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April 3, 2026Energies2 citationsOpen Access

Thermo-Economic Optimization and Resilience Analysis of Low-GWP Zeotropic Mixtures for Low-Enthalpy Geothermal Power Generation

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FSFelix Donate SánchezCMCarmen Mata MontesJSJavier Barba Salvador

Key Points

  • This research aims to optimize the performance of low-enthalpy geothermal systems using low-GWP zeotropic mixtures.
  • Investigated low-GWP zeotropic mixtures in Organic Rankine Cycles (ORCs)
  • Optimized using the NSGA-II algorithm
  • Developed and validated the ORC Master Suite simulation tool
  • Simultaneously optimized exergetic efficiency and Levelized Cost of Energy (LCOE) under Pinch Point constraints
  • Achieved a 15–25% increase in exergetic efficiency with Pentane/Isobutane (70/30%) compared to pure fluids
  • Temperature glide reduced irreversibilities, enhancing performance
  • Maintained competitive LCOE despite increased heat transfer area requirements and safety costs

Abstract

The efficient recovery of low-enthalpy geothermal resources (T≤150 °C) faces significant thermodynamic limitations due to thermal mismatch in evaporators when pure fluids are utilized. This study investigates low-GWP zeotropic mixtures (Pentane/Isobutane), optimized using the NSGA-II algorithm, to enhance both the efficiency and operational resilience of Organic Rankine Cycles (ORCs). The isothermal behavior of conventional fluids limits exergy recovery and increases the Levelized Cost of Energy (LCOE). To address this, an advanced simulation tool, “ORC Master Suite”, was developed and validated against recent literature. Exergetic efficiency and LCOE were simultaneously optimized under strict Pinch Point constraints. Results show that the low-GWP zeotropic mixture of Pentane/Isobutane (70/30% w/w) achieves a 15–25% increase in exergetic efficiency compared to pure fluids, mainly due to the temperature glide, which reduces irreversibilities. Despite the increase in required heat transfer area and the strict capital expenditure penalties associated with ATEX safety protocols for highly flammable hydrocarbons, the LCOE remained competitive against the reference fluid. Overall, low-GWP zeotropic mixtures not only improve thermodynamic performance but also exhibit higher operational resilience to geothermal source fluctuations, making them a promising and sustainable alternative for future geothermal power plants.

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Cite This Study

Sánchez et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e995a333a821460d03fhttps://doi.org/10.3390/en19071725
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