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Impact of biogenic volatile organic compounds on peroxyacetyl nitrate production in the southeast United States.

机译:生物挥发性有机化合物对美国东南部过氧乙酰硝酸盐生产的影响。

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摘要

Our atmosphere is arguably the fundamental entity that has made life on Earth possible. Knowledge of the delicate nature of our atmosphere continues to spread as "green" initiatives promote awareness of human influence on the environment. However, many climate scientists fear that unless immediate mitigation occurs, the reversal of human impact on our planet will be impossible, leading to unknown consequence. Perturbations to natural processes are likely to cause drastic change to the planet as we know it and ultimately result in significant health issues. It is important to push the boundaries of our understanding of atmospheric processes with intent to reduce the impact human activity has already imposed. This work focuses on the production of peroxyacetyl nitrate (PAN), a compound known for its adverse effects on plant life and human health, in two parts; (1) using relative production ratios to calculate relative PAN production using a chemical tracer, and (2) application of an explicit chemical model in simulating relative production of PAN in a southeastern US forest environment. Chapter two examines our current understanding of the isoprene photo-oxidation mechanism particularly in regards to the formation of two peroxyacyl nitrates: PAN and MPAN. A relationship when production is greater than loss processes between MPAN and PAN was found to be relatively constant throughout the experiment with a ratio of MPAN/PAN of 1.5 +/- 19% RSD. This relationship can be used in ambient conditions to approximate isoprene contribution to PAN production, since MPAN is formed solely through isoprene oxidation. Absolute concentrations of isoprene nitrates and APNs are found to be significantly oversimulated. This shows an incomplete understanding of the isoprene oxidation mechanism and begs for continued studies to further our understanding of this chemical system.;Chapter three applied the observed ratio of MPAN/PAN within the chamber experiment to an ambient calculation to approximate isoprene contribution to PAN production in the SOAS campaign. Results show that an average of 44% +/- 16% of PAN production results from the oxidation of isoprene. Further analysis using a 0-D ambient model show isoprene contributes 50-70% to PAN production, which statistically is not different from calculations using MPAN/PAN ratio from chamber experimentation.;Chapter four reflects on the results of this study to provide insight to the future of the field. Suggestions for future studies to improve understanding of the PAN mechanism are presented, as well as suggestions for future ambient modeling with a transport model.
机译:可以说,我们的大气层是使地球上的生命成为可能的基本实体。随着“绿色”倡议提高人们对环境影响的意识,我们对大气微妙性质的认识继续传播。但是,许多气候科学家担心,除非立即采取缓解措施,否则不可能扭转人类对地球的影响,从而导致未知的后果。对自然过程的扰动可能会导致我们所知的地球发生巨大变化,并最终导致重大的健康问题。重要的是要扩大我们对大气过程的理解的范围,以减少人类活动已经施加的影响。这项工作的重点是过氧化乙酰硝酸盐(PAN)的生产,该产品分为两部分,该化合物以其对植物生命和人类健康的不利影响而闻名。 (1)使用化学示踪剂使用相对生产比率来计算PAN的相对产量,以及(2)在美国东南部森林环境中模拟PAN的相对产量中使用显式化学模型。第二章考察了我们对异戊二烯光氧化机理的当前理解,特别是在形成两种过氧酰基硝酸盐:PAN和MPAN方面。发现在整个实验中,当产量大于损失过程时,MPAN和PAN之间的关系相对恒定,MPAN / PAN的比率为1.5 +/- 19%RSD。由于MPAN仅通过异戊二烯氧化形成,因此可以在环境条件下使用这种关系来近似异戊二烯对PAN生产的贡献。发现硝酸异戊二烯和APN的绝对浓度明显被过度模拟。这显示出对异戊二烯氧化机理的不完全了解,并请求继续研究以进一步了解该化学系统。第三章将室内实验中观察到的MPAN / PAN比率应用于环境计算中,以估算异戊二烯对PAN生产的贡献在SOAS广告系列中。结果表明,异戊二烯的氧化平均可产生PAN产量的44%+/- 16%。使用0-D环境模型进行的进一步分析显示,异戊二烯对PAN产生的贡献为50-70%,从统计学上来说,与使用室实验的MPAN / PAN比率进行的计算没有差异。该领域的未来。提出了对未来研究的建议,以增进对PAN机制的理解,以及对未来使用运输模型进行环境建模的建议。

著录项

  • 作者

    Groff, Christopher John.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Atmospheric chemistry.;Environmental science.;Chemistry.
  • 学位 M.S.
  • 年度 2015
  • 页码 188 p.
  • 总页数 188
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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