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Conceptual Process Design and Techno-Economic Assessment of Ex Situ Catalytic Fast Pyrolysis of Biomass: A Fixed Bed Reactor Implementation Scenario for Future Feasibility

机译:生物质异位催化快速热解的概念过程设计和技术经济评估:未来可行性的固定床反应器实施方案

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Ex situ catalytic fast pyrolysis of biomass is a promising route for the production of fungible liquid biofuels. There is significant ongoing research on the design and development of catalysts for this process. However, there are a limited number of studies investigating process configurations and their effects on biorefinery economics. Herein we present a conceptual process design with techno-economic assessment; it includes the production of upgraded bio-oil via fixed bed ex situ catalytic fast pyrolysis followed by final hydroprocessing to hydrocarbon fuel blendstocks. This study builds upon previous work using fluidized bed systems, as detailed in a recent design report led by the National Renewable Energy Laboratory (NREL/TP-5100-62455); overall yields are assumed to be similar, and are based on enabling future feasibility. Assuming similar yields provides a basis for easy comparison and for studying the impacts of areas of focus in this study, namely, fixed bed reactor configurations and their catalyst development requirements, and the impacts of an inline hot gas filter. A comparison with the fluidized bed system shows that there is potential for higher capital costs and lower catalyst costs in the fixed bed system, leading to comparable overall costs. The key catalyst requirement is to enable the effective transformation of highly oxygenated biomass into hydrocarbons products with properties suitable for blending into current fuels. Potential catalyst materials are discussed, along with their suitability for deoxygenation, hydrogenation and C-C coupling chemistry. This chemistry is necessary during pyrolysis vapor upgrading for improved bio-oil quality, which enables efficient downstream hydroprocessing; C-C coupling helps increase the proportion of diesel/jet fuel range product. One potential benefit of fixed bed upgrading over fluidized bed upgrading is catalyst flexibility, providing greater control over chemistry and product composition. Since this study is based on future projections, the impacts of uncertainties in the underlying assumptions are quantified via sensitivity analysis. This analysis indicates that catalyst researchers should prioritize by: carbon efficiency > catalyst cost > catalyst lifetime, after initially testing for basic operational feasibility.
机译:生物质的异位催化快速热解是生产可替代液体生物燃料的有前途的途径。正在进行大量有关该工艺催化剂设计和开发的研究。但是,研究过程配置及其对生物精炼厂经济影响的研究数量有限。在这里,我们提出了一种具有技术经济评估的概念性过程设计;它包括通过固定床异位催化快速热解,然后进行最终加氢加工为烃类燃料调和原料,生产升级的生物油。这项研究建立在以前使用流化床系统的工作的基础上,如国家可再生能源实验室(NREL / TP-5100-62455)领导的最新设计报告中所述;假设总产量相似,并且基于未来的可行性。假定收率相近,将为比较和研究重点领域的影响提供基础,即固定床反应器配置及其催化剂开发要求以及在线热气过滤器的影响。与流化床系统的比较表明,固定床系统可能具有较高的资本成本和较低的催化剂成本,从而导致可比较的总体成本。关键的催化剂要求是使高氧化性生物质有效转化为具有适合混入当前燃料的性能的烃类产品。讨论了潜在的催化剂材料,以及它们对脱氧,氢化和C-C偶联化学的适用性。在热解蒸气升级过程中,必须使用这种化学物质以改善生物油的质量,从而实现高效的下游加氢处理; C-C联轴器有助于增加柴油/喷气燃料系列产品的比例。固定床升级优于流化床升级的一个潜在好处是催化剂的灵活性,可以更好地控制化学和产物组成。由于本研究是基于未来的预测,因此通过敏感性分析可以量化基本假设中不确定性的影响。该分析表明,催化剂研究人员应在以下方面优先考虑:碳效率>催化剂成本>催化剂寿命,在初步测试基本的操作可行性之后。

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