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Power-to-heat amine-based post-combustion CO2 capture system with solvent storage utilizing fluctuating electricity prices

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  • Isogai, Hirotaka
  • Nakagaki, Takao

Abstract

A thermal power plant employing amine-based post-combustion CO2 capture (PCC) stands as a key technology for low-carbon, stable power sources aiming to economically achieve net zero CO2 emissions in the electric power sector. However, the high cost associated with amine-based PCC has prevented its swift implementation. This study proposes a novel power-to-heat amine-based PCC system featuring solvent storage tanks. This system provides CO2 absorption during the operation of the thermal power plant and facilitates CO2 desorption through a heat pump driven by exceptionally inexpensive electricity procured during peak power generation periods from the grid. To demonstrate this concept, we evaluated the profitability of the proposed system using mathematical modelling and the calculation of the capital expenditure (CAPEX) and fixed operating expenses. The mathematical model optimizes the operational modes of the system facilities based on actual annual electricity prices. The results demonstrated that the novel PCC system decreased the average cost for energy consumption during the CO2 stripping and compression process per tonne of CO2 by approximately 30% compared with the conventional, flexible PCC system with venting. Consequently, it increased the net present value by approximately 15%. This showcases the feasibility of the power-to-heat amine-based PCC system in electricity markets prone to extreme fluctuations in electricity prices, where prices plummet during periods of surplus and escalate during peak demand. Notably, results also revealed that despite the low-capacity factor of the power plant (<30%) in such markets, retrofitting an amine-based PCC system into fully depreciated existing natural gas combined cycles yielded positive net present values even without economic incentives like credits for captured and stored CO2 or grant funding for CAPEX. This suggests potential economic sustainability of the system, even in the imminent rise of inexpensive variable renewable energy. However, the results also indicated that such a low-capacity factor and high PCC CAPEX require high CO2 price (350–400 USD/t-CO2) to incentivize carbon capture and storage (CCS) adoption in a power plant in the market. Therefore, reduction in PCC CAPEX should be emphasized as a future challenge in the scenario of swiftly employing thermal power plants equipped with CCS as a dispatchable firm power source. Finally, implementing the power-to-heat amine-based PCC system will bolster power supply reliability and alleviate the curtailment of power generation caused by variable renewable energy sources.

Suggested Citation

  • Isogai, Hirotaka & Nakagaki, Takao, 2024. "Power-to-heat amine-based post-combustion CO2 capture system with solvent storage utilizing fluctuating electricity prices," Applied Energy, Elsevier, vol. 368(C).
  • Handle: RePEc:eee:appene:v:368:y:2024:i:c:s0306261924009024
    DOI: 10.1016/j.apenergy.2024.123519
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    References listed on IDEAS

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    1. Lindqvist, Karl & Jordal, Kristin & Haugen, Geir & Hoff, Karl Anders & Anantharaman, Rahul, 2014. "Integration aspects of reactive absorption for post-combustion CO2 capture from NGCC (natural gas combined cycle) power plants," Energy, Elsevier, vol. 78(C), pages 758-767.
    2. Li, Kangkang & Leigh, Wardhaugh & Feron, Paul & Yu, Hai & Tade, Moses, 2016. "Systematic study of aqueous monoethanolamine (MEA)-based CO2 capture process: Techno-economic assessment of the MEA process and its improvements," Applied Energy, Elsevier, vol. 165(C), pages 648-659.
    3. Van Wagener, David H. & Liebenthal, Ulrich & Plaza, Jorge M. & Kather, Alfons & Rochelle, Gary T., 2014. "Maximizing coal-fired power plant efficiency with integration of amine-based CO2 capture in greenfield and retrofit scenarios," Energy, Elsevier, vol. 72(C), pages 824-831.
    4. Otitoju, Olajide & Oko, Eni & Wang, Meihong, 2021. "Technical and economic performance assessment of post-combustion carbon capture using piperazine for large scale natural gas combined cycle power plants through process simulation," Applied Energy, Elsevier, vol. 292(C).
    5. Oh, Se-Young & Yun, Seokwon & Kim, Jin-Kuk, 2018. "Process integration and design for maximizing energy efficiency of a coal-fired power plant integrated with amine-based CO2 capture process," Applied Energy, Elsevier, vol. 216(C), pages 311-322.
    6. Manzolini, G. & Sanchez Fernandez, E. & Rezvani, S. & Macchi, E. & Goetheer, E.L.V. & Vlugt, T.J.H., 2015. "Economic assessment of novel amine based CO2 capture technologies integrated in power plants based on European Benchmarking Task Force methodology," Applied Energy, Elsevier, vol. 138(C), pages 546-558.
    7. Zhao, Bin & Liu, Fangzheng & Cui, Zheng & Liu, Changjun & Yue, Hairong & Tang, Siyang & Liu, Yingying & Lu, Houfang & Liang, Bin, 2017. "Enhancing the energetic efficiency of MDEA/PZ-based CO2 capture technology for a 650MW power plant: Process improvement," Applied Energy, Elsevier, vol. 185(P1), pages 362-375.
    8. Matsuo, Yuhji & Endo, Seiya & Nagatomi, Yu & Shibata, Yoshiaki & Komiyama, Ryoichi & Fujii, Yasumasa, 2020. "Investigating the economics of the power sector under high penetration of variable renewable energies," Applied Energy, Elsevier, vol. 267(C).
    9. Richard Schmalensee, 2022. "Competitive Energy Storage and the Duck Curve," The Energy Journal, , vol. 43(2), pages 1-16, March.
    10. Eppinger, Bernd & Steger, Daniel & Regensburger, Christoph & Karl, Jürgen & Schlücker, Eberhard & Will, Stefan, 2021. "Carnot battery: Simulation and design of a reversible heat pump-organic Rankine cycle pilot plant," Applied Energy, Elsevier, vol. 288(C).
    11. Brouwer, Anne Sjoerd & van den Broek, Machteld & Seebregts, Ad & Faaij, André, 2015. "Operational flexibility and economics of power plants in future low-carbon power systems," Applied Energy, Elsevier, vol. 156(C), pages 107-128.
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