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首页> 外文期刊>Atmospheric Measurement Techniques >A comparison of GC-FID and PTR-MS toluene measurements in ambient air under conditions of enhanced monoterpene loading
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A comparison of GC-FID and PTR-MS toluene measurements in ambient air under conditions of enhanced monoterpene loading

机译:单萜负载增加的环境空气中GC-FID和PTR-MS甲苯测量结果的比较

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Toluene was measured using both a gas chromatographic system (GC), with a flame ionization detector (FID), and a proton transfer reaction-mass spectrometer (PTR-MS) at the AIRMAP atmospheric monitoring station Thompson Farm (THF) in rural Durham, NH during the summer of 2004. Simultaneous measurements of monoterpenes, including α- and β-pinene, camphene, Δ sup3/sup-carene, and id/i-limonene, by GC-FID demonstrated large enhancements in monoterpene mixing ratios relative to toluene, with median and maximum enhancement ratios of ~2 and ~30, respectively. A detailed comparison between the GC-FID and PTR-MS toluene measurements was conducted to test the specificity of PTR-MS for atmospheric toluene measurements under conditions often dominated by biogenic emissions. We derived quantitative estimates of potential interferences in the PTR-MS toluene measurements related to sampling and analysis of monoterpenes, including fragmentation of the monoterpenes and some of their primary carbonyl oxidation products via reactions with Hsub3/subOsup+/sup, Osub2/subsup+/sup and NOsup+/sup in the PTR-MS drift tube. The PTR-MS and GC-FID toluene measurements were in good quantitative agreement and the two systems tracked one another well from the instrumental limits of detection to maximum mixing ratios of ~0.5 ppbv. A correlation plot of the PTR-MS versus GC-FID toluene measurements was described by the least squares regression equation iy/i=(1.13± 0.02)ix/i−(0.008±0.003) ppbv, suggesting a small ~13% positive bias in the PTR-MS measurements. The bias corresponded with a ~0.055 ppbv difference at the highest measured toluene level. The two systems agreed quantitatively within the combined 1σ measurement precisions for 60% of the measurements. Discrepancies in the measured mixing ratios were not well correlated with enhancements in the monoterpenes. Better quantitative agreement between the two systems was obtained by correcting the PTR-MS measurements for contributions from monoterpene fragmentation in the PTR-MS drift tube; however, the improvement was minor (&10%). Interferences in the PTR-MS measurements from fragmentation of the monoterpene oxidation products pinonaldehyde, caronaldehyde and α-pinene oxide were also likely negligible. A relatively large and variable toluene background in the PTR-MS instrument likely drove the measurement bias; however, the precise contribution was difficult to accurately quantify and thus was not corrected for in this analysis. The results from THF suggest that toluene can be reliably quantified by PTR-MS using our operating conditions (drift tube pressure, temperature and voltage of 2.0 mbar, 45 °C and 600 V, respectively) under the ambient compositions probed. This work extends the range of field conditions under which PTR-MS validation studies have been conducted.
机译:使用气相色谱系统(GC),火焰离子化检测器(FID)和质子转移反应质谱仪(PTR-MS)在位于达勒姆(Durham)郊区的AIRMAP大气监测站Thompson Farm(THF)上测量了甲苯2004年夏季的NH。同时测量单萜,包括α-和β-pine烯,camp烯和δ。 GC-FID的 3 -胡萝卜素和 d -柠檬烯表明,单萜混合比例相对于甲苯有较大提高,中值和最大增强比分别为〜2和〜30 , 分别。进行了GC-FID和PTR-MS甲苯测量之间的详细比较,以测试PTR-MS在通常由生物排放为主的条件下进行大气甲苯测量的特异性。我们得出了与单萜的采样和分析有​​关的PTR-MS甲苯测量中潜在干扰的定量估计,包括单萜的碎裂及其通过与H 3 O + ,O 2 + 和NO + 。 PTR-MS和GC-FID甲苯的测量结果具有良好的定量一致性,并且两个系统从检测的仪器极限到最大混合比〜0.5 ppbv相互跟踪良好。用最小二乘回归方程 y =(1.13± 0.02) x &min;(0.008&plusmn)描述PTR-MS与GC-FID甲苯测量值的相关图; 0.003)ppbv,表明PTR-MS测量中的正偏差很小〜13%。该偏倚对应于在最高测得的甲苯含量下〜0.055 ppbv的差异。这两个系统在合并的1Σ中量化地达成一致。 60%的测量精度。所测混合比的差异与单萜的增强没有很好的相关性。通过校正PTR-MS漂移管中单萜片段化的贡献来校正PTR-MS测量值,从而获得两个系统之间更好的定量一致性;然而,改善很小(<10%)。单萜氧化产物松醛,丙醛和α-pine烯氧化物的碎裂对PTR-MS测量的干扰也可以忽略不计。 PTR-MS仪器中相对较大且可变的甲苯背景可能会导致测量偏差。但是,精确的贡献很难准确量化,因此在此分析中未进行校正。 THF的结果表明,在检测到的环境成分下,使用我们的操作条件(漂移管压力,温度和电压分别为2.0 mbar,45°C和600 V),可以通过PTR-MS可靠地定量甲苯。这项工作扩展了进行PTR-MS验证研究的现场条件范围。

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