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生物质气化和电解制氢的可行性分析。

Prefeasibility analysis of biomass gasification and electrolysis for hydrogen production.

机构信息

Universidad Nacional de Colombia sede Manizales, Instituto de Biotecnología y Agroindustria, Laboratorio de Equilibrios Químicos y Cinética Enzimática, Departamento de Ingeniería Química, Km 07 vía al Magdalena, Manizales, Colombia.

Universidad Nacional de Colombia sede Manizales, Instituto de Biotecnología y Agroindustria, Laboratorio de Equilibrios Químicos y Cinética Enzimática, Departamento de Ingeniería Química, Km 07 vía al Magdalena, Manizales, Colombia.

出版信息

Environ Res. 2024 May 1;248:118003. doi: 10.1016/j.envres.2023.118003. Epub 2023 Dec 30.

Abstract

Hydrogen is a key energy vector to accomplishing energy transition and decarbonization goals proposed in the transport and industrial sectors worldwide. In recent years, research has focused on analyzing, designing, and optimizing hydrogen production, searching to improve economic prefeasibility with minimal emissions of polluting gases. Therefore, the techno-economic analysis of hydrogen production by electrolytic and gasification processes becomes relevant since these processes could compete commercially with industrial technologies such as SMR - Steam methane reforming. This work aims to analyze hydrogen production in stand-alone processes and energy-driven biorefineries. The gasification and electrolysis technologies were evaluated experimentally, and the yields obtained were input data for scaling up the processes through simulation tools. Biomass gasification is more cost-effective than electrolytic schemes since the hydrogen production costs were 4.57 USD/kg and 8.30 USD/kg at an annual production rate of 491.6 tons and 38.96 tons, respectively. Instead, the electrolysis process feasibility is strongly influenced by the recycled water rate and the electricity cost. A sensitivity analysis was performed to evaluate the temperature, pressure, and current density variability on the hydrogen production rate. The increase in pressure and current density induces parasitic currents while the temperature increases hydrogen production. Although higher hydrogen production rates from gasification, the syngas composition decreases the possibility of being implemented in applications where purity is critical.

摘要

氢气是实现全球交通和工业领域能源转型和脱碳目标的关键能源载体。近年来,研究重点集中在分析、设计和优化制氢,旨在以最小的污染气体排放提高经济可行性。因此,电解和气化过程的技术经济分析变得相关,因为这些过程可以与 SMR-蒸汽甲烷重整等工业技术进行商业竞争。本工作旨在分析独立过程和能源驱动的生物炼制厂中的氢气生产。对气化和电解技术进行了实验评估,获得的产率是通过模拟工具对过程进行放大的输入数据。由于氢气生产成本分别为 4.57 美元/千克和 8.30 美元/千克,在每年 491.6 吨和 38.96 吨的产量下,生物质气化比电解方案更具成本效益。然而,电解过程的可行性受到再生水率和电价的强烈影响。进行了敏感性分析,以评估温度、压力和电流密度变化对产氢率的影响。压力和电流密度的增加会导致寄生电流,而温度的升高会增加产氢量。尽管气化可以获得更高的产氢率,但合成气的组成降低了在对纯度要求较高的应用中实施的可能性。

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