Assessment of Energy Use and Photovoltaic Energy Potential in Saudi Arabian Governmental Schools
Abstract
:1. Introduction
- The PV rooftop integrations to three school buildings in the Qassim area with actual measurements and readings.
- PV degradation and the expected increase in annual demand are considered in the current analysis.
- Two zero-energy and zero-utility techniques along the system’s life cycle are analyzed and compared.
- This analysis calculates and considers key indicators, such as EUI and CPC.
2. Literature Review
3. Methodology
3.1. Meteorological Conditions
3.2. Energy Consumption and Indicators
3.3. Technical and Economic Analysis of PV Systems
3.4. Environmental Analysis of PV Systems
4. Results and Discussions
4.1. Electricity Consumption and Indicators
4.2. End-Use Electricity Consumption
4.3. PV Systems Analysis
4.3.1. Zero-Energy Balance Scenario
4.3.2. Zero-Bill Scenario
4.3.3. Tariff Sensitivity Analysis
4.4. Environmental Benefits of PV Systems
5. Conclusions and Recommendations
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
AC | air conditioning |
CDD | cooling-degree days |
CPC | consumption per capita |
DG | diesel-generating |
EF | emissions factor |
EUI | energy use intensity |
GHG | greenhouse gas |
HDD | heating-degree days |
KSA | Kingdom of Saudi Arabia |
LCOE | levelized cost of energy |
PR | performance ratio |
PV | photovoltaic |
RE | renewable energy |
SAR | Saudi riyal |
SPBP | payback period |
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Application and Location | System, Capacity (kWP) | SPBP (Years) | LCOE ($/kWh) | References, Date |
---|---|---|---|---|
Mutla and Al-Wafra, Kuwait | Grid-connected PV systems, 100.0 | 15.00 | 0.100 | Hajiah et al. [31], 2012 |
Sohar University campus in Sohar, Oman | Grid-connected PV systems, 3.08 | - | 0.158 | Kazem and Khatib [32], 2013 |
At Sulaiman Al-Rajhi University, KSA | Grid-connected PV systems, 1200.0 and 5300.0 | 8.10–10.00 | 0.026–0.028 | Alfaoyzan and Almasri [33,37], 2023 |
Colleges in KSA | Hybrid RE system, 62.0 | 17.00 | 0.0688–0.0753 | Tazay [34], 2021 |
Jubail Industrial City, KSA | On-off-grid-connected PV/wind/DG, 685.0, 463.0, and 270.0 | - | 0.183–0.244 | Baseer et al. [35], 2019 |
Electric vehicle charging stations in Hail City, KSA | Grid-connected PV systems, 1047.35 | 11.69 | 0.022 | Al-fouzan and Almasri [38], 2024 |
Mosques in Qassim region, KSA | Grid-connected PV systems, 12.0 and 17.0 | 3.70–4.10 | - | Almasri et al. [39], 2023 |
Mosques in Hail City, KSA | Grid-connected PV systems, 18.0 and 72.0 | 5.14 | 0.024 | Al-Anazi and Almasri [36], 2023 |
School in Arar City, KSA | Grid-connected PV systems, 150.0 | 8.26 | - | Alfaraidy and Sulieman [4], 2019 |
Islamic University of Madinah, KSA | PV system, 1500.0 | 18.60 | 0.051 | AlKassem et al. [40], 2022 |
Power plant in Qassim region, KSA | Grid-connected PV systems, 1000.0 | 13.70 | 0.036 | Almarshoud [41], 2017 |
Month | School 1 (kWh/Month) | School 2 (kWh/Month) | School 3 (kWh/Month) |
---|---|---|---|
1 | 6069 | 17,046 | 9359 |
2 | 5758 | 10,289 | 7157 |
3 | 4980 | 14,281 | 2753 |
4 | 6640 | 17,813 | 2753 |
5 | 4254 | 30,252 | 23,672 |
6 | 4669 | 18,274 | 6056 |
7 | 4358 | 6450 | 6606 |
8 | 12,139 | 54,361 | 34,682 |
9 | 14,836 | 57,126 | 48,445 |
10 | 10,998 | 8446 | 7707 |
11 | 5810 | 20,577 | 3303 |
12 | 3891 | 22,343 | 12,111 |
Annual Electrical Energy Consumption (kWh) | EUI (kWh/m2) | CPC (kWh/Capita) | |
---|---|---|---|
School 1 | 84,402 | 22 | 630 |
School 2 | 277,259 | 37 | 417 |
School 3 | 164,603 | 48 | 337 |
CDD (°C-Day) | HDD | AC (%) | Light (%) | Other (%) | Reference—Date | |
---|---|---|---|---|---|---|
School buildings in Qassim, KSA | 1972 | 588 | 80 | 11 | 9 | Present case |
School buildings in Arar City, KSA | 2419 | 390 | 71 | 9 | 20 | Alfaraidy and Sulieman [4]—2019 |
Supervision Building, University of Sharjah, UAE | 2391 | 44 | 72 | 10 | 18 | Ghenai and Bettayeb [46]—2019 |
Sulaiman Al-Rajhi University in Qassim, KSA | 1972 | 588 | 79 | 7 | 14 | Alfaoyzan and Almasri [37]—2023 |
Parameter | School 1 | School 2 | School 3 | |
---|---|---|---|---|
Annual load (kWh/year) | 84,402 | 277,259 | 164,603 | |
Available roof area (m2) | 1646 | 3532 | 1391 | |
Maximum number of PV modules on the roof | 351 | 782 | 290 | |
Installed modules number | 116 | 374 | 222 | |
PV Peak power (kW) | 63.8 | 205.7 | 122.1 | |
SPBP (year) | Undiscounted | 7.69 | 7.56 | 7.56 |
Discounted | 11.75 | 11.46 | 11.46 | |
LCOE ($/kWh) | 0.0229 | 0.0252 | 0.0249 | |
Annual yield factor (kWh/kWP) | 1950 | 1994 | 1994 | |
Capacity factor (%) | 22.26 | 22.33 | 22.33 | |
Performance ratio (%) | 86.81 | 88.84 | 88.84 |
Parameter | School 1 | School 2 | School 3 | |
---|---|---|---|---|
Load (kWh/year) | 84,402 | 277,259 | 164,603 | |
Maximum number of PV modules on the roof | 351 | 782 | 290 | |
Installed modules number | 166 | 622 | 436 | |
PV Peak power (kW) | 91.3 | 342.1 | 239.8 | |
SPBP (year) | Undiscounted | 10.58 | 11.85 | 13.64 |
Discounted | 20.24 | 25.93 | 39.14 | |
LCOE ($/kWh) | 0.0223 | 0.0184 | 0.0194 |
Zero-Energy Scenario | Zero-Bill Scenario | |||||
---|---|---|---|---|---|---|
Installed Modules Number | PV-Generated Electricity (MWh) | Reduction of CO2 (Tonne) | Installed Modules Number | PV-Generated Electricity (MWh) | Reduction of CO2 (Tonne) | |
School 1 | 116 | 2855.1 | 1624.5 | 166 | 4085.7 | 2324.8 |
School 2 | 374 | 9411.5 | 5355.1 | 622 | 15,652.3 | 8906.1 |
School 3 | 222 | 5586.5 | 3178.7 | 436 | 10,971.7 | 6242.9 |
Total | 712 | 17,853.1 | 10,158.4 | 1224 | 30,709.7 | 17,473.8 |
Average per school | 238 | 5951.0 | 3386.1 | 408 | 10,236.6 | 5824.6 |
Zero-Energy Scenario | Zero-Bill Scenario | |||
---|---|---|---|---|
PV-Generated Electricity (MWh) | Reduction of CO2 (Tonne) | PV-Generated Electricity (MWh) | Reduction of CO2 (Tonne) | |
Average per school | 5951.0 | 3386.1 | 10,236.6 | 5824.6 |
Total in KSA | 143,270,325 | 81,520,358 | 246,446,145 | 140,227,245 |
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Almasri, R.A.; Eid, A.; Almarshoud, A.F.; Almotairy, F.H. Assessment of Energy Use and Photovoltaic Energy Potential in Saudi Arabian Governmental Schools. Appl. Sci. 2025, 15, 3809. https://doi.org/10.3390/app15073809
Almasri RA, Eid A, Almarshoud AF, Almotairy FH. Assessment of Energy Use and Photovoltaic Energy Potential in Saudi Arabian Governmental Schools. Applied Sciences. 2025; 15(7):3809. https://doi.org/10.3390/app15073809
Chicago/Turabian StyleAlmasri, Radwan A., Ahmad Eid, A. F. Almarshoud, and F. H. Almotairy. 2025. "Assessment of Energy Use and Photovoltaic Energy Potential in Saudi Arabian Governmental Schools" Applied Sciences 15, no. 7: 3809. https://doi.org/10.3390/app15073809
APA StyleAlmasri, R. A., Eid, A., Almarshoud, A. F., & Almotairy, F. H. (2025). Assessment of Energy Use and Photovoltaic Energy Potential in Saudi Arabian Governmental Schools. Applied Sciences, 15(7), 3809. https://doi.org/10.3390/app15073809