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首页> 外文期刊>Energy Conversion & Management >Air-blown gasification of Solid Recovered Fuels (SRFs) in lab-scale bubbling fluidized-bed: Influence of the operating conditions and of the SRF composition
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Air-blown gasification of Solid Recovered Fuels (SRFs) in lab-scale bubbling fluidized-bed: Influence of the operating conditions and of the SRF composition

机译:在实验室规模的鼓泡流化床中对固体回收燃料(SRF)进行气吹气化:操作条件和SRF组成的影响

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摘要

This article investigates the gasification of Solid Recovered Fuels (SRFs). To better understand the influence of SRF composition on gasification efficiency and syngas quality, two industrial SRFs having different compositions were studied. A detailed SRF characterization was performed (elemental analysis; ash composition; LHV; fraction of biomass, non-biomass, and inert materials) to precisely describe the chemical complexity of such materials. The gasification tests were performed at pilot-scale in a bubbling fluidized bed using air as gasifying agent, and olivine as bed material. The separate contribution of gasification temperature (T = 750-900 degrees C) and equivalence ratio (ER = 0.21-0.35) on the gasification efficiency was investigated by sequentially varying these two parameters.Gasification tests revealed that the LHV of the syngas and the cold gas efficiency decreased by 45-50% and by 20-30%, respectively, with rising equivalence ratio. These evolutions were attributed to syngas oxidation reactions which promoted the formation of CO2. Indeed, mass balances calculation revealed that the part of carbon atoms in syngas in the form of CO2 rises from 43 to 54% for SRF1, and from 35 to 50% for SRF2. High plastic content in SRF2 was responsible for the formation of stable light hydrocarbons (CH4, C2H4 and C6H6) from the decomposition of the plastic polymer chains, and to lower amount of H-2 compared to syngas from biomass-rich SAF1. The carbon conversion decreased by 8% with rising ER from 0.21 to 0.30 for SRF2, as a result of plastics biomass interactions promoting secondary reactions and leading to char formation. For both SRFs, rising temperature significantly improved the gasification efficiency whatever the SRF composition, and decreased the CO2 concentration. These evolutions were attributed to the promotion of several reactions, such as gasification, steam and dry reforming, Boudouard reaction, and Reverse Water-Gas Shift reaction.
机译:本文研究了固体回收燃料(SRF)的气化。为了更好地理解SRF组成对气化效率和合成气质量的影响,研究了两种具有不同组成的工业SRF。进行了详细的SRF表征(元素分析;灰分; LHV;生物质,非生物质和惰性材料的比例),以精确描述此类材料的化学复杂性。气化试验在鼓泡流化床中以空气为气化剂,以橄榄石为床材料在中试规模下进行。通过依次改变这两个参数,研究了气化温度(T = 750-900摄氏度)和当量比(ER = 0.21-0.35)对气化效率的单独贡献。气化试验表明,合成气和低温的LHV随着当量比的提高,燃气效率分别下降了45-50%和20-30%。这些演变归因于合成气氧化反应,该反应促进了CO2的形成。实际上,质量平衡计算表明,合成气中以CO2形式存在的碳原子部分对于SRF1从43%升高至54%,对于SRF2从35%升高至50%。 SRF2中的高塑料含量可导致塑料聚合物链的分解形成稳定的轻烃(CH4,C2H4和C6H6),并且与来自富含生物质的SAF1的合成气相比,H-2的含量较低。由于SRF2的ER从0.21上升到0.30,碳转化率下降了8%,这是由于塑料生物量相互作用促进了次级反应并导致形成了焦炭。对于两种SRF,无论SRF的组成如何,升高的温度均显着提高了气化效率,并降低了CO2浓度。这些演变归因于若干反应的促进,例如气化,蒸汽和干重整,布杜德反应和反向水煤气变换反应。

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