Araştırma Makalesi

Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios

Cilt: 9 Sayı: 5 15 Eylül 2026
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Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios

Öz

This study presents a thermodynamic, dynamic solar, and environmental performance analysis of an integrated off-grid system combining photocatalytic hydrogen (H2) production with a proton exchange membrane (PEM) fuel cell and a vapor-compression cold storage unit (R290) for a representative Mediterranean site (Adana, Türkiye, 37.0°N). A critical methodological advance over prior simulations is the adoption of a three-scenario framework explicitly grounded in real outdoor pilot data: Scenario S1 (STH = 0.9%, TiO2-CuO/P25); Scenario S2 (STH = 2.81%, Pd/TiO2); and Scenario S3 (STH = 10%, Z-scheme heterojunction, DOE 2030 target). All three scenarios share the same 20m2 reactor aperture derived from a closed energy-balance calculation requiring the S2 system to meet the full annual cooling demand of a 400-L cabinet and identical system architecture; only the photocatalytic efficiency differs. Dynamic simulation uses 8760 hourly TMY data points from PVGIS-SARAH2. First- and second-law analyses employ the Petela solar exergy model and the Gouy - Stodola theorem. The primary objective is to determine the minimum solar-to-hydrogen (STH) efficiency at which the integrated system becomes carbon-competitive with a diesel reference, rather than to propose a deployment-ready design. A central finding is the identification of a carbon break-even STH of approximately 1.04%: below this threshold the system produces a higher lifecycle carbon footprint than the diesel reference it replaces; above it, meaningful GHG savings accumulate. S1 (STH = 0.9%), which represents the current state of practice at pilot scale, sits marginally below this threshold (system GWP = 0.356 kg CO2-eq/kWh; carbon payback 19.6 years). S2 (STH = 2.81%) crosses the threshold convincingly: system GWP = 0.184 kg CO2-eq/kWh; 42.9% GHG reduction versus diesel; carbon payback 6.3 years. S3 achieves system GWP = 0.023 kg CO2-eq/kWh and 92.9% GHG reduction. These findings provide quantitative technology targets and identify photocatalyst development as the sole rate-limiting factor for deployment.

Anahtar Kelimeler

Etik Beyan

Ethics committee approval was not required for this study because there was no study on animals or humans.

Teşekkür

The author acknowledges the European Commission Joint Research Centre for providing the PVGIS-SARAH2 database used in this study.

Kaynakça

  1. Alfano, O. M., Bahnemann, D., Cassano, A. E., Dillert, R., & Goslich, R. (2000). Photocatalysis in water environments using artificial and solar light. Catalysis Today, 58(2–3), 199–230. https://doi.org/10.1016/S0920-5861(00)00252-2
  2. Amphlett, J. C., Baumert, R. M., Mann, R. F., Peppley, B. A., Roberge, P. R., & Harris, T. J. (1995). Performance modeling of the Ballard Mark IV solid polymer electrolyte fuel cell: I. Mechanistic model development. Journal of the Electrochemical Society, 142(1), 1–8. https://doi.org/10.1149/1.2043866
  3. ASHRAE. (2021). ASHRAE handbook fundamentals. American Society of Heating, Refrigerating and Air-Conditioning Engineers.
  4. Barbir, F. (2012). PEM fuel cells: Theory and practice (2nd ed.). Academic Press.
  5. Chen, X., Shen, S., Guo, L., & Mao, S. S. (2010). Semiconductor-based photocatalytic hydrogen generation. Chemical Reviews, 110(11), 6503–6570. https://doi.org/10.1021/cr1001645
  6. Corrêa, J. M., Farret, F. A., Canha, L. N., & Simoes, M. G. (2004). An electrochemical-based fuel-cell model suitable for electrical engineering automation approach. IEEE Transactions on Industrial Electronics, 51(5), 1103–1112. https://doi.org/10.1109/TIE.2004.834972
  7. DOE. (2021). Hydrogen Shot. U.S. Department of Energy. https://www.energy.gov/cmei/fuels/hydrogen-shot-summit
  8. Duffie, J. A., Beckman, W. A., & Blair, N. (2020). Solar engineering of thermal processes, photovoltaics and wind (5th ed.). John Wiley & Sons.

Ayrıntılar

Birincil Dil

İngilizce

Konular

Enerji Üretimi, Dönüşüm ve Depolama (Kimyasal ve Elektiksel hariç)

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

15 Eylül 2026

Gönderilme Tarihi

8 Haziran 2026

Kabul Tarihi

17 Temmuz 2026

Yayımlandığı Sayı

Yıl 2026 Cilt: 9 Sayı: 5

Kaynak Göster

APA
Tutumlu, H. (2026). Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios. Black Sea Journal of Engineering and Science, 9(5), 2188-2202. https://doi.org/10.34248/bsengineering.1966511
AMA
1.Tutumlu H. Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios. BSJ Eng. Sci. 2026;9(5):2188-2202. doi:10.34248/bsengineering.1966511
Chicago
Tutumlu, Hakan. 2026. “Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios”. Black Sea Journal of Engineering and Science 9 (5): 2188-2202. https://doi.org/10.34248/bsengineering.1966511.
EndNote
Tutumlu H (01 Eylül 2026) Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios. Black Sea Journal of Engineering and Science 9 5 2188–2202.
IEEE
[1]H. Tutumlu, “Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios”, BSJ Eng. Sci., c. 9, sy 5, ss. 2188–2202, Eyl. 2026, doi: 10.34248/bsengineering.1966511.
ISNAD
Tutumlu, Hakan. “Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios”. Black Sea Journal of Engineering and Science 9/5 (01 Eylül 2026): 2188-2202. https://doi.org/10.34248/bsengineering.1966511.
JAMA
1.Tutumlu H. Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios. BSJ Eng. Sci. 2026;9:2188–2202.
MLA
Tutumlu, Hakan. “Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios”. Black Sea Journal of Engineering and Science, c. 9, sy 5, Eylül 2026, ss. 2188-02, doi:10.34248/bsengineering.1966511.
Vancouver
1.Hakan Tutumlu. Integration of Photocatalytic Hydrogen Production with a Pem Fuel Cell-Based Off-Grid Cold Storage System: Thermodynamic, Dynamic Solar, and Environmental Performance Analysis across Three Technology Readiness Scenarios. BSJ Eng. Sci. 01 Eylül 2026;9(5):2188-202. doi:10.34248/bsengineering.1966511