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Carbone-neutral oriented methanol-reforming HT-PEMFC cogeneration based on absorption power refrigeration cycle

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  • Ma, Zhenxi
  • Zhang, Naiji
  • Wu, Wei
  • Sun, Li
  • Zhang, Xiaosong
  • Cai, Liang

Abstract

Methanol is considered as a promising hydrogen carrier in accelerating the carbon-neutral applications of fuel cell cogeneration. However, the methanol reforming process emits CO2 whose efficient recycling is challenging due to the inevitable power and cooling consumption. To this end, this paper considers the methanol reforming based high-temperature proton exchange membrane fuel cells (HT-PEMFC) cogeneration system, equipped with ammonia absorption power-refrigeration cycle (APRC). The waste heat in the integrated system is utilized for the fuel preheating, evaporation and reforming, driving APRC, and water heating, achieving a cascaded utilization of thermal energy. By building the mathematical models for each subsystem, thermodynamic and economic assessments are investigated. The results confirm that the waste heat of HT-PEMFC is sufficient to drive both methanol reforming and APRC, with additional electricity output from APRC. At a current density of 0.53 A/cm2, the exergy efficiency of the integrated system under the design condition is 0.525 and reaches a maximum value of 0.565 at a reaction temperature of 180 °C and pressure of 1.2 bar. The techno-economic analysis reveals a dynamic payback period of 5.2 years and net present value of 1.14 M$ with a 20-year lifespan of the integrated system.

Suggested Citation

  • Ma, Zhenxi & Zhang, Naiji & Wu, Wei & Sun, Li & Zhang, Xiaosong & Cai, Liang, 2024. "Carbone-neutral oriented methanol-reforming HT-PEMFC cogeneration based on absorption power refrigeration cycle," Energy, Elsevier, vol. 308(C).
  • Handle: RePEc:eee:energy:v:308:y:2024:i:c:s0360544224027464
    DOI: 10.1016/j.energy.2024.132972
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    2. Wang, Zaixing & Lin, Yi & Guo, Yu & Liang, Fengli & He, Zhenzong & Kang, Le & Hu, Jiajun & Mao, Junkui & Li, Molly Meng-Jung, 2025. "Feasibility, environmental, and economic analysis of alternative fuel distributed power systems for reliable off-grid energy supply," Applied Energy, Elsevier, vol. 384(C).
    3. Wang, Zhenhua & Feng, Yu & Chen, Fuqiang & Qin, Jiang, 2025. "Thermal behavior of steam reforming reaction at different aspect ratios in the scramjet engine cooling channel," Energy, Elsevier, vol. 314(C).
    4. Wang, Han & Kuang, Min & Li, Jianming & Zhang, Houcheng, 2024. "An innovative hybrid system for electricity and freshwater cogeneration: Integrating high-temperature PEM fuel cells with hydrophilic modified tubular distillers," Energy, Elsevier, vol. 313(C).
    5. Ma, Zhenxi & Zhang, Xiao & Sun, Li & Liang, Wenqing & Cai, Liang, 2025. "Design and optimization of a solar distributed energy system based on a power-methanol-power path," Energy, Elsevier, vol. 328(C).

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