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World's first biologically-activated aerosols: for carbon capture without the need for storage

World's first biologically-activated aerosols: for carbon capture without the need for storage
世界上第一个生物活性气溶胶:无需储存即可捕获碳
批准号:
EP/X016951/1
负责人:
Jagroop Pandhal
金额:
$25.72万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --

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中文摘要
翻译
我们雄心勃勃的目标是制造能够被光合藻“生物激活”的气雾剂,这种气雾剂可以从工业中捕获二氧化碳。炼钢对每个人的生活都是至关重要的,从我们吃的食物容器到我们驾驶的汽车和我们居住的建筑。为了维持我们的现代生活方式,每年生产的钢铁超过18亿吨:我们离不开炼钢,但可以说,制造二氧化碳的产量是炼钢的两倍(每吨钢铁大约有2吨二氧化碳)。每座高炉的碳足迹相同,约有35万人,全球约有900座高炉。炼钢被认为消耗了全球8%的能源。这些事实使炼钢成为气候变化的主要贡献者。英国钢铁业有一项新的战略,即率先使用生物工程来捕获二氧化碳,我们的合作者在塔尔伯特港进行了小规模的试点。尽管生物固定二氧化碳提供了一种潜在的解决方案来捕获碳并生产生物质资源,但相关的效率和成本目前令人望而却步。例如,如果扩大规模,目前基于藻类的二氧化碳捕获技术将需要多个足球场大小的储罐才能对典型高炉的二氧化碳排放产生重大影响。因此,需要一种全新的生物固碳方法。我们知道有三个不同的基本方面为我们提出的解决方案提供了灵感。首先,最近的一项研究使用经验证据和模型将巨型藻类水华的产生与澳大利亚海岸野火事件产生的7.15亿吨二氧化碳联系起来。这意味着,在自然环境中高规模地捕获二氧化碳是可能的。其次,我们知道自然界中存在生物气溶胶,细菌可以在那里长距离传播--尽管这项工作主要是为了研究病原体的传输。已经有研究表明,呼吸系统疾病可能与海洋和湖泊蓝藻水华的毒素有关。然后,它提供了与塔尔博特港钢铁制造过程中使用的当前粉尘捕获技术:气雾剂的链接。我们建议重新使用我们的“Optomec AJ300”GB 0.5 M印刷电子机,并利用它的墨盒将微藻“雾化”成气雾剂。这些小室成为我们研究气溶胶、藻类和气体相互作用的实验室。这些小室有光学通道,可以进行高光谱成像和气体传感。由机器提供的打印将允许有效地回收气雾剂,将它们打印到玻璃片或任何我们想要的其他衬底上,以供进一步研究。拟议的工作风险非常高,因为我们不知道使微藻能够在气雾化过程中存活的参数、使用什么菌株、它们能够固定二氧化碳的时间等。然而,如果成功,潜在的回报是高的--因为“生物激活的”气雾剂可以用于捕获二氧化碳以外的其他气体、挥发性有机化合物甚至战剂。
英文摘要
Our ambitious aim is to make aerosols that are "biologically activated" with photosynthetic algae that can capture CO2 from industry. Steelmaking is critical to everyone's lives in everything from the containers for food we eat to the cars we drive and the buildings in which we live. Over 1.8 bn tonnes of steel are produced annually to maintain our modern lifestyles: we cannot live without steelmaking, yet it is arguably twice as much about making CO2 as it is about making steel (approximately 2 tonnes of CO2 per tonne of steel). Each Blast Furnace has the same carbon footprint of around 350,000 people and there are some 900 furnaces globally. Steelmaking is thought to consume 8% of the world's energy. These facts make steelmaking a major contributor to climate change. There is a nascent strategy within UK steelmaking to pioneer the capture of their CO2 using biological engineering, with small-scale pilots taking place at our collaborator's site in Port Talbot.Although biological CO2 fixation provides a potential solution to capture carbon as well as produce a biomass resource, the associated efficiencies and costs are currently prohibitive. For example, if scaled up, current algal-based CO2-capture technology would require multiple football pitch size tanks to have a significant impact upon CO2 emission from a typical Blast Furnace. Hence, a completely new way of administering biological carbon fixation is required. We are aware of three separate fundamental aspects that have provided inspiration for our proposed solution. Firstly, a very recent study used empirical evidence and modelling to link the generation of a mega-algal bloom to 715 million tonnes of CO2 produced during a wildfire event off the coast of Australia. This means, CO2 capture at high scales is possible in the natural environment. Secondly, we know that bio-aerosols exist in nature, where bacteria can be transported over long distances- although this work has been undertaken largely to look at pathogen transport. There has been work to show that respiratory illnesses might be linked to toxins from cyanobacteria blooms for oceans and lakes. This then provides a link to the current dust capture technology used at Port Talbot during steel manufacturing: aerosols. We propose to repurpose our "Optomec AJ300" £0.5 M printed electronics machine and use its ink chambers to "atomise" microalgae into aerosols. These chambers become laboratories for our studies of the interaction between aerosol algae and gasses. The chambers have optical access for hyperspectral imaging and gas sensing. The printing afforded by the machine will allow efficient recovery of the aerosols "printing" them onto glass slides or any other substrate we desire, for further study. The work proposed is very high risk, as we do not know the parameters that would enable microalgae to survive the aerosolization process, what strains to use, how long they would be able to fix CO2 etc. However, if successful, the potential reward is high- as "biologically activated" aerosols could be used beyond CO2 capture, targeting others gases, volatile organic compounds and even warfare agents.
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