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Impact of High Concentrations of SO2 and SO3 in Carbon Capture Applications and its Mitigation

Impact of High Concentrations of SO2 and SO3 in Carbon Capture Applications and its Mitigation
高浓度 SO2 和 SO3 在碳捕获应用中的影响及其缓解措施
批准号:
TS/G002002/1
负责人:
Mohamed Pourkashanian
金额:
$22.17万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2009
资助国家:
英国
项目状态:
已结题
起止时间:
2009 至 --

项目摘要

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中文摘要
翻译
富氧燃烧是碳捕获的关键技术之一。近年来,发电行业强烈认为,具有再循环烟道气的氧煤燃烧是对二氧化碳减排战略具有潜在贡献的可能选择之一。通过对现有锅炉实施碳捕获技术可以减少CO2排放,但实施CO2捕获的技术困难是巨大的。全氧燃料技术的全面应用仍在开发中,但SO 3的产生被认为是全氧燃料和胺洗涤技术的问题。喷吹脱硫剂比湿法脱硫更有效地降低SO 3。因此,吸附剂喷射可与FGD串联使用,以有利于氧燃料燃烧(以降低否则高浓度的SO 3-腐蚀诱导物质)和燃烧后捕集。此外,汞与其他烟气成分之间的相互作用极其复杂,各种因素,包括煤的化学和矿物成分、燃烧条件、工厂配置、其他烟气成分以及烟气从燃烧区到烟囱的时间/温度历史,都可能影响烟气中汞的形态。人们认为,汞在燃烧后烟气中的转化是动力学限制过程,涉及均相气相和非均相反应。汞在烟气中的形态分布取决于煤的类型,汞的捕获受SO2和SO 3浓度的影响。因此,该项目将通过实验和理论研究相结合来解决高浓度SO2和SO 3对氧燃料系统性能的主要问题,包括抑制汞捕集和全寿命成本。该项目的总体目标如下:将首次在中试规模上评估吸收剂在减少SO 3方面的效率,以前的研究仅集中在与氧燃料燃烧和燃烧后捕获相关的条件下(空气燃烧条件)的SO2上。这项工作将由我们的工业合作伙伴进行。利兹研究小组将开发和验证一个工程计算代码,以提供一个详细的工程评估的潜在应用氧燃料燃烧发电,并开发工程能力和工具,以协助设计氧-在这个项目中开发和验证的新物理模型将被集成到商业CFD代码中,以预测燃料厂的性能行为。氧燃料燃烧器和干吸附剂性能。该代码将为工程师提供一个有用的工具,以评估和优化碳捕获应用中的SO 3去除。此外,利兹研究小组要解决的该项目的另一个目标是了解气相和固相成分在汞氧化反应化学中的重要性,并将调查氯、氮氧化物、二氧化硫和灰颗粒对汞氧化的影响。使用开发的汞氧化反应机制,通过预期的Cl 2和SO 2之间的相互作用对氯促进的汞转化的烟道气中的高水平的SO 2的影响将被调查。
英文摘要
Oxy-Fuel Combustion is one of the key technologies considered for carbon capture. In recent years oxy-coal combustion with recycled flue gas has been strongly considered by the power generation industry as one of the possible options with a potential contribution to carbon dioxide mitigation strategies. CO2 emissions can be cut by the implementation of carbon capture technologies to existing boilers but the technical difficulties in implementing CO2 capture are formidable. The full-scale application of oxy-fuel technology is still under development but the production of SO3 is considered to be problematic for oxy-fuel and amine scrubbing technologies. Sorbent injection is more efficient for reducing SO3 than wet-FGD. Sorbent injection can therefore be used to advantage in series with FGD for both oxy-fuel combustion (to reduce the otherwise high concentration of SO3 - a corrosion inducing species) and for post combustion capture. In addition, interactions between mercury and other flue gas constituents are extremely complicated, and a variety of factors, including coals' chemical and mineralogical composition, combustion condition, plant configuration, other flue gas constituents, and time/temperature history of flue gas from combustion zone to stack, can affect mercury speciation in flue gas. It is believed that the transformations of mercury in post-combustion flue gas are kinetic limiting processes that involve both homogeneous gas-phase and heterogeneous reactions. The partitioning of mercury species in flue gas will depend on coal type, and mercury capture can be influenced by SO2 and SO3 concentration. Therefore the major issues concerning high concentrations of SO2 and SO3 on the performance of oxy-fuel systems including inhibition of mercury capture and whole life costs will be addressed in the project by combination of experimental and theoretical studies. The overarching goals of this project are as follows: The efficiency of sorbents in reducing SO3 will be assessed for the first time at pilot scale, previous studies having only concentrated on SO2, at conditions pertinent to oxy-fuel firing and post-combustion capture, (air firing conditions). This work will be carried out by our industrial partner. The Leeds research team will develop and validate an engineering computational code to provide a detailed engineering assessment of the potential application of oxy-fuel firing for electricity generation, and to develop an engineering capability and tool to assist with the design of oxy-fuel plants in the future.New physical models developed and validated in this project will be integrated into a commercial CFD code to predict the performance behaviour of oxy-fuel combustors and dry sorbent performance. The code will provide a useful tool for engineers to assess and optimise the SO3 removal for carbon capture application. In addition another objective of this project to be addressed by the Leeds research group is to understand the importance of gas- and solid-phase constituents in mercury oxidation reaction chemistry, and the effects of chlorine, nitrogen oxide, sulphur dioxide and ash particles on mercury oxidation will be investigated. Using the developed mercury oxidation reaction mechanism, the impact of high levels of SO2 in flue gas through anticipated interactions between Cl2 and SO2 on chlorine-promoted mercury transformation will be investigated.
期刊论文(8)
专著(0)
科研奖励(0)
会议论文
DOI: --
发表时间: 2010
期刊:
影响因子: --
作者: [Kevin James Hughes]
通讯作者: Kevin James Hughes
Assessment of the fate of mercury in oxy-coal combustion
汞在富氧煤燃烧中的归宿评估
DOI: --
发表时间: 2009
期刊:
影响因子: --
作者: [Richard T Porter]
通讯作者: Richard T Porter
Evaluation of the Performance of a Power Plant Boiler Firing Coal, Biomass and a Blend Under Oxy-fuel Conditions as a CO2 Capture Technique
作为二氧化碳捕集技术,在富氧燃料条件下燃烧煤、生物质和混合物的发电厂锅炉的性能评估
DOI: 10.1016/j.egypro.2013.06.017
发表时间: 2013
期刊: Energy Procedia
影响因子: --
作者: [Szuhánszki J]
通讯作者: Szuhánszki J
DOI: 10.1016/j.fuel.2015.01.089
发表时间: 2015-07-01
期刊: FUEL
影响因子: 7.4
作者: [Clements, Alastair G., Black, Sandy, Pourkashanian, Mohamed]
通讯作者: Pourkashanian, Mohamed
In-depth Studies of OxyCoal Combustion Processes through Numerical Modelling and 3D Flame Imaging
  • 批准号:
    EP/G063451/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $62.51万
  • 财政年份:
    2010
  • 负责人:
    Mohamed Pourkashanian
  • 依托单位:
Oxyfuel Combustion - Academic Programme for the UK
  • 批准号:
    EP/G062153/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $221.42万
  • 财政年份:
    2009
  • 负责人:
    Mohamed Pourkashanian
  • 依托单位:
Optimisation of Biomass/Coal Co-Firing Processes through Integrated Measurement and Computational Modelling
  • 批准号:
    EP/F061188/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $45.95万
  • 财政年份:
    2008
  • 负责人:
    Mohamed Pourkashanian
  • 依托单位:
海外基金