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Multi-objective optimization and exergoeconomic analysis for a novel full-spectrum solar-assisted methanol combined cooling, heating, and power system

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  • Han, Zepeng
  • Wang, Jiangjiang
  • Cui, Zhiheng
  • Lu, Chunyan
  • Qi, Xiaoling

Abstract

A novel full-spectrum solar-assisted methanol combined cooling, heating, and power system was proposed. This system realizes the solar energy full-spectrum utilization in the hybrid solar energy device. A multi-objective optimization model with exergoeconomic analysis using energy-level based cost allocation was proposed to improve the comprehensive performance of the system. The heat storage ratio and supplemental heat ratio are defined to transfer the off-design annual operation conditions to the design parameters. The solar water heating area ratio as a structure variable of the hybrid solar energy device is optimized to improve the integrated performance of energy, economy and environment. The optimization results indicate that the comprehensive performance is best when the solar water heating area ratio is 0.5. Compared to the reference system, the unit exergy cost of total products increased by 49.0 %, whereas the primary energy is saved by 22.6 %, and the carbon dioxide is reduced by 70.6 %. The annual energy and exergy efficiencies are improved by 15.9 % and 17.3 %, respectively, and the collected solar energy is increased by 37.6 %. The sensitivity analysis demonstrates that the carbon dioxide emission, primary energy consumption, and unit exergy cost of total products are positively correlated with supplemental heat ratio and heat storage ratio.

Suggested Citation

  • Han, Zepeng & Wang, Jiangjiang & Cui, Zhiheng & Lu, Chunyan & Qi, Xiaoling, 2021. "Multi-objective optimization and exergoeconomic analysis for a novel full-spectrum solar-assisted methanol combined cooling, heating, and power system," Energy, Elsevier, vol. 237(C).
  • Handle: RePEc:eee:energy:v:237:y:2021:i:c:s0360544221017850
    DOI: 10.1016/j.energy.2021.121537
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    References listed on IDEAS

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    2. Li, Xiaodong & Jinxi, Wang, 2023. "A novel process for the simultaneous production of methanol, oxygen, and electricity using a PEM electrolyzer and agricultural-based landfill gas-fed oxyfuel combustion power plant," Energy, Elsevier, vol. 284(C).
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    4. Xie, Nan & Xiao, Zhenyu & Du, Wei & Deng, Chengwei & Liu, Zhiqiang & Yang, Sheng, 2023. "Thermodynamic and exergoeconomic analysis of a proton exchange membrane fuel cell/absorption chiller CCHP system based on biomass gasification," Energy, Elsevier, vol. 262(PB).

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