haze formation in Beijing-Tianjin-Hebei (BTH) during wintertime: a case study. Atmospheric Chemistry and Physics, 17(23), 14579-14591. doi:10.5194/acp-17-14579-2017 (16) Zhou, X., Bei, N., Liu, H., Cao, J., Xing, L., Lei, W., et al. (2017). Aerosol effects on the development of cumulus clouds over the Tibetan Plateau. Atmospheric Chemistry and Physics, 17(12), 7423-7434. doi:10.5194/acp-17-7423-2017 (17) Huang, S., Huang, Q., Chen, Y., Xing, L., & Leng, G. (2016). Spatial-temporal variation of precipitation concentration and structure in the Wei River Basin, China. Theoretical and Applied Climatology, 125(1-2), 67-77. doi:10.1007/s00704-015-1496-9 (18) Huang, S., Huang, Q., Chang, J., Chen, Y., Xing, L., & Xie, Y. (2015). Copulas-Based Drought Evolution Characteristics and Risk Evaluation in a Typical Arid and Semi-Arid Region. Water Resources Management, 29(5), 1489-1503. doi:10.1007/s11269-014-0889-3 (19) Huang, S., Huang, Q., Chang, J., Leng, G., & Xing, L. (2015). The response of agricultural drought to meteorological drought and the influencing factors: A case study in the Wei River Basin, China. Agricultural Water Management, 159, 45-54. doi:10.1016/j.agwat.2015.05.023 (20) Huang, S., Huang, Q., Chang, J., Zhu, Y., Leng, G., & Xing, L. (2015). Drought structure based on a nonparametric multivariate standardized drought index across the Yellow River basin, China. Journal of Hydrology, 530, 127-136. doi:10.1016/j.jhydrol.2015.09.042 (21) 朱佳雷,王体健,邢莉,穆青,周德荣. (2011) 江苏省一次重霾污染天气的特征和机理分析。中国环境科学,31(12): 1943-1950. 招生计划: 每年计划招收1~2名硕士研究生,欢迎自然地理学、大气科学、环境科学、地理信息系统、计算机科学等相关专业学生报考。 |
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