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Highly time-resolved characterization of carbonaceous aerosols using a two-wavelength Sunset thermal–optical carbon analyzer

机译:使用双波长日落热光碳分析仪的高度时间分辨碳质气溶胶表征

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Carbonaceous aerosols have great influence on the air quality, human health and climate change. Except for organic carbon?(OC) and elemental carbon?(EC), brown carbon?(BrC) mainly originates from biomass burning as a group of?OC, with strong absorption from the visible to near-ultraviolet wavelengths, and makes a considerable contribution to global warming. Large numbers of studies have reported long-term observation of?OC and?EC concentrations throughout the world, but studies of BrC based on long-term observations are rather limited. In this study, we established a two-wavelength method (658?and 405?nm) applied in the Sunset thermal–optical carbon analyzer. Based on a 1-year observation, we firstly investigated the characteristics, meteorological impact and transport process of?OC and?EC. Since BrC absorbs light at 405?nm more effectively than 658?nm, we defined the enhanced concentrations (dEC? = ?EC 405?nm ? ? ?EC 658?nm ) and gave the possibility of providing an indicator of BrC. The receptor model and MODIS fire information were used to identify the presence of BrC aerosols. Our results showed that the carbonaceous aerosol concentrations were the highest in winter and lowest in summer. Traffic emission was an important source of carbonaceous aerosols in Nanjing. Receptor model results showed that strong local emissions were found for?OC and?EC; however, dEC was significantly affected by regional or long-range transport. The dEC / OC and OC / EC ratios showed similar diurnal patterns, and the dEC / OC increased when the OC / EC ratios increased, indicating strong secondary sources or biomass burning contributions to?dEC. A total of two biomass burning events both in summer and winter were analyzed, and the results showed that the dEC concentrations were obviously higher on biomass burning days; however, no similar levels of the OC?and EC?concentrations were found both in biomass burning days and normal days in summer, suggesting that biomass burning emissions made a great contribution to dEC, and the sources of?OC and?EC were more complicated. Large number of open fire counts from the northwestern and southwestern areas of the study site were observed in winter and significantly contributed to?OC, EC?and dEC. In addition, the nearby Yangtze River Delta area was one of the main potential source areas of dEC, suggesting that anthropogenic emissions could also be important sources of dEC. The results proved that dEC can be an indicator of BrC on biomass burning days. Our modified two-wavelength instrument provided more information than the traditional single-wavelength thermal–optical carbon analyzer and gave a new idea about the measurement of BrC; the application of dEC data needs to be further investigated.
机译:碳质气溶胶对空气质量,人类健康和气候变化有很大影响。除了有机碳吗?(OC)和元素碳?(EC),棕色碳?(BRC)主要来自生物量燃烧作为一组αOC,具有从近紫外波长可见的强烈吸收,并具有相当大的吸收对全球变暖的贡献。大量研究报告了全世界的长期观察?OC和欧盟浓度,但基于长期观测的BRC研究了很大程度上。在这项研究中,我们建立了一种在日落热光碳分析仪中施加的双波长法(658?和405·NM)。基于1年的观察,我们首先研究了ob和ec的特征,气象冲击和运输过程。由于BRC更有效地吸收405ΩNM的光,因此我们定义了增强的浓度(DEC?=ΔEC405?NM??oc 658?nm)并提供了提供BRC指示器的可能性。受体模型和MODIS Fire信息用于识别BRC气溶胶的存在。我们的研究结果表明,含碳气溶胶浓度最高,夏季最低。交通发放是南京碳质气溶胶的重要来源。受体模型结果表明,发现了强大的局部排放?oc和eq;但是,DEC受到区域或远程运输的显着影响。 DEC / OC和OC / EC比率显示出类似的昼夜模式,当OC / EC比率增加时,DEC / OC增加,表明强烈的二次来源或生物量燃烧到DEC的贡献。分析了夏季和冬季两种生物量燃烧事件,结果表明,DEC浓度明显高于生物质燃烧日;然而,夏季生物量燃烧天和正常日内没有类似的oc?和eC的蛋白质浓度的浓度。这表明生物量燃烧排放对DEC的贡献产生了巨大贡献,以及ob和eq的来源更加复杂。在冬季观察到冬季西北部和西南地区的大量开放火灾数目,并显着促成了oc,ec?和dec。此外,附近的长江三角洲地区是12月的主要潜在源区之一,表明人为排放也可能是12月的重要来源。结果证明,DEC可以是BRC对生物质燃烧日的指标。我们修改的双波长仪器提供的信息比传统的单波长热 - 光学碳分析仪更多,对BRC的测量产生了新的想法;需要进一步调查DEC数据的应用。

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