Feasibility Of Organic Rankine Cycle (Orc) Wıth Waste Heat Recovery
DOI:
https://doi.org/10.65405/.v10i37.616الملخص
The present study focused on the feasibility of Organic Rankine Cycle (ORC) using waste heat
recovery. The waste heat covered from glass factory. The working fluid in the cycle were
Isobutane. Thermodynamic model of the system was derived and validated for performance
prediction. The validated thermodynamic model is used to optimize the operation of the small
ORC in waste heat recovery application. The temperature which recovered and mass flow rate
were 155 ºC and 27 kg/s respectively. The power output of double stage turbines was 8370 kW
.The payback period 2.5 years. It is concluded from the study that recovering the waste heat by
way of ORCs is technically and economically feasible. As recycled energy, waste heat has the
same advantages as renewable energy.
التنزيلات
المراجع
1. Darvish, K., et al., Selection of optimum working fluid for organic
Rankine cycles by exergy and exergy-economic analyses.
Sustainability, 2015. 7(11): p. 15362-15383.
2. Adeleke, O., et al., Sustainable utilization of energy from waste: A
review of potentials and challenges of Waste-to-energy in South Africa.
International Journal of Green Energy, 2021. 18(14): p. 1550-1564.
3. Gil, A., Challenges on waste-to-energy for the valorization of industrial
wastes: Electricity, heat and cold, bioliquids and biofuels. Environmental
Nanotechnology, Monitoring & Management, 2022. 17: p. 100615.
4. Mahmoud, M., et al., Investigation of a ground-cooled organic Rankine
cycle for waste heat recovery. International Journal of Thermofluids,
2023. 18: p. 100348.
5. Braimakis, K. and S. Karellas, Thermodynamic investigation of integrated
organic Rankine cycle-ejector vapor compression cooling cycle waste
heat recovery configurations for cooling, heating and power production.
Energy, 2024. 304: p. 132020.
Zhang, C., et al., Potential analysis of a waste heat recovery combined
system based on recuperator and organic Rankine cycle on rotorcraft
powerplant. Case Studies in Thermal Engineering, 2024. 55: p.
104136.
7. Bellos, E., A detailed analysis of waste heat recovery organic Rankine
cycle with partial evaporation and different working fluids. Applied
Thermal Engineering, 2025. 263: p. 125410.
8. Shalby, M., A. Marachli, and A.A. Salah, Working fluid selection and
performance analysis for subcritical organic Rankine cycles. Results in
Engineering, 2025. 25: p. 104120.
9. Lemmens, S. A perspective on costs and cost estimation techniques for
organic Rankine cycle systems. in Proceedings of the 3rd International
Seminar on ORC Power Systems, Brussels, Belgium. 2015.
10. Topal, H.I. and S. Ozturk, Thermoeconomic assessment and
optimization of a novel dual-loop organic Rankine cycle for enhanced
waste heat recovery from a gas engine. Thermal Science and
Engineering Progress, 2025: p. 104049.
11. Qu, J., et al., Design and thermodynamic analysis of a combined system
including steam Rankine cycle, organic Rankine cycle, and power turbine
for marine low-speed diesel engine waste heat recovery. Energy
Conversion and Management, 2021. 245: p. 114580.
12. Baccioli, A., et al., Potential energy recovery by integrating an ORC in a
biogas plant. Applied Energy, 2019. 256: p. 113960.
13. Leduc, P., et al., Low temperature heat recovery in engine coolant for
stationary and road transport applications. Energy Procedia, 2017. 129:
p. 834-842.
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