Reducing the cost of low-carbon hydrogen production via emerging chemical looping process

被引:14
|
作者
Argyris, Panagiotis Alexandros [1 ]
Wong, Jared [1 ]
Wright, Andrew [1 ]
Pereira, Luis M. C. [2 ]
Spallina, Vincenzo [1 ]
机构
[1] Univ Manchester, Dept Chem Engn, Manchester M13 9PL, England
[2] TotalEnergies OneTech France, CCS Program, R&D Line CO2&Sustainabil Platform, F-64018 Pau, France
基金
英国工程与自然科学研究理事会;
关键词
Chemical looping; CO2; capture; BlueH2; production; Techno-economic analysis; PACKED-BED REACTORS; OXYGEN CARRIERS; INTEGRATION; COMBUSTION; NI; CU;
D O I
10.1016/j.enconman.2022.116581
中图分类号
O414.1 [热力学];
学科分类号
摘要
A thorough techno-economic analysis where inherent carbon capture is examined against state-of-the-art blue hydrogen production configurations for large (100,000 Nm3/h) and very large (333,000 Nm3/h) capacities. Advanced solvent-based technologies based on post-combustion capture and auto-thermal reformer combined with a gas heated reformer are simulated with process flowsheet software and compared with the emerging chemical looping process. A network of dynamically operated packed bed reactors has been designed and modelled using an in-house code and key parameters generating uncertainties in the results have been examined in a sensitivity analysis. The chemical looping reforming process presents a higher net reforming efficiency than the benchmark cases (8.2 % higher at large scale and 1.5 % higher at very large scale) ranged 75.4-75.7 % while the specific energy for CO2 avoidance is negative in the range of -0.78 to -0.85 MJ/kgCO2. In the carbon capture cases, the chemical looping reforming in packed beds technology generated a levelised cost of hydrogen of 168.9 pound/kNm3H2 for the large scale and 159.1 pound/kNm3H2 for the very large scale, with the values for the benchmark cases being higher at 196.4 and 166.6 pound/kNm3H2, respectively while the levelised cost of hydrogen values are 1 % higher in the benchmark cases where carbon emission price is accounted for. The carbon capture ratio is 99.9 % for the chemical looping reforming cases compared to 90-91 % for the benchmark ones, thus providing a significant foreground for the scale-up and implementation of chemical looping reforming technologies for hydrogen production.
引用
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页数:13
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