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Non-equilibrium thermodynamic analysis of adsorption carbon capture: Contributors, mechanisms and verification of entropy generation

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Listed:
  • Guo, Zhihao
  • Deng, Shuai
  • Zhu, Yu
  • Zhao, Li
  • Yuan, Xiangzhou
  • Li, Shuangjun
  • Chen, Lijin

Abstract

Emissions of greenhouse gases should be reduced for the slowing of global warming. Carbon capture by adsorption, which is available to retrofit of existing power plants and to integration with renewable energy, is an effective technology to reduce CO2 emissions. However, the heavy energy consumption has already become a limitation to scale-up applications. Thermodynamic research, especially entropy analysis, could quantitatively clarify the irreversible loss and provide a guidance to the energy-saving design. Considering that classical thermodynamics is powerless in the description of significant kinetic characteristics of adsorption carbon capture, non-equilibrium thermodynamics is thus required, as it could provide a detailed analysis on the contributors and mechanisms of entropy sources. In this paper, the entropy source contributors of adsorption systems, which are composed of entropy generation of 9 irreversible factors for different adsorption cycles, were derived. An entropy research framework was proposed and illustrated through a case study of vacuum temperature swing adsorption (VTSA). The results are also compared with the classical exergy method, and the difference between the results of the two methods for entropy generation is 1.97%. This paper provides a thorough research framework for detailed thermodynamic analyses of adsorption carbon capture.

Suggested Citation

  • Guo, Zhihao & Deng, Shuai & Zhu, Yu & Zhao, Li & Yuan, Xiangzhou & Li, Shuangjun & Chen, Lijin, 2020. "Non-equilibrium thermodynamic analysis of adsorption carbon capture: Contributors, mechanisms and verification of entropy generation," Energy, Elsevier, vol. 208(C).
  • Handle: RePEc:eee:energy:v:208:y:2020:i:c:s0360544220314559
    DOI: 10.1016/j.energy.2020.118348
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    1. Torabi, Mohsen & Karimi, Nader & Zhang, Kaili, 2015. "Heat transfer and second law analyses of forced convection in a channel partially filled by porous media and featuring internal heat sources," Energy, Elsevier, vol. 93(P1), pages 106-127.
    2. Li, Shuangjun & Deng, Shuai & Zhao, Ruikai & Zhao, Li & Xu, Weicong & Yuan, Xiangzhou & Guo, Zhihao, 2019. "Entropy analysis on energy-consumption process and improvement method of temperature/vacuum swing adsorption (TVSA) cycle," Energy, Elsevier, vol. 179(C), pages 876-889.
    3. Zhao, Ruikai & Deng, Shuai & Liu, Yinan & Zhao, Qing & He, Junnan & Zhao, Li, 2017. "Carbon pump: Fundamental theory and applications," Energy, Elsevier, vol. 119(C), pages 1131-1143.
    4. Ben-Mansour, R. & Habib, M.A. & Bamidele, O.E. & Basha, M. & Qasem, N.A.A. & Peedikakkal, A. & Laoui, T. & Ali, M., 2016. "Carbon capture by physical adsorption: Materials, experimental investigations and numerical modeling and simulations – A review," Applied Energy, Elsevier, vol. 161(C), pages 225-255.
    5. Bidi, M. & Nobari, M.R.H. & Avval, M. Saffar, 2010. "A numerical evaluation of combustion in porous media by EGM (Entropy Generation Minimization)," Energy, Elsevier, vol. 35(8), pages 3483-3500.
    6. Zhao, Ruikai & Zhao, Li & Deng, Shuai & Song, Chunfeng & He, Junnan & Shao, Yawei & Li, Shuangjun, 2017. "A comparative study on CO2 capture performance of vacuum-pressure swing adsorption and pressure-temperature swing adsorption based on carbon pump cycle," Energy, Elsevier, vol. 137(C), pages 495-509.
    7. Li, Shuangjun & Deng, Shuai & Zhao, Li & Zhao, Ruikai & Lin, Meng & Du, Yanping & Lian, Yahui, 2018. "Mathematical modeling and numerical investigation of carbon capture by adsorption: Literature review and case study," Applied Energy, Elsevier, vol. 221(C), pages 437-449.
    8. Li, Ang & Ismail, Azhar Bin & Thu, Kyaw & Ng, Kim Choon & Loh, Wai Soong, 2014. "Performance evaluation of a zeolite–water adsorption chiller with entropy analysis of thermodynamic insight," Applied Energy, Elsevier, vol. 130(C), pages 702-711.
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