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Porous burners for lean-burn applications

机译:稀薄燃烧应用的多孔燃烧器

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We review research on lean methane combustion in porous burners, with an emphasis on practical aspects of burner design and operation and the application of the technology to real-world problems. In particular we focus on 'ultra-lean' combustion, where the methane concentration is actually at or below the lean flammability limit for a free flame (5% methane by volume in air). Porous burners are an advanced combustion technology whereby a premixed fuel/air mixture burns within the cavities of a solid porous matrix. They are capable of burning low-calorific value fuels and very lean fuel/air mixtures that would not normally be flammable, potentially allowing the exploitation of what would otherwise be wasted energy resources. Possible lean-burn applications include the reburn of exhaust gases from existing combustion systems, and the mitigation of fugitive methane emissions. Porous burners operate on the principle that the solid porous matrix serves as a means of recirculating heat from the hot combustion products to the incoming reactants. This results in burning velocities higher than those for a free flame, as well as extended lean flammability limits. Burner performance is also characterised by low emissions of combustion related pollutants and stable operation over a wide range of fuel concentrations and flow rates. Stable combustion of methane/air mixtures below the conventional lean limit has been observed by a number of researchers; in one study the combustion of a mixture with a fuel concentration of only 1% was reported. A number of design considerations are important as regards optimising burner performance for lean-burn applications. Foremost among these is the selection of a suitable material for the porous matrix. Possibilities include packed beds of alumina spheres or saddles, and reticulated foams made of silicon carbide or high temperature metal alloys. Other potentially significant design issues include the length of the porous bed, the use of'multi-section' designs where different porous materials are used in each section, the incorporation of external heat exchangers to supplement the heat recirculation provided by the porous matrix, and the ability to operate the burner at elevated pressures. There is an extensive body of research relating to porous burners, comprising experimental and numerical investigations. However the majority of previous studies have been directed towards the use of porous burners for radiant heating applications rather than for the combustion of low-calorific value fuels. Consequently there is a lack of reliable data relating specifically to ultra-lean combustion. We identify specific areas where further research is required to progress this field. These include the influence on burner performance of the design considerations listed above, the stability of the combustion process to fluctuations in fuel concentration and flow rate, the development of reliable models specifically for ultra-lean combustion in practical burners, and the investigation of issues relating to scale-up and commercial application.
机译:我们回顾了多孔燃烧器中稀薄甲烷燃烧的研究,重点是燃烧器设计和操作的实际方面以及该技术在实际问题中的应用。特别是,我们专注于“超稀薄”燃烧,其中甲烷浓度实际上等于或低于自由火焰的稀薄可燃性极限(空气中甲烷体积分数为5%)。多孔燃烧器是一种先进的燃烧技术,通过该技术,预混合的燃料/空气混合物会在固体多孔基质的腔体内燃烧。它们能够燃烧通常不易燃的低热值燃料和非常稀薄的燃料/空气混合物,从而有可能利用原本会浪费的能源。可能的稀薄燃烧应用包括现有燃烧系统的废气再燃烧,以及缓解的无用甲烷排放。多孔燃烧器的原理是,固体多孔基质用作将热量从热燃烧产物再循环到进入的反应物的手段。这导致燃烧速度高于自由火焰的燃烧速度,并且延长了稀燃性极限。燃烧器的性能还具有燃烧相关污染物的低排放以及在各种燃料浓度和流量范围内稳定运行的特点。许多研究人员已经观察到甲烷/空气混合物低于常规稀薄极限的稳定燃烧。在一项研究中,据报道燃料浓度仅为1%的混合物燃烧。关于优化稀燃应用的燃烧器性能,许多设计考虑很重要。其中最重要的是为多孔基质选择合适的材料。可能包括氧化铝球或鞍座的填充床,以及由碳化硅或高温金属合金制成的网状泡沫。其他潜在的重大设计问题包括多孔床的长度,在每个部分使用不同的多孔材料的“多部分”设计的使用,并入外部热交换器以补充由多孔基质提供的热循环的问题。在高压下运行燃烧器的能力。关于多孔燃烧器有大量的研究,包括实验和数值研究。然而,先前的大多数研究都针对将多孔燃烧器用于辐射加热应用,而不是用于低热值燃料的燃烧。因此,缺乏专门涉及超稀薄燃烧的可靠数据。我们确定了需要进一步研究以发展该领域的特定领域。这些因素包括上述设计注意事项对燃烧器性能的影响,燃烧过程对燃料浓度和流量波动的稳定性,专门针对实际燃烧器中超稀薄燃烧的可靠模型的开发以及与相关问题的研究扩大规模并进行商业应用。

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