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Ozone photochemistry in an oil and natural gas extraction region during winter: simulations of a snow-free season in the Uintah Basin, Utah

机译:冬季石油和天然气提取区域的臭氧光化学:犹他州UINTAH盆地的无雪季节模拟

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The Uintah Basin in northeastern Utah, a region of intense oil and gas extraction, experienced ozone (O3) concentrations above levels harmful to human health for multiple days during the winters of 2009–2010 and 2010–2011. These wintertime O3 pollution episodes occur during cold, stable periods when the ground is snow-covered, and have been linked to emissions from the oil and gas extraction process. The Uintah Basin Winter Ozone Study (UBWOS) was a field intensive in early 2012, whose goal was to address current uncertainties in the chemical and physical processes that drive wintertime O3 production in regions of oil and gas development. Although elevated O3 concentrations were not observed during the winter of 2011–2012, the comprehensive set of observations tests our understanding of O3 photochemistry in this unusual emissions environment. A box model, constrained to the observations and using the near-explicit Master Chemical Mechanism (MCM) v3.2 chemistry scheme, has been used to investigate the sensitivities of O3 production during UBWOS 2012. Simulations identify the O3 production photochemistry to be highly radical limited (with a radical production rate significantly smaller than the NOx emission rate). Production of OH from O3 photolysis (through reaction of O(1D) with water vapor) contributed only 170 pptv day?1, 8% of the total primary radical source on average (primary radicals being those produced from non-radical precursors). Other radical sources, including the photolysis of formaldehyde (HCHO, 52%), nitrous acid (HONO, 26%), and nitryl chloride (ClNO2, 13%) were larger. O3 production was also found to be highly sensitive to aromatic volatile organic compound (VOC) concentrations, due to radical amplification reactions in the oxidation scheme of these species. Radical production was shown to be small in comparison to the emissions of nitrogen oxides (NOx), such that NOx acted as the primary radical sink. Consequently, the system was highly VOC sensitive, despite the much larger mixing ratio of total non-methane hydrocarbons (230 ppbv (2080 ppbC), 6 week average) relative to NOx (5.6 ppbv average). However, the importance of radical sources which are themselves derived from NOx emissions and chemistry, such as ClNO2 and HONO, make the response of the system to changes in NOx emissions uncertain. Model simulations attempting to reproduce conditions expected during snow-covered cold-pool conditions show a significant increase in O3 production, although calculated concentrations do not achieve the highest seen during the 2010–2011 O3 pollution events in the Uintah Basin. These box model simulations provide useful insight into the chemistry controlling winter O3 production in regions of oil and gas extraction.
机译:犹他州东北部的UINTAH盆地,强烈的石油和天然气萃取区域,经历了2009 - 2010年冬季的多天对人体健康有害的臭氧(O3)浓度高于患者。这些冬季O3污染事件发生在寒冷,稳定的时期,当地面覆盖时,并与油气提取过程的排放相关联。 UINTAH盆地冬季臭氧研究(UBWOS)是2012年初的田间密集型,其目标是解决在石油和天然气发展区域推动冬季o3生产的化学和物理过程中的当前不确定性。虽然在2011-2012冬季未观察到O3浓度升高,但综合观察结果测试了我们对这种不寻常的排放环境中对O3光化学的理解。一箱模型,约束到的意见和使用近明确马斯达化学机制(MCM)V3.2化学方案,已使用UBWOS 2012年期间,调查O3生产的灵敏度模拟识别O3生产光化学是高度激进限制(具有明显小于NOx排放率的激进生产率)。从O 3光解(通过水蒸气的O(1D)的反应)产生OH的生产仅贡献170 pptv日Δ1,8%的总初级自由基源(主要自由基是由非自由基前体产生的那些)。其他基因来源,包括甲醛(HCHO,52%),亚硝酸(Hono,26%)和Nitryl氯(ClNO 2,13%)的光解。由于这些物种的氧化方案中的自由基扩增反应,也发现O3的产生对芳族挥发性有机化合物(VOC)浓度非常敏感。与氮氧化物的排放(NOx)的排放相比,显着产生的自由基产生较小,使得NOx充当初级自由基。因此,尽管总非甲烷烃的混合比(230ppbv(2080ppbb),6周平均值)相对于NOx(5.6ppbv平均值),但该系统具有高度敏感性。然而,自由基来源的重要性,它们本身来自NOx排放和化学,例如ClNO2和Hono,使系统的响应成为NOx排放的变化不确定。模型模拟试图在积雪覆盖的冷池条件期间再现预期的条件显示O3生产的显着增加,尽管计算的浓度在UINTAH盆地中的2010-2011 O3污染事件中没有达到最高。这些箱体模型模拟为在油气提取区域中的化学控制冬季O3生产提供了有用的洞察力。
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