Integrating a Solar PV System with Pumped Hydroelectric Storage at the Mutah University of Jordan
Abstract
:1. Introduction
2. Methodology
2.1. Location Survey
2.2. Energy Storage Capacity
- Estimate the rated pumping head.
- Determine the rated pump power of water in the higher reservoir when a pump with 1 MW rated power is employed to raise the water level to the rated head.
- 3.
- Identify the number of hours a pump can run continuously at a given rated power in each period.
- 4.
- Estimate the volume of the upper reservoir that is needed.
2.3. Required Site in Jordan
2.3.1. Mutah University
2.3.2. Candidate Reservoir Locations
2.4. Design of PHES
2.4.1. The Selection of Turbine
2.4.2. Determination of the PHES Site in Jordan
2.5. Specifications of the Storage System’s Components
2.5.1. Upper Reservoir
2.5.2. Lower Reservoir
2.5.3. Powerhouse
2.5.4. Conduit
2.6. Piping Design
3. Power System Modelling
3.1. Power System Characteristics
3.1.1. PV Solar Power Plant at Mutah University
3.1.2. Defining a PHES
- -
- If PDem(t) > PGen(t), the extra power from the hydro-turbine PPHES(t) > 0, and makes up the shortfall in the power generated from PPV(t).
- -
- If PDem(t) = PGen(t), PPHES(t) = 0; the power generated by PPV(t) is just sufficient to supply the demand.
- -
- If PDem(t) < PGen(t), PPHES(t) < 0; the excess power generated is stored by the PHES.
3.1.3. Defining the Electrical Load Data
3.1.4. Electrical Power Losses in Distribution Lines
3.2. Load Flow
4. Results and Discussion
4.1. PV Solar Power Results
4.2. Load Profile Results
4.3. PHES Results
5. Conclusions
- Jordan has a significantly higher chance of installing a PHES because all necessary prerequisites have been met.
- The system would run efficiently and independently of the national electric network, reducing the university’s transit costs to the electrical distribution company.
- The system would render an annual energy production of 9230.89 MWh/year, an annual load yield of 4430 MWh/year, which would cover the Mutah University demand with an estimate saving of USD 287,607,993.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Type of Machine | Reversible Pump–Turbine Unit (Francis) |
---|---|
Overall capacity | 5 MW |
Unit capacity | 1 MW |
Number of units | 5 units |
Rated head | 85 m |
Efficiency of generator | 90% |
Efficiency of pump | 90% |
Total Efficiency | 81% |
Rated discharge of turbine mode | 1.33 (m3/s) for each unit |
Rated discharge of pump mode | 1.079 (m3/s) for each unit |
Type | JAM72S01-340/SC |
---|---|
Peak power (PMAX) | 340 W |
Open circuit voltage (Voc) | 46.32 V |
Max. power voltage (Vmp) | 37.87 V |
Short circuit current (Isc) | 9.60 A |
Max power current (Imp) | 8.98 A |
Power selection | 0~±5 W |
PV input | 565 Vdc–1000 Vdc 110 A/150 A max. rated current/Isc |
Output | 3P + PE, 380/400 Vac delta 352–440 Vac @400 Vac, 87.0 A Cos(Phi): 0.8…1…0.8 over/underexc. Max. output fault current: 49.8 over ms |
Power | 60 Kva@400 Vac, 45 °C/113 °F, Cos(Phi = 1) |
Freq. | 50/60 Hz (45–65) |
Chassis | Outdoor IP65, protective class I Temp. −25 °C to 60 °C/−13 °F to 140 °F |
Average active losses (P) | 3.6062 kW |
Maximum active losses (P) | 17.2833 kW |
Average reactive losses (Q) | 14.4996 kVAR |
Maximum reactive losses (Q) | 73.7099 kVAR |
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Zeidan, M.; Al-soud, M.; Dmour, M.; Alakayleh, Z.; Al-qawabah, S. Integrating a Solar PV System with Pumped Hydroelectric Storage at the Mutah University of Jordan. Energies 2023, 16, 5769. https://doi.org/10.3390/en16155769
Zeidan M, Al-soud M, Dmour M, Alakayleh Z, Al-qawabah S. Integrating a Solar PV System with Pumped Hydroelectric Storage at the Mutah University of Jordan. Energies. 2023; 16(15):5769. https://doi.org/10.3390/en16155769
Chicago/Turabian StyleZeidan, Mahmoud, Mohammed Al-soud, Mothana Dmour, Zuhier Alakayleh, and Safwan Al-qawabah. 2023. "Integrating a Solar PV System with Pumped Hydroelectric Storage at the Mutah University of Jordan" Energies 16, no. 15: 5769. https://doi.org/10.3390/en16155769
APA StyleZeidan, M., Al-soud, M., Dmour, M., Alakayleh, Z., & Al-qawabah, S. (2023). Integrating a Solar PV System with Pumped Hydroelectric Storage at the Mutah University of Jordan. Energies, 16(15), 5769. https://doi.org/10.3390/en16155769