Suppr超能文献

在不同相对湿度下,壳核混合对气溶胶光学性质的影响。

Influences of external vs. core-shell mixing on aerosol optical properties at various relative humidities.

机构信息

Physical Research Laboratory, Ahmedabad, 380 009, India.

出版信息

Environ Sci Process Impacts. 2013 May;15(5):1070-7. doi: 10.1039/c3em30975d.

Abstract

Aerosol optical properties of external and core-shell mixtures of aerosol species present in the atmosphere are calculated in this study for different relative humidities. Core-shell Mie calculations are performed using the values of radii, refractive indices and densities of aerosol species that act as core and shell, and the core-shell radius ratio. The single scattering albedo (SSA) is higher when the absorbing species (black carbon, BC) is the core, while for a sulfate core SSA does not vary significantly as the BC in the shell dominates the absorption. Absorption gets enhanced in core-shell mixing of absorbing and scattering aerosols when compared to their external mixture. Thus, SSA is significantly lower for a core-shell mixture than their external mixture. SSA is more sensitive to core-shell ratio than mode radius when BC is the core. The extinction coefficient, SSA and asymmetry parameter are higher for external mixing when compared to BC (core)-water soluble aerosol (shell), and water soluble aerosol (core)-BC (shell) mixtures in the relative humidity range of 0 to 90%. Spectral SSA exhibits the behaviour of the species which acts as a shell in core-shell mixing. The asymmetry parameter for an external mixture of water soluble aerosol and BC is higher than BC (core)-water soluble aerosol (shell) mixing and increases as function of relative humidity. The asymmetry parameter for the water soluble aerosol (core)-BC (shell) is independent of relative humidity as BC is hydrophobic. The asymmetry parameter of the core-shell mixture decreases when BC aerosols are involved in mixing, as the asymmetry parameter of BC is lower. Aerosol optical depth (AOD) of core-shell mixtures increases at a higher rate when the relative humidity exceeds 70% in continental clean and urban aerosol models, whereas AOD remains the same when the relative humidity exceeds 50% in maritime aerosol models. The SSA for continental aerosols varies for core-shell mixing of water soluble aerosol (core)-shell (BC) when compared to their external mixture, while the SSA for maritime aerosols does not vary significantly for different mixing scenarios because of the dominance of sea salt aerosols. Thus, these results confirm that aerosol mixing can modify the physical and optical characteristics of aerosols, which vary as a function of relative humidity. These calculations will be useful in parameterising the effect of core-shell vs. external mixing of aerosols in global climate models, and in the evaluation of aerosol radiative effects.

摘要

本研究针对不同的相对湿度计算了大气中气溶胶物种的外部和核壳混合物的气溶胶光学特性。使用作为核和壳的气溶胶物种的半径、折射率和密度的值以及核壳半径比进行核壳 Mie 计算。当吸收性物质(黑碳,BC)为核时,单次散射反照率(SSA)更高,而对于硫酸盐核,SSA 不会因壳中的 BC 而显著变化,因为它主导了吸收。与它们的外部混合物相比,吸收性和散射性气溶胶的核壳混合会增强吸收。因此,与外部混合物相比,核壳混合物的 SSA 显着降低。当 BC 为核时,SSA 对核壳比比模式半径更敏感。与 BC(核)-水溶性气溶胶(壳)和水溶性气溶胶(核)-BC(壳)混合物相比,在相对湿度为 0 至 90%的范围内,消光系数、SSA 和不对称参数更高。光谱 SSA 表现出核壳混合中作为壳的物质的行为。水溶性气溶胶和 BC 的外部混合物的不对称参数高于 BC(核)-水溶性气溶胶(壳)混合,并且随着相对湿度的增加而增加。由于 BC 是疏水性的,因此水溶性气溶胶(核)-BC(壳)的不对称参数与相对湿度无关。当涉及到混合时,当涉及到混合时,BC 气溶胶参与混合时,核壳混合物的不对称参数降低,因为 BC 的不对称参数较低。当相对湿度超过大陆清洁和城市气溶胶模型中的 70%时,核壳混合物的气溶胶光学深度(AOD)以更高的速率增加,而当相对湿度超过 50%时,海洋气溶胶模型中的 AOD 保持不变。与外部混合物相比,水溶性气溶胶(核)-壳(BC)的核壳混合会改变大陆气溶胶的 SSA,而由于海盐气溶胶的主导地位,海洋气溶胶的 SSA 不会因不同的混合情况而发生显着变化。因此,这些结果证实了气溶胶混合可以改变气溶胶的物理和光学特性,这些特性随相对湿度而变化。这些计算将有助于在全球气候模型中参数化气溶胶的核壳与外部混合的影响,并评估气溶胶的辐射效应。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验