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March 15, 2026Inventions2 citationsOpen Access

Vertical-Axis Wind Turbines for Extreme Environments: A Systematic Review of Performance, Adaptation Challenges, and Future Pathways

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MAMohanad Al-Ghriybah

Key Points

  • This review synthesizes research on vertical-axis wind turbines' performance in extreme environments, focusing on adaptation challenges.
  • Conducted literature searches in multiple databases including Web of Science and Scopus.
  • Evaluated studies on VAWTs operating under extreme conditions such as icing, offshore sites, and high turbulence.
  • Applied systematic quality assessment for methodological rigor and environmental characterization.
  • Identified significant advances in numerical modeling and control strategies for VAWTs.
  • Found high turbulence decreases power output of large VAWTs by 23–42%.
  • Revealed the need for improved interdisciplinary research and climate-aware methodologies.

Abstract

The rapid expansion of wind energy into complex and extreme environments has renewed interest in vertical-axis wind turbines (VAWTs) due to their omnidirectional operation, compact footprint, and potential resilience under harsh operating conditions. However, the current understanding of VAWT performance remains fragmented across aerodynamic, structural, operational, and application-specific studies. This systematic review aims to synthesize and critically evaluate VAWT research with environmental stressors as the central organizing framework, addressing performance behavior, adaptation challenges, and future research pathways. Literature searches were conducted in the Web of Science Core Collection, Scopus, IEEE Xplore, ScienceDirect, and SpringerLink databases, with Google Scholar used as a supplementary source, covering publications from 2000 to January 2026. Eligible studies focused on VAWTs operating under non-standard or extreme conditions, including icing, offshore, desert, high-turbulence, and thermally severe environments. A systematic quality assessment was applied to evaluate methodological rigor and environmental characterization, and the findings were synthesized using a qualitative–quantitative hybrid approach; no formal meta-analysis was performed. The review reveals substantial advances in unsteady aerodynamics, numerical modeling, and control strategies, but also identifies persistent discrepancies between high-fidelity simulations and real-world performance due to simplified modeling assumptions and limited full-scale experimental validation. Quantitative findings indicate that high turbulence can decrease the power output of large VAWTs by 23–42%, dust and sand in arid environments can reduce torque and power by ~25%, and air temperature increases from 15 °C to 60 °C can reduce the power coefficient of VAWTs by about 38%. Emerging approaches, including artificial intelligence-assisted design, adaptive turbine architectures, and climate-aware methodologies, show promise in addressing these limitations. The findings highlight the urgent need for coordinated long-term field measurements, improved multi-physics modeling, and interdisciplinary research to enhance the reliability and scalability of VAWTs in extreme environments. This review was not registered.

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Mohanad Al-Ghriybah (2026) studied this question.

synapsesocial.com/papers/69b5ff6e83145bc643d1bec9https://doi.org/10.3390/inventions11020025
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