4.7 Article

Modeling the impact of heterogeneous reactions of chlorine on summertime nitrate formation in Beijing, China

期刊

ATMOSPHERIC CHEMISTRY AND PHYSICS
卷 19, 期 10, 页码 6737-6747

出版社

COPERNICUS GESELLSCHAFT MBH
DOI: 10.5194/acp-19-6737-2019

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资金

  1. National Natural Science Foundation of China [21625701]
  2. China Postdoctoral Science Foundation [2018M641385]
  3. National Research Program for Key Issue in Air Pollution Control [DQGG0301, DQGG0501]
  4. National Key R&D Program of China [2018YFC0213805, 2018YFC0214006]

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Comprehensive chlorine heterogeneous chemistry is incorporated into the Community Multiscale Air Quality (CMAQ) model to evaluate the impact of chlorine-related heterogeneous reaction on diurnal and nocturnal nitrate formation and quantify the nitrate formation from gasto-particle partitioning of HNO3 and from different heterogeneous pathways. The results show that these heterogeneous reactions increase the atmospheric Cl-2 and ClNO2 level (similar to 100 %), which further affects the nitrate formation. Sensitivity analyses of uptake coefficients show that the empirical uptake coefficient for the O-3 heterogeneous reaction with chlorinated particles may lead to the large uncertainties in the predicted Cl-2 and nitrate concentrations. The N2O5 uptake coefficient with particulate Cl- concentration dependence performs better in capturing the concentration of ClNO2 and nocturnal nitrate concentration. The reaction of OH and NO2 in the daytime increases the nitrate by similar to 15 % when the heterogeneous chlorine chemistry is incorporated, resulting in more nitrate formation from HNO3 gas-to-particle partitioning. By contrast, the contribution of the heterogeneous reaction of N2O5 to nitrate concentrations decreases by about 27 % in the nighttime, when its reactions with chlorinated particles are considered. However, the generated gas-phase ClNO2 from the heterogeneous reaction of N2O5 and chlorine-containing particles further reacts with the particle surface to increase the nitrate by 6 %. In general, this study highlights the potential of significant underestimation of daytime concentrations and overestimation of nighttime nitrate concentrations for chemical transport models without proper chlorine chemistry in the gas and particle phases.

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