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Shape and size constraints on dust optical properties from the Dome C ice core Antarctica

机译:形状和尺寸限制了南极Dome C冰芯的尘埃光学特性

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摘要

Mineral dust aerosol (dust) is widely recognized as a fundamental component of the climate system and is closely coupled with glacial-interglacial climate oscillations of the Quaternary period. However, the direct impact of dust on the energy balance of the Earth system remains poorly quantified, mainly because of uncertainties in dust radiative properties, which vary greatly over space and time. Here we provide the first direct measurements of the aerosol optical thickness of dust particles windblown to central East Antarctica (Dome C) during the last glacial maximum (LGM) and the Holocene. By applying the Single Particle Extinction and Scattering (SPES) technique and imposing preferential orientation to particles, we derive information on shape from samples of a few thousands of particles. These results highlight that clear shape variations occurring within a few years are hidden to routine measurement techniques. With this novel measurement method the optical properties of airborne dust can be directly measured from ice core samples, and can be used as input into climate model simulations. Based on simulations with an Earth System Model we suggest an effect of particle non-sphericity on dust aerosol optical depth (AOD) of about 30% compared to spheres, and differences in the order of ~10% when considering different combinations of particles shapes.
机译:矿物粉尘气溶胶(粉尘)被广泛认为是气候系统的基本组成部分,并且与第四纪的冰河间气候振荡密切相关。然而,尘埃对地球系统能量平衡的直接影响仍然难以量化,这主要是由于尘埃辐射特性的不确定性,其不确定性随时间和空间变化很大。在这里,我们提供了在最后一次冰川最大值(LGM)和全新世期间被风吹到南极东部中部(Dome C)的尘埃颗粒的气溶胶光学厚度的首次直接测量。通过应用单粒子消光和散射(SPES)技术并对粒子施加优先取向,我们可以从数千个粒子的样本中获得形状信息。这些结果表明,常规测量技术无法掩盖几年内发生的明显形状变化。使用这种新颖的测量方法,可以直接从冰芯样品中测量空气中尘埃的光学特性,并且可以将其用作气候模型模拟的输入。基于地球系统模型的模拟,我们建议与球形相比,颗粒非球形性对粉尘气溶胶光学深度(AOD)的影响约为30%,当考虑不同颗粒形状的组合时,其差异约为10%。

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