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Hydrothermal Gasification Of Waste Biomass: Process Design And Life Cycle Asessment

机译:废物生物质的水热气化:工艺设计和生命周期评估

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摘要

A process evaluation methodology is presented that incorporates flowsheet mass and energy balance modeling, heat and power integration, and life cycle assessment. Environmental impacts are determined by characterizing and weighting (using CO_2 equivalents, Eco-indicator 99, and Eco-scarcity) the flowsheet and inventory modeling results. The methodology is applied to a waste biomass to synthetic natural gas (SNG) conversion process involving a catalytic hydrothermal gasification step. Several scenarios are constructed for different Swiss biomass feedstocks and different scales depending on logistical choices: large-scale (155 MW_(Sng)) and small-scale (5.2 MW_(sng)) scenarios for a manure feedstock and one scenario (35.6 MWsng) for a wood feedstock. Process modeling shows that 62% of the manure's lower heating value (LHV) is converted to SNG and 71% of wood's LHV is converted to SNG. Life cycle modeling shows that, for all processes, about 10% of fossil energy use is imbedded in the produced renewable SNG. Converting manure and replacing it, as a fertilizer, with the process mineral byproduct leads to reduced N20 emissions and an improved environmental performance such as global warming potential: -0.6 kg_CO_2~(eq)/MJ_(SNG) vs -0.02 kgCO_2eq/MJ_(SNG) for wood scenarios.
机译:提出了一种过程评估方法,该方法结合了流程质量和能量平衡建模,热和功率集成以及生命周期评估。通过对流程表和清单建模结果进行特征化和加权(使用CO_2当量,Eco-indicator 99和Eco-carcity)来确定环境影响。该方法应用于涉及催化水热气化步骤的废物生物质到合成天然气(SNG)的转化过程。根据物流选择,针对不同的瑞士生物量原料和规模构建了几种方案:粪肥原料的大型方案(155 MW_(sng))和小型方案(5.2 MW_(sng)),一种方案(35.6 MWsng)用作木材原料。过程建模表明,粪便的较低发热量(LHV)的62%转化为SNG,木材的LHV的71%转化为SNG。生命周期模型表明,在所有过程中,化石能源消耗中约有10%被嵌入到生产的可再生SNG中。转换肥料并以加工矿物副产品代替肥料可减少N20排放并改善环境性能,例如全球变暖潜能:-0.6 kg_CO_2〜(eq)/ MJ_(SNG)与-0.02 kgCO_2eq / MJ_( SNG)。

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