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Development of a response surface model of aviation's air quality impacts in the United States

机译:在美国开发航空空气质量影响的响应面模型

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摘要

The air quality impacts of aviation are becoming increasingly important given their impact on human health and the projected growth of aviation. In the United States, the government has set targets to manage and reduce the environmental impacts of aviation. In an environmental policy assessment context it is often necessary to rapidly evaluate many possible scenarios, and quantification of uncertainty is important. This makes direct application of comprehensive air quality models such as the Community Multiscale Air Quality (CMAQ) modeling system impractical due to computational cost. Here we develop a response surface model (RSM) - a form of rapid surrogate model - of the impact of aviation emissions on air quality in the United States. We develop an RSM design space and populate it with results from 46 CMAQ simulations, and perform cross-validation of the resultant RSM. The RSM models present-day as well as future impacts amid changing population and non-aviation emissions sources. This enables rapid estimates of the (particulate matter) air quality and human health impacts of aviation emissions scenarios. Cross-couplings between precursor gaseous emissions and PM_(2.5) species are found, consistent with competition for atmospheric ammonia. We apply the RSM to quantify the human health benefits of emissions reductions in 2018. Using the RSM we estimate that in 2005, aviation landing and takeoff emissions cause ~ 195 [90% CI: 80-340] early deaths, while the same emissions cause ~350 [90% CI: 145-610] mortalities in 2018. An emissions tradespace between aviation NO_x and SO-x emissions is constructed. It is found that with fleet-wide desulfurization of jet fuel, a 35% reduction in aviation NO_x emissions would result in maintaining the same level of aviation-attributable early deaths in 2018 relative to 2005 levels, while an 80% reduction in NO_x emissions would half aviation-attributable early deaths.
机译:鉴于其对人类健康的影响以及航空的预计增长,航空的空气质量影响变得越来越重要。在美国,政府设定了管理和减少航空环境影响的目标。在环境政策评估的背景下,经常需要快速评估许多可能的情况,不确定性的量化很重要。由于计算成本高,因此无法直接应用诸如社区多尺度空气质量(CMAQ)建模系统之类的综合空气质量模型。在这里,我们开发了一种响应面模型(RSM),这是一种快速替代模型,用于反映美国航空排放对空气质量的影响。我们开发了一个RSM设计空间,并使用46个CMAQ仿真的结果填充它,并对所得RSM进行交叉验证。在人口和非航空排放源不断变化的情况下,RSM可以模拟当前以及未来的影响。这样就可以快速估算(颗粒物)空气质量和航空排放情景对人类健康的影响。发现前体气体排放物与PM_(2.5)物质之间的交叉耦合,与对大气氨的竞争一致。我们使用RSM来量化2018年减排的人类健康收益。使用RSM,我们估计在2005年,航空着陆和起飞排放导致195例早期死亡[90%CI:80-340],而相同的排放导致在2018年约有350 [90%CI:145-610]死亡率。构建了航空NO_x和SO-x排放之间的排放交易空间。研究发现,随着全机队喷气燃料的脱硫,航空NO_x排放量减少35%,将导致与2018年相比,航空可归因的早期死亡人数保持与2005年相同的水平,而NO_x排放量减少80%将一半的航空事故造成的早期死亡。

著录项

  • 来源
    《Atmospheric environment》 |2013年第10期|445-452|共8页
  • 作者单位

    Laboratory for Aviation and the Environment, Department of Aeronautics and Astronautics, Massachusetts Institute of Technology,77 Massachusetts Avenue, Cambridge, MA 02139, United States;

    Laboratory for Aviation and the Environment, Department of Aeronautics and Astronautics, Massachusetts Institute of Technology,77 Massachusetts Avenue, Cambridge, MA 02139, United States;

    Institute for the Environment, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA;

    Laboratory for Aviation and the Environment, Department of Aeronautics and Astronautics, Massachusetts Institute of Technology,77 Massachusetts Avenue, Cambridge, MA 02139, United States;

    Laboratory for Aviation and the Environment, Department of Aeronautics and Astronautics, Massachusetts Institute of Technology,77 Massachusetts Avenue, Cambridge, MA 02139, United States;

    Laboratory for Aviation and the Environment, Department of Aeronautics and Astronautics, Massachusetts Institute of Technology,77 Massachusetts Avenue, Cambridge, MA 02139, United States;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Aviation; Air quality; Emissions; Response surface; Surrogate modeling;

    机译:航空;空气质量;排放物;响应面;替代模型;

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