Peak Load Shaving of Air Conditioning Loads via Rooftop Grid-Connected Photovoltaic Systems: A Case Study
Abstract
:1. Introduction
- Presenting a peak shaving assessment of a GCPVS (without BESS integration) in an arid area, which has rarely been reported in the literature [23];
- Exploiting the high-resolution one-year recorded data of a 51 kW real GCPVS, raising the results’ reliability;
2. Description of Case Study
2.1. Photovoltaic Incentives in Iran
2.2. Mashhad City Hall Building’s Grid-Connected Photovoltaic System
3. Peak Load Shaving Indicators
4. Experimental Results
4.1. Peak Power Shaving
4.2. Self-Sufficiency
- The fixed FiT policy can be adopted for countries with stable economic conditions and a low electricity rate, e.g., most Middle Eastern countries located in the south of the Persian Gulf. Therefore, the owner sells the GCPVS’s generated energy at an interesting price (i.e., greater than the electricity rate).
- An increasing FiT rate over the contract term, named a dynamic FiT, can be used for countries with unstable economic conditions and a low electricity rate. In countries such as Turkey and Egypt, the net present value of the future incomes drops notably. Thus, this FiT rate increase covers the drop in the income’s net present value [33].
- Finally, countries with a high electricity rate can adopt the net metering approach so that GCPVSs supply some/all of the domestic load. Hence, the owner benefits from reduced electricity bills.
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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TBM72-375M [35] | Fronius Eco 25.0-3-S [36] | ||
---|---|---|---|
MPP power | 375 W | MPP voltage range | 580–850 V |
MPP voltage | 39.79 V | Maximum input voltage | 1000 V |
MPP current | 9.43 A | Maximum input current | 44.2 A |
Open-circuit voltage | 48.18 V | Maximum PV power | 37.5 kW |
Short-circuit current | 9.91 A | Number of MPP | 1 |
Temperature coefficient of voltage | 0.06%/°C | Maximum number of strings | 6 |
Temperature coefficient of current | −0.30%/°C | Maximum output power | 25 kW |
Temperature coefficient of power | −0.39%/°C |
Country | Economic Condition [37] 1 | Solar Potential (kWh/kWp) [38] | Household Electricity Rate (Cent EUR/kWh) [39] | Proposed Policy |
---|---|---|---|---|
Qatar | Stable (−2.5 to 5.0%) | 4.8–4.9 | 3.0 | Fixed FiT |
UAE | Stable (−2.1 to 4.8%) | 4.9–5.1 | 7.4 | Fixed FiT |
Saudi Arabia | Stable (2.5 to 3.4%) | 4.9–5.1 | 4.4 | Fixed FiT |
Oman | Stable (−0.6 to 2.5%) | 4.9–5.1 | 2.4 | Fixed FiT |
Bahrain | Stable (−2.3 to 3.6%) | 4.7–4.9 | 4.4 | Fixed FiT |
Iraq | Stable (0.6 to 4.0%) | 4.5–5.1 | 1.4 | Fixed FiT |
Egypt | Unstable (4.5 to 24.4%) | 5.0–5.5 | 1.6 | Dynamic FiT |
Spain | Stable (0.5 to 10.8%) | 4.1–4.6 | 22.0 | Net metering |
Turkey | Unstable (11.4 to 85.5%) | 4.0–4.7 | 4.7 | Dynamic FiT |
Australia | Stable (0.9 to 6.6%) | 4.9–5.3 | 26.0 | Net metering |
Mexico | Stable (3.4 to 7.9%) | 4.4–5.4 | 10.0 | Fixed FiT |
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Bakhshi-Jafarabadi, R.; Seyed Mousavi, S.M. Peak Load Shaving of Air Conditioning Loads via Rooftop Grid-Connected Photovoltaic Systems: A Case Study. Sustainability 2024, 16, 5640. https://doi.org/10.3390/su16135640
Bakhshi-Jafarabadi R, Seyed Mousavi SM. Peak Load Shaving of Air Conditioning Loads via Rooftop Grid-Connected Photovoltaic Systems: A Case Study. Sustainability. 2024; 16(13):5640. https://doi.org/10.3390/su16135640
Chicago/Turabian StyleBakhshi-Jafarabadi, Reza, and Seyed Mahdi Seyed Mousavi. 2024. "Peak Load Shaving of Air Conditioning Loads via Rooftop Grid-Connected Photovoltaic Systems: A Case Study" Sustainability 16, no. 13: 5640. https://doi.org/10.3390/su16135640
APA StyleBakhshi-Jafarabadi, R., & Seyed Mousavi, S. M. (2024). Peak Load Shaving of Air Conditioning Loads via Rooftop Grid-Connected Photovoltaic Systems: A Case Study. Sustainability, 16(13), 5640. https://doi.org/10.3390/su16135640