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Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation

Sayı: Advanced Online Publication Erken Görünüm Tarihi: 5 Mayıs 2026
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Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation

Öz

This study evaluates hydroelectric performance under drought conditions through a scenario-based hybrid turbine operation strategy. Drought-induced hydrological variability leads to fluctuations in streamflow and consequently affects energy production continuity. In response, a Francis–Pelton hybrid configuration was assessed under five drought scenarios classified using the Streamflow Drought Index (SDI). Monthly averaged synthetic discharge data were employed to represent idealized hydrological conditions. Turbine selection was determined using a relative discharge (RD) criterion, whereby the Francis turbine operated under normal to severe drought conditions, and the Pelton turbine was activated during extreme drought. Energy production was calculated using the conventional hydropower formulation incorporating discharge, net head, operation time, and representative efficiency values derived from the literature. Results indicate that the hybrid configuration improves low-flow performance and provides an additional annual energy gain of approximately 8% (4.86 GWh) compared to a single-turbine system. This corresponds to an increase in capacity factor from 49.4% to 53.3%. The findings are based on synthetic monthly data and assumed efficiency parameters and therefore represent an idealized technical assessment rather than site-specific operational performance. Within these constraints, the study offers a methodological framework for evaluating hybrid turbine applicability under drought-induced hydrological variability.

Anahtar Kelimeler

Kaynakça

  1. Fälth, H. E., Hedenus, F., Reichenberg, L., & Mattsson, N. (2025). Through energy droughts: hydropower’s ability to sustain a high output. Renewable and Sustainable Energy Reviews, 214, 115519. https://doi.org/10.1016/j.rser.2025.115519
  2. Othman, M. E. F., Sidek, L. M., Basri, H., El-Shafie, A., & Ahmed, A. N. (2025). Climate challenges for sustainable hydropower development and operational resilience: A review. Renewable and Sustainable Energy Reviews, 209, 115108. https://doi.org/10.1016/j.rser.2024.115108
  3. Setyawan, E. Y., Krismanto, A. U., Djiwo, S., Saleh, C., & Hidayat, T. (2024). Optimizing Pelton turbine performance: unveiling the power of three nozzles for maximum efficiency and sustainable hydropower generation. Journal of Measurements in Engineering, 12(3), 469-484. https://doi.org/10.21595/jme.2024.23966
  4. Cassano, S., Sossan, F., Landry, C., & Nicolet, C. (2021, October). Performance assessment of linear models of hydropower plants. In 2021 IEEE PES Innovative Smart Grid Technologies Europe (ISGT Europe) (pp. 01-06). IEEE. https://doi.org/10.1109/ISGTEurope52324.2021.9639912
  5. Wu, J., Liu, Z., Yao, H., Chen, X., Chen, X., Zheng, Y., & He, Y. (2018). Impacts of reservoir operations on multi-scale correlations between hydrological drought and meteorological drought. Journal of Hydrology, 563, 726-736. https://doi.org/10.1016/j.jhydrol.2018.06.053
  6. International Energy Agency. (2020). “Measures to enhance the resilience of African hydropower”. In Climate impacts on African hydropower. Retrieved April 20, 2025, from https://www.iea.org/reports/climate-impacts-on-african-hydropower/measures-to-enhance-the-resilience-of-african-hydropower
  7. Anzelius, T. (2025). The Potential for Capacity Expansion in Swedish Hydropower Plants.
  8. Tayyeh, H. K., & Mohammed, R. (2024). Vulnerability and resilience of hydropower generation under climate change scenarios: Haditha dam reservoir case study. Applied Energy, 366, 123308. https://doi.org/10.1016/j.apenergy.2024.123308

Ayrıntılar

Birincil Dil

İngilizce

Konular

Su Kaynakları Mühendisliği, Su Kaynakları ve Su Yapıları, İnşaat Mühendisliği (Diğer)

Bölüm

Teknik Not

Erken Görünüm Tarihi

5 Mayıs 2026

Yayımlanma Tarihi

-

Gönderilme Tarihi

19 Ekim 2025

Kabul Tarihi

29 Nisan 2026

Yayımlandığı Sayı

Yıl 2026 Sayı: Advanced Online Publication

Kaynak Göster

APA
Fidan, H., & Bağatur, T. (2026). Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation. Turkish Journal of Civil Engineering, Advanced Online Publication. https://doi.org/10.18400/tjce.1806645
AMA
1.Fidan H, Bağatur T. Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation. tjce. 2026;(Advanced Online Publication). doi:10.18400/tjce.1806645
Chicago
Fidan, Hüseyin, ve Tamer Bağatur. 2026. “Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation”. Turkish Journal of Civil Engineering, sy Advanced Online Publication. https://doi.org/10.18400/tjce.1806645.
EndNote
Fidan H, Bağatur T (01 Mayıs 2026) Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation. Turkish Journal of Civil Engineering Advanced Online Publication
IEEE
[1]H. Fidan ve T. Bağatur, “Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation”, tjce, sy Advanced Online Publication, May. 2026, doi: 10.18400/tjce.1806645.
ISNAD
Fidan, Hüseyin - Bağatur, Tamer. “Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation”. Turkish Journal of Civil Engineering. Advanced Online Publication (01 Mayıs 2026). https://doi.org/10.18400/tjce.1806645.
JAMA
1.Fidan H, Bağatur T. Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation. tjce. 2026. doi:10.18400/tjce.1806645.
MLA
Fidan, Hüseyin, ve Tamer Bağatur. “Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation”. Turkish Journal of Civil Engineering, sy Advanced Online Publication, Mayıs 2026, doi:10.18400/tjce.1806645.
Vancouver
1.Hüseyin Fidan, Tamer Bağatur. Adaptive Hybrid Turbine Switching for Drought-Resilient Hydropower Operation. tjce. 01 Mayıs 2026;(Advanced Online Publication). doi:10.18400/tjce.1806645