Microwave assisted pretreatment of lignocellulosic residues for better performance as solid fuels in fluidzsed bed (FB) energy production technologies
Microwave assisted pretreatment of lignocellulosic residues for better performance as solid fuels in fluidzsed bed (FB) energy production technologies
批准号:
EP/P034667/1
负责人:
Vasiliki Skoulou
金额:
$12.71万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2018
资助国家:
英国
项目状态:
已结题
起止时间:
2018 至 --
中文摘要
在能源生产中利用替代燃料(木质纤维素生物质废物)具有以下优点:提高资源效率和改进废物管理,增加电力生产中的可再生能源,减少对进口能源的依赖。气化等先进的热处理工艺与木质纤维素(木质)废物的利用相结合,可以降低能源生产部门的碳足迹。当森林或农业残留物(如谷物秸秆)原料进料或与其他燃料混合进入流化床气化炉(FBG),操作问题,如灰熔融和床团聚出现。这是由于木质废物的一些灰分成分(碱金属和碱土金属)与石英砂(其是FBG的最常见的床材料)的不期望的相互作用的结果。在木材气化炉的操作温度下(> 850 ℃),会产生低共熔混合物,床层会结块,甚至会导致能源生产装置关闭。为了确保以木质废物为原料的FBG的有效操作,这类原料需要进行预处理,以去除这些有问题的元素,并确保长期无干扰运行,如何优化这种新型固体生物燃料的物理化学性质的问题可以通过集成传统的预处理技术来解决(浸出)与新的化学工程概念(微波提取)。在能源工程(船体)有限公司的支持下,这个由来自英国和欧盟的研究人员组成的多元文化和跨学科团队,将开发一种新的微波预处理技术,作为解决床团聚问题时,木材废物是要处理或共处理FBG。拟议的预处理过程出现从一个传统的和已经证明成功的预处理方法(浸提)与一个新的(微波萃取)的整合。它的目标不仅是优化固体生物燃料的规格,还旨在解决未来开发实用且经济实惠的预处理系统所面临的挑战。通过短期共进料和长期有效运行木质废物,这种新工艺将使传统能源生产部门达到其可持续性标准。微波强化木质废弃物离子液体浸出工艺的发展是主要的目标。这将有助于稳定木质废弃物的特性,并优化FBG能源生产技术的操作行为。通过这种方式,英国被低估的生物质“废物”来源也将升级为非常理想的固体生物燃料。新工艺的关键要素是将微波辐射与传统的浸出预处理结合起来。水浸出已被证明是有效的去除碱金属和碱土金属和硫元素从木质废物。然而,这是耗时和资源密集型的(溶剂)。另一方面,微波提取技术已被证明可以减少提取时间,使用更少的溶剂,甚至不使用高水分材料。因此,这两种技术的整合可以导致改进废物预处理固体生物燃料production.The新的预处理技术仍然没有很好地了解微波机制方面,需要基础研究,使规模扩大商业化。目前拟议的项目将培养新一代英国领先的学术研究人员,专注于多学科解决问题的方法,并致力于相应地培养我们未来的工程师。它还将补充最近的第22次缔约方会议(COP22)马拉凯什协议,提出COP21巴黎决定的做法,通过二氧化碳排放较少的技术,如木材,进行大规模能源生产废物气化
英文摘要
Exploitation of alternative fuels (lignocellulosic biomass waste) in energy production offers the advantages of: resource efficiency and improved waste management, increased renewables in power production and reduced dependence on imported energy. Advanced thermal processes like gasification, in combination with exploitation of lignocellulosic (woody) waste can lower the carbon footprint of the energy production sector. When forest or agricultural residues (e.g. cereal straws) are fed raw or mixed with other fuels into fluidised bed gasifiers (FBGs), operational problems like ash fusion and bed agglomeration appear. This is a result of the undesirable interactions of some of the ash constituents (alkali and alkaline earth metals) of woody waste with silica sand, which is the most common bed material of FBGs. Under the operating temperatures of wood gasifiers (> 850oC) eutectic mixtures are created, the bed agglomerates and can even cause shut down of the energy production units. To ensure efficient operation of FBGs fed on woody waste, this kind of feedstock needs to be pre-treated in order to remove those problematic elements and ensure long term operation without disturbance.The problem of how to optimise the physicochemical properties of such new types of solid biofuel can be solved by integrating traditional pre-treatment techniques (leaching) with novel chemical engineering concepts (microwave extraction).With support from Energy Works (Hull) Ltd, this multicultural and interdisciplinary team of researchers from the UK and EU, will develop a novel microwave pre-treatment technique as a solution to the bed agglomeration problem when wood waste is to be processed or co-processed in FBGs. The proposed pre-treatment process emerges from the integration of a traditional and already proven successful pre-treatment method (leaching) with a novel one (microwave extraction). It aims not only to optimize the specifications of the solid biofuel, but also to address the challenges facing future development of a practical and affordable pre-treatment system.By in short term co-feeding and in the long term by running efficiently with woody waste,this new process will allow the conventional energy production sector to meet its sustainability criteria. Development of the microwave enhanced leaching process of woody waste with ionic liquids like water is the primary target. This will enable stabilization of the woody waste properties and optimize operational behaviour in FBG energy production technologies. In this way also an underestimated biomass 'waste' source of the UK will be upgraded to a highly desirable solid biofuel.The key element of the novel process is the integration of the microwave irradiation with the traditional leaching pre-treatment of such waste. Water leaching has been proven efficient in removal of the alkali and alkaline earth metals and sulphur elements from woody waste. It is however time-consuming and resource intensive (solvents). Microwave extraction techniques on the other hand have been proven to reduce extraction time, use less solvent, or even none for high moisture materials. Thus integration of both techniques can lead to improvement in waste pre-treatment for solid biofuel production.The new pre-treatment technique is still not well understood in terms of microwave mechanisms and requires fundamental studies to allow scaling-up for commercialization. The present proposed project will develop a new generation of leading UK academic researchers focusing on a multi-disciplinary problem-solving approach and with a powerful commitment to train our future engineers accordingly.It will also complement the recent 22 Conference of Parties (COP22) Marrakesh agreement to put forward the practice of COP21 Paris decisions for large scale energy production via less CO2 emitting technologies like woody waste gasification.
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Towards Circular Economy Solutions for The Management of Rice Processing Residues to Bioenergy via Gasification
通过气化将稻米加工残渣管理为生物能源的循环经济解决方案
DOI:
10.3390/su11226433
发表时间:
2019
期刊:
Sustainability
影响因子:
3.9
作者:
[Vaskalis]
通讯作者:
Vaskalis
DOI:
10.1021/acssuschemeng.0c00351
发表时间:
2020-04-13
期刊:
ACS SUSTAINABLE CHEMISTRY & ENGINEERING
影响因子:
8.4
作者:
[Taylor, Martin J., Alabdrabalameer, Hassan A., Skoulou, Vasiliki]
通讯作者:
Skoulou, Vasiliki
DOI:
10.1016/j.mcat.2021.111469
发表时间:
2022-04-25
期刊:
MOLECULAR CATALYSIS
影响因子:
4.6
作者:
[Cheah, Kin Wai, Yusup, Suzana, Taylor, Martin J.]
通讯作者:
Taylor, Martin J.
DOI:
10.1039/d0se00155d
发表时间:
2020-07-01
期刊:
SUSTAINABLE ENERGY & FUELS
影响因子:
5.6
作者:
[Alabdrabalameer, Hassan A., Taylor, Martin J., Skoulou, Vasiliki]
通讯作者:
Skoulou, Vasiliki
DOI:
10.3390/en13102590
发表时间:
2020-05
期刊:
Energies
影响因子:
3.2
作者:
[Martin J. Taylor;A. Michopoulos;A. Zabaniotou;V. Skoulou]
通讯作者:
Martin J. Taylor;A. Michopoulos;A. Zabaniotou;V. Skoulou
共 6 条
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资助金额:21.0万元
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批准年份:2004
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