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Characteristics of Organic Microlayer Produced AerosolS

Characteristics of Organic Microlayer Produced AerosolS
有机微层产生的气溶胶的特征
批准号:
NE/D004748/1
负责人:
Hugh Coe
金额:
$2.01万
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2006
资助国家:
英国
项目状态:
已结题
起止时间:
2006 至 --

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中文摘要
翻译
海洋表面与云的辐射特性密切相关,因为产生了直径从100纳米到几微米的海上喷雾气溶胶粒子,这些粒子随后成为云滴形成的场所。云滴的数量在很大程度上取决于进入云的粒子的数量、大小和组成。大小和成分决定了液滴的表面张力和化学活性,这是决定气溶胶粒子是否会形成云滴的关键参数。云滴数浓度反过来控制着云的辐射特性,云滴数越大,云的反射性越强。这可能会改变到达地表的辐射量,并影响区域和全球地表温度。所描述的联系是非常差的量化和提供最不确定的气候强迫,目前由政府间气候变化专门委员会(IPCC)评估。海洋表面富含有机物质,这些有机物质来自表面沃茨中的微生物。生物碎屑是显著疏水的,并且像油一样,分配到表面形成膜。这种有机表面膜已经知道了一段时间,并且可能是改变气体物质的气-海交换速率以及改变海洋表面张力的原因。与这一建议最相关的是,含有有机物质的颗粒可能是由风驱动的白色冰盖在海洋表面破裂的作用产生的。以前,云模拟者认为来自海雾的粒子是由类似于散装海水的无机盐组成的,主要是氯化钠。然而,最近发表在《自然》杂志上的工作表明,海洋大气中占主导地位的颗粒数量的积累模式(尺寸在100 nm和1 um之间)中的颗粒含有非常丰富的SSML有机物质。有机物种具有非常不同的表面张力和化学活性,这就是为什么它们首先分配到海洋表面的原因,因此预计形成的颗粒将具有与氯化钠非常不同的性质。该提案旨在收获SSML中的有机材料,确定主要的生物物种形成,培养它并生物合成大量的材料。这种合成产物在化学上与SSML中的有机物相似,将作为气溶胶单独或与硫酸盐和/或氯化钠混合喷入一个大室中,并使用各种最先进的仪器研究其对颗粒特性的影响,以探测其物理和化学特性,包括其形成云滴的能力。这些数据将用于测试我们在曼彻斯特开发的气溶胶颗粒特性的详细模型。一旦我们使用实验室生成的数据对模型进行了约束,将进行一系列模拟,以测试实验室的发现对海洋边界层云层的可能影响。有一个明确的需要进行这项工作,以减少我们的不确定性,在浅海云,一个特别重要的辐射云类型的云滴数量的估计。此外,海洋表面、云层和气候之间有直接联系。据推测,海洋生物群可能对气候变化敏感,生物变化可能对气溶胶产生重大影响,从而以高度不确定的方式影响云的特性。这种变化的迹象仍然未知,如果我们要预测未来对气候的影响以及海洋与未来气候变化之间的联系,就需要量化这种变化。
英文摘要
The surface of the ocean is closely coupled to the radiative properties of clouds through the generation of sea spray aerosol particles that range from 100 nm to several um in diameter and which subsequently act as sites for cloud droplet formation. The number of cloud droplets is highly dependent on the number, size and composition of particles entering the cloud. The size and composition determine the surface tension and chemical activity of the drops, key parameters in determining whether an aerosol particle will form a cloud droplet or not. The cloud droplet number concentration in turn controls the radiative properties of the cloud, the greater the droplet number, the more reflective the cloud. This can change the amount of radiation reaching the surface and impact on regional and global surface temperatures. The links described are very poorly quantified and provide the most uncertain forcings of climate that are currently assessed by the Intergovernmental Panel on Climate Change (IPCC). The ocean surface is rich in organic material resulting from micro-organisms that are present in the surface waters. Biological detritus is significantly hydrophobic and, like oil, partitions to the surface forming a film. Such organic surface films have been known about for some time and may be responsible for changing air-sea exchange rates of gaseous material and also altering the surface tension of the sea. Most relevant to this proposal is that particles containing organic material may be produced by the action of wind driven white caps breaking on the ocean surface. Previously, cloud modellers have considered sea spray derived particles to be composed of inorganic salts similar to bulk seawater, predominately sodium chloride. However, recent work published in Nature has shown that the particles in the accumulation mode (between 100 nm and 1 um in size) which dominate the particle number in the marine atmosphere are very rich in organic material from the SSML. Organic species have very different surface tensions and chemical activities which is why they partition to the surface of the ocean in the first place, hence it is to be expected that the formed particles will have very different properties from sodium chloride. This proposal seeks to harvest the organic material in the SSML, determine the major biological speciation, culture it and biologically synthesise significant quantities of the material. This synthesised product, which will be chemically similar to the organic in the SSML, will be sprayed into a large chamber as an aerosol, either on its own or mixed with sulphate and/or sodium chloride and its impact on particle properties studied using a wide range of state of the art instrumentation to probe its physical and chemical properties, including its ability to form cloud droplets. These data will be used to test a detailed model of the properties of the aerosol particles we have developed at Manchester. Once we have constrained the model using the laboratory generated data, a series of simulations will be conducted to test the likely impact the findings from the laboratory will have on clouds in the marine boundary layer. There is a clear need to perform this work to reduce the uncertainty in our estimates of cloud droplet number in shallow marine clouds, a particularly radiatively important cloud type. Furthermore, there is a direct link between the surface ocean, clouds and climate. It has been postulated that marine biota are likely to be sensitive to climate change and a change to the biology may significantly impact on the aerosol and hence cloud properties in a highly uncertain way. The sign of such a change remains unknown, and we need to quantify such variability if we are to predict future impacts on climate and linkages between the ocean and climate changes in the future.
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ConstrAining the RolE of Sulfur in the earth system (CARES)
  • 批准号:
    NE/W009307/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $78.72万
  • 财政年份:
    2023
  • 负责人:
    Hugh Coe
  • 依托单位:
A Swiss army knife for aerosol composition - a community Chemical Ionisation Mass Spectrometry facility
  • 批准号:
    NE/X006131/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $91.6万
  • 财政年份:
    2022
  • 负责人:
    Hugh Coe
  • 依托单位:
UOM NERC Disciplinary Hopping for Discovery Science
  • 批准号:
    NE/X017826/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $12.85万
  • 财政年份:
    2022
  • 负责人:
    Hugh Coe
  • 依托单位:
Integrated Research Observation System for Clean Air (OSCA)
  • 批准号:
    NE/T001984/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $59.98万
  • 财政年份:
    2019
  • 负责人:
    Hugh Coe
  • 依托单位:
海外基金