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SAM-CAAM: A Concept for Acquiring Systematic Aircraft Measurements to Characterize Aerosol Air Masses

机译:SAM-CAAM:获取用于表征气溶胶气团的系统飞机测量值的概念

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摘要

A modest operational program of systematic aircraft measurements can resolve key satellite-aerosol-data-record limitations. Satellite observations provide frequent, global aerosol-amount maps, but offer only loose aerosol property constraints needed for climate and air quality applications. We define and illustrate the feasibility of flying an aircraft payload to measure key aerosol optical, microphysical, and chemical properties in situ. The flight program could characterize major aerosol air-mass types statistically, at a level-of-detail unobtainable from space. It would: (1) enhance satellite aerosol retrieval products with better climatology assumptions, and (2) improve translation between satellite-retrieved optical properties and species-specific aerosol mass and size simulated in climate models to assess aerosol forcing, its anthropogenic components, and other environmental impacts. As such, Systematic Aircraft Measurements to Characterize Aerosol Air Masses (SAM-CAAM) could add value to data records representing several decades of aerosol observations from space, improve aerosol constraints on climate modeling, help interrelate remote-sensing, in situ, and modeling aerosol-type definitions, and contribute to future satellite aerosol missions.Fifteen Required Variables are identified, and four Payload Options of increasing ambition are defined, to constrain these quantities. “Option C” could meet all the SAM-CAAM objectives with about 20 instruments, most of which have flown before, but never routinely several times per week, and never as a group. Aircraft integration, and approaches to data handling, payload support, and logistical considerations for a long-term, operational mission are discussed. SAM-CAAM is feasible because, for most aerosol sources and specified seasons, particle properties tend to be repeatable, even if aerosol loading varies.
机译:适度的系统飞机测量操作程序可以解决关键的卫星气溶胶数据记录限制。卫星观测提供了频繁的全球气溶胶量图,但仅提供了气候和空气质量应用所需的气溶胶性质宽松的约束条件。我们定义并说明了飞行飞机有效载荷以现场测量关键气溶胶光学,微物理和化学性质的可行性。该飞行程序可以统计出主要气溶胶空气质量的特征,其细节水平无法从太空获得。它将:(1)在更好的气候学假设下增强卫星气溶胶回收产品,以及(2)改善气候模型模拟的卫星获取的光学特性与特定物种气溶胶质量和大小之间的转换,以评估气溶胶强迫,其人为成分和其他环境影响。因此,表征气溶胶空气质量的系统飞机测量(SAM-CAAM)可以为代表数十年来从太空进行气溶胶观测的数据记录增加价值,改善气候模型对气溶胶的限制,帮助相互关联遥感,就地和对气溶胶进行建模类型的定义,并有助于未来的卫星气溶胶飞行任务。确定了15个必需变量,并定义了4个雄心勃勃的有效载荷选项,以限制这些数量。 “选择方案C”可以用大约20台仪器满足所有SAM-CAAM目标,这些仪器以前曾飞行过,但从未每周例行飞行几次,也从未成团飞行。讨论了飞机的集成以及数据处理,有效载荷支持和长期作战任务的后勤考虑的方法。 SAM-CAAM是可行的,因为对于大多数气溶胶来源和特定季节,即使气溶胶负荷变化,颗粒性质也倾向于可重复。

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