Enhancing Sustainability Through a Hybrid Organic Rankine Cycle and Hydrogen Production Systems: A Thermo-Economic Analysis
Abstract
1. Introduction
2. Methodology
2.1. Thermodynamic Analysis
2.1.1. ORC Configurations and Design
2.1.2. Working Fluids
2.1.3. Proton Exchange Membrane Electrolyzer PEMEC and Fuel Cells PEMFC
2.2. Integration of ORC Power Generation and Hydrogen System
2.3. Thermoeconomic Assessment
3. Results
3.1. Thermodynamic Results
3.2. Economic Results
3.3. Analysis of the Scenarios
3.3.1. Analysis of Electricity Consumption Patterns for Hotels and Hospitals
3.3.2. Electricity Market Dynamics Related to the Power Generation
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| BORC | Basic Organic Rankine Cycle |
| DPB | Discounted Payback Time |
| EC | Electrolyzer |
| FC | Fuel cell |
| HT | High Temperature |
| HP | High Pressure |
| GWP | Global Warming Potential |
| LT | Low Temperature |
| LP | Low Pressure |
| LCOE | Levelized Cost of Energy |
| LCOH | Levelized Cost of Hydrogen |
| LHV | Lower Heating Value |
| MT | Medium Temperature |
| NPW | Net Present Worth |
| ODP | Ozone Depletion Potential |
| ORC | Organic Rankine Cycle |
| PDORC | Dual Parallel Organic Rankine Cycle |
| PEMEC | Proton Exchange Membrane Electrolyzer |
| PEMFC | Proton Exchange Membrane Fuel Cell |
| PI | Profitability Index |
| PUN | Italian Electricity Market Price |
| SPB | Simple Payback Time |
| WH | Waste Heat |
Appendix A
Appendix A.1
| Configuration | Net Output Work | Heat Input | Exergy Input |
|---|---|---|---|
| BORC | = − | = | |
| Reheat | = + − | = + | + |
| PDORC | = + − − | = + | |
| Reheat–PDORC | = + + − − | = + + |
Appendix A.2


- Wet fluids (e.g., water and R152a) exhibit a negative slope in the saturated vapor line. This means that after isentropic expansion in the turbine, the working fluid may enter the two-phase region, leading to droplet formation and potential damage to turbine blades.
- Isentropic fluids (e.g., R1234yf) have a vertical saturated vapor line, where isentropic expansion ends precisely at the saturated vapor condition.
- Dry fluids (e.g., R1233zd, R245fa, R601, and R600a) show a positive slope, which ensures that the fluid remains in the superheated region after expansion, avoiding condensation and improving turbine safety and efficiency.
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| Component | Exin | Exout | Exdestr |
|---|---|---|---|
| Evaporator | |||
| Turbine | |||
| Condenser | |||
| Pump | |||
| Mixer | |||
| Distributor | |||
| Reheater |
| Fluid | Critical Temperature (°C) | Critical Pressure (bar) | Thermal Stability | GWP100 | Safety Classification | ODP |
|---|---|---|---|---|---|---|
| R1233zd(E) | 165 | 36.6 | Moderate | 1 | A1 | 0 |
| R1234yf | 94.7 | 33.8 | Moderate | <1 | A2L | 0 |
| R245fa | 154.1 | 36.5 | High | 950 | A1 | 0 |
| R601 | 196.6 | 33.7 | Moderate | 0 | A3 | 0 |
| R600a | 134.7 | 36.5 | Moderate | <5 | A3 | 0 |
| R152a | 113.3 | 45.2 | Moderate | 124 | A2 | 0 |
| Component | ||
|---|---|---|
| PEMEC-EC | ||
| PEMFC-FC |
| Component | Cost Balance Equations |
|---|---|
| Pump | |
| Condenser | |
| Turbine | |
| Evaporator | |
| Mixer | |
| Distributor | |
| Reheater |
| Component | Cost Balance Equations |
|---|---|
| EC | |
| FC |
| Season | Winter | Spring–Autumn | Summer |
|---|---|---|---|
| Days per season | 120 | 153 | 92 |
| Hours per year | 2880 | 3672 | 2208 |
| Average electricity market price ($/kWh) 1 | 0.136 | 0.130 | 0.093 |
| Average electricity price to users ($/kWh) | 0.292 | 0.279 | 0.200 |
| Maximum ORC operating hours per year | 2160 | 2754 | 1380 |
| ORC operating time percentage | 75% | 75% | 62.5% |
| Discount Rate (%) | BORC Power (kW) | SPB (y) | DPB (y) | NPW ($) | PI (%) |
|---|---|---|---|---|---|
| i = 8% | 501 | 4.3 | 5.5 | $1,100,386 | 97.4% |
| 690 | 6.2 | 8.8 | $534,997 | 39% | |
| 746 | 6.8 | 10.2 | $370,824 | 25.7% | |
| i = 5% | 501 | 4.3 | 5.0 | $1,574,701 | 139.3% |
| 690 | 6.2 | 8.8 | $940,526 | 68.6% | |
| 746 | 6.8 | 10.2 | $756,034 | 52.5% | |
| i = 12% | 501 | 4.3 | 6.5 | $644,720 | 57.0% |
| 690 | 6.2 | 11.8 | $145,413 | 10.6% | |
| 746 | 6.8 | 15.0 | $760 | 0.1% |
| EU 27 Average Value (t CO2/y) | Italy (t CO2/y) | North Italy (t CO2/y) | South Italy (t CO2/y) | Spain (t CO2/y) | Germany (t CO2/y) | Poland (t CO2/y) |
|---|---|---|---|---|---|---|
| 328.9 | 413.9 | 387.9 | 409.8 | 180.9 | 309.7 | 752.4 |
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Morrone, B.; Unich, A.; De Falco, D.; Mariani, A.; Serag, S. Enhancing Sustainability Through a Hybrid Organic Rankine Cycle and Hydrogen Production Systems: A Thermo-Economic Analysis. Energies 2026, 19, 1862. https://doi.org/10.3390/en19081862
Morrone B, Unich A, De Falco D, Mariani A, Serag S. Enhancing Sustainability Through a Hybrid Organic Rankine Cycle and Hydrogen Production Systems: A Thermo-Economic Analysis. Energies. 2026; 19(8):1862. https://doi.org/10.3390/en19081862
Chicago/Turabian StyleMorrone, Biagio, Andrea Unich, Domenico De Falco, Antonio Mariani, and Saif Serag. 2026. "Enhancing Sustainability Through a Hybrid Organic Rankine Cycle and Hydrogen Production Systems: A Thermo-Economic Analysis" Energies 19, no. 8: 1862. https://doi.org/10.3390/en19081862
APA StyleMorrone, B., Unich, A., De Falco, D., Mariani, A., & Serag, S. (2026). Enhancing Sustainability Through a Hybrid Organic Rankine Cycle and Hydrogen Production Systems: A Thermo-Economic Analysis. Energies, 19(8), 1862. https://doi.org/10.3390/en19081862

