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Biomass-derived oxymethylene ethers as diesel additives: A thermodynamic analysis

机译:生物质衍生的羟甲基醚作为柴油添加剂:热力学分析

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Conversion of biomass for production of liquid fuels can help in reducing the greenhouse gas (GHG) emissions which are predominantly generated by combustion of fossil fuels. Adding oxymethylene ethers (OMEs) in conventional diesel fuel has the potential to reduce soot formation during the combustion in a diesel engine. OMEs are downstream products of syngas, which can be generated by the gasification of biomass. In this research, a thermodynamic analysis has been conducted through development of data intensive process models of all the unit operations involved in production of OMEs from biomass. Based on the developed model, the key process parameters affecting the OMEs production including equivalence ratio, H2/CO ratio, and extra water flow rate were identified. This was followed by development of an optimal process design for high OMEs production. It was found that for a fluidized bed gasifier with heat capacity of 28 MW, the conditions for highest OMEs production are at an air amount of 317 tonne/day, at H2/CO ratio of 2.1, and without extra water injection. At this level, the total OMEs production is 55 tonne/day (13 tonne/day OME3 and 9 tonne/day OME4). This model would further be used in a techno-economic assessment study of the whole biomass conversion chain to determine the most attractive pathways.
机译:生物质的转化为生产液体燃料可以帮助减少由化石燃料燃烧主要产生的温室气体(GHG)排放。在常规柴油燃料中添加氧亚甲基醚(橡渣)具有在柴油发动机中的燃烧过程中减少烟灰形成。肿块是合成气的下游产品,其可以由生物质的气化产生。在本研究中,通过开发来自生物量核果渣的所有单元操作的数据密集型工艺模型进行了热力学分析。基于开发的模型,确定了影响包括等效比,H2 / CO比和额外水流量的核果产生的关键过程参数。随后是开发高核果生产的最佳过程设计。结果发现,对于具有28mW的热容量的流化床气化器,最高核果的条件在2.1的H2 / CO比下的空气量为317吨/天,无需额外注水。在这个级别,总肿块产量为55吨/天(13吨/天OME3和9吨/天OME4)。该模型将进一步用于整个生物质转化链的技术经济评估研究,以确定最具吸引力的途径。

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