Applied thermal engineering2022,Vol.20916.DOI:10.1016/j.applthermaleng.2022.118280

Thermodynamic performance of solar-driven methanol steam reforming system for carbon capture and high-purity hydrogen production

Yang, Rufan Wang, Bingzheng Wei, Zenghao Kong, Hui Lu, Xiaofei Jin, Jian Wang, Hongsheng
Applied thermal engineering2022,Vol.20916.DOI:10.1016/j.applthermaleng.2022.118280

Thermodynamic performance of solar-driven methanol steam reforming system for carbon capture and high-purity hydrogen production

Yang, Rufan 1Wang, Bingzheng 1Wei, Zenghao 2Kong, Hui 3Lu, Xiaofei 2Jin, Jian 4Wang, Hongsheng1
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作者信息

  • 1. Wuhan Univ
  • 2. Univ Tokyo
  • 3. Beijing Inst Technol
  • 4. Huazhong Univ Sci & Technol
  • 折叠

Abstract

Solar energy storage via a thermochemical approach is a promising method to realize the efficient utilization of discontinuous sunlight. Traditional solar thermochemical conversion with the assistant of hydrocarbon requires the purification process of products, and a relatively high reaction temperature limits its thermodynamic efficiency. In this work, a thermodynamic study on solar-driven methanol steam reforming reaction in a Pd-Ag membrane reactor has been conducted. The partial pressure, conversion rate, and thermodynamic efficiency are studied and analyzed under different reaction temperatures (150-250 C) and permeate pressures (10-3-1 bar). Via the membrane reactor, the equilibrium of reaction shifts forward and the conversion rate of methanol can reach as high as above 99.9% in 150-250 C, and purified hydrogen and carbon dioxide can be collected separately. Under the optimized reaction temperature and pressure, the solar-to-fuel efficiency and exergy efficiency can reach as high as 55.2% and 74.79%, respectively. Due to the utilization of solar energy and membrane reactor, the annual coal saving rate and carbon dioxide reduction rate are predicted to be 0.63 t/m2 and 1.53 t/m2, respectively. This thermodynamic research provides an efficient approach for solar energy conversion and storage without CO2 emission.

Key words

Solar fuel/Methanol reforming/Hydrogen generation/Membrane reactor/Hydrogen purification/CO 2 capture/THERMOCHEMICAL FUEL PRODUCTION/CU/ZNO/AL2O3 CATALYSTS/POWER/PALLADIUM/EFFICIENT/REACTOR/PERMEATION/ENERGY/WATER/HEAT

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出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量13
参考文献量78
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