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Biomass to liquid transportation fuels (BTL) systems: process synthesis and global optimization framework

机译:生物质到液体运输燃料(BTL)系统:过程综合和全局优化框架

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摘要

An optimization-based process synthesis framework is proposed for the thermochemical conversion of biomass to liquid fuels (BTL). Gasification of biomass is used to generate synthesis gas which can be converted to raw hydrocarbons either directly using Fischer-Tropsch synthesis or indirectly using catalytic conversion of methanol over ZSM-5. Multiple technologies are considered for generation of the raw hydrocarbons including (i) six types of Fischer-Tropsch units with different temperatures, catalyst types, and hydrocarbon effluent compositions, (ii) methanol conversion using methanol-to-gasoline, and (iii) methanol conversion using methanol-to-olefins. The hydrocarbons are upgraded into the final liquid fuel products (i.e., gasoline, diesel, and kerosene) using one or more technologies including ZSM-5 catalytic conversion, oligomerization, hydrocracking, isomerization, alkylation, and hydrotreating. A simultaneous heat, power, and water integration is included within the process synthesis framework to directly examine the costs associated with utility production and wastewater treatment with a particular topological design. A rigorous global optimization branch-and-bound strategy is implemented to mathematically guarantee the development of a BTL refinery that is economically and environmentally superior to all competing designs. Twenty-four case studies are investigated to determine the effect of refinery capacity, liquid fuel composition, and biomass feedstock on the overall system cost, the BTL refinery topological design, the process material/energy balances, and the lifecycle greenhouse gas emissions.
机译:提出了一种基于优化的过程综合框架,用于将生物质热化学转化为液体燃料(BTL)。生物质的气化被用于产生合成气,该合成气可以直接通过费-托合成法转化为粗烃,也可以通过在ZSM-5上催化转化甲醇而间接转化为粗烃。考虑使用多种技术来生产粗烃,包括(i)具有不同温度,催化剂类型和烃流出物成分的六种费-托单元,(ii)使用甲醇制汽油转化为甲醇,以及(iii)甲醇使用甲醇制烯烃进行转化。使用一种或多种技术(包括ZSM-5催化转化,低聚,加氢裂化,异构化,烷基化和加氢处理),将碳氢化合物升级为最终的液体燃料产品(即汽油,柴油和煤油)。流程综合框架中包括同时进行的热,电和水集成,以直接检查与具有特定拓扑设计的公用事业生产和废水处理相关的成本。实施了严格的全局优化分支定界策略,以数学方式保证BTL精炼厂的开发在经济和环境方面优于所有竞争设计。对二十四个案例研究进行了调查,以确定炼油厂产能,液体燃料成分和生物质原料对整体系统成本,BTL炼油厂拓扑设计,工艺材料/能量平衡以及生命周期温室气体排放量的影响。

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