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Improved measurement of carbonaceous aerosol: Evaluation of the sampling artifacts and inter-comparison of the thermal-optical analysis methods

机译:改进碳质气溶胶的测量:评估采样伪影和进行热光分析方法之间的比较

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摘要

The sampling artifacts (both positive and negative) and the influence of thermal-optical methods (both charring correction method and the peak inert mode temperature) on the split of organic carbon (OC) and elemental carbon (EC) were evaluated in Beijing. The positive sampling artifact constituted 10% and 23% of OC concentration determined by the bare quartz filter during winter and summer, respectively. For summer samples, the adsorbed gaseous organics were found to continuously evolve off the filter during the whole inert mode when analyzed by the IMPROVE-A temperature protocol. This may be due to the oxidation of the adsorbed organics during sampling (reaction artifact) which would increase their thermal stability. The backup quartz approach was evaluated by a denuder-based method for assessing the positive artifact. The quartz-quartz (QBQ) in series method was demonstrated to be reliable, since all of the OC collected by QBQ was from originally gaseous organics. Negative artifact that could be adsorbed by quartz filter was negligible. When the activated carbon impregnated glass fiber (CIG) filter was used as the denuded backup filter, the denuder efficiency for removing gaseous organics that could be adsorbed by the CIG filter was only about 30%. EC values were found to differ by a factor of about two depending on the charring correction method. Influence of the peak inert mode temperature was evaluated based on the summer samples. The EC value was found to continuously decrease with the peak inert mode temperature. Premature evolution of light absorbing carbon began when the peak inert mode temperature was increased from 580 to 650 °C; when further increased to 800 °C, the OC and EC split frequently occurred in the He mode, and the last OC peak was characterized by the overlapping of two separate peaks. The discrepancy between EC values defined by different temperature protocols was larger for Beijing carbonaceous aerosol compared with North America and Europe, perhaps due to the higher concentration of brown carbon in Beijing aerosol.
机译:在北京评估了采样伪影(正负)和热光方法(炭化校正方法和峰值惰性模式温度)对有机碳(OC)和元素碳(EC)分配的影响。在冬季和夏季,正采样伪像分别占裸石英过滤器确定的OC浓度的10%和23%。对于夏季样品,当通过IMPROVE-A温度规程分析时,发现在整个惰性模式下,吸附的气态有机物会不断从过滤器中放出。这可能是由于采样过程中吸附的有机物的氧化(反应伪影)会增加其热稳定性。备用石英方法是通过基于剥蚀器的方法来评估正伪影的。由于QBQ收集的所有OC均来自原始的气态有机物,因此串联方法证明了石英-石英(QBQ)是可靠的。可以被石英过滤器吸收的负伪影可以忽略不计。当使用活性炭浸渍玻璃纤维(CIG)过滤器作为脱胶后备过滤器时,用于去除可被CIG过滤器吸附的气态有机物的脱核剂效率仅为约30%。发现根据炭化校正方法,EC值相差约2倍。基于夏季样品评估了惰性模式峰值温度的影响。发现EC值随峰值惰性模式温度而连续降低。当惰性模式的峰值温度从580°C升高到650°C时,吸光碳开始过早释放。当进一步升高到800°C时,He模式下OC和EC频繁发生分裂,最后一个OC峰的特征是两个独立峰的重叠。与北美和欧洲相比,北京碳质气溶胶由不同温度方案定义的EC值之间的差异更大,这可能是由于北京气溶胶中的棕色碳浓度较高。

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