区域监测器在石油和天然气生产地区检测到的高乙度的来源归因
Joel D Graves1, Yosuke Kimura1, Mrinali Modi1
1Center for Energy and Environmental Systems Analyses, University of Texas at Austin, 3925 West Braker Lane, Austin, Texas 78759, United States.
概括
常规的石油和天然气排放大大导致了格福德地区夜间乙度的升高,这是通过分散模型确定的. 这项研究强调了考虑近距离和远距离来源对于准确的空气质量评估的重要性.
科学领域:
- 环境科学 环境科学
- 大气化学 大气化学
- 空气质量监测 空气质量监测
背景情况:
- 福特地区是主要的石油和天然气生产区,可能导致碳化合物排放量增加.
- 精确的碳化合物来源归属对于有效的区域空气质量管理至关重要.
研究的目的:
- 为了将测量的环境乙度与使用现场级排放库存的分散模型的预测进行比较.
- 确定常规石油和天然气排放对观察到的高乙度的贡献.
主要方法:
- 使用了CALPUFF高斯气泡分散模型.
- 在接收机距离50公里以内的来源的综合站点级碳化合物排放清单.
- 将预测的最大度与观察到的最大度进行比较,特别是在夜间.
主要成果:
- 常规排放约占夜间观察到的最高乙度的三分之二.
- 只有大约三分之一的最高观察到的白天最大值可以通过常规排放来解释.
- 10公里内的来源是主要贡献者,但20公里以上的来源也起到了作用.
结论:
- 将排放库存与分散建模结合起来,可以有效地归因碳化合物度较高的来源.
- 常规的石油和天然气运营是福德地区夜间乙污染的重要贡献者.
- 了解排放源的近距离是管理空气质量影响的关键.
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