Study of Grid-Connected PV System for a Low Voltage Distribution System: A Case Study of Cambodia
Abstract
:1. Introduction
2. Materials and Methods
2.1. Developed Algorithms
2.1.1. Shortest Path
2.1.2. Repeated Phase ABC
2.1.3. First Fit Bin Packing
2.1.4. Mixed-Integer Quadratic Programming
- Arborescence
- Phase connection of load
2.2. Economic Analysis by HOMER Pro
2.3. A Case Study
2.3.1. Studied Site and Normalized Curve
2.3.2. Solar Radiation
2.3.3. Electricity Tariff in Cambodia
2.4. Grid-Connected PV System
2.4.1. Simulation Model
2.4.2. System Components and Parameter
3. Simulation Results and Discussion
3.1. Optimal Distribution System
3.1.1. Radial Distribution System Topology
3.1.2. Voltage Profiles and MV/LV Distribution Transformer
3.1.3. Performance of Three Proposed Algorithms
3.1.4. Economic Evaluation with Different Electricity Tariffs
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Items | Tariff Option | ||
---|---|---|---|
Option 1 | Option 2 | Option 3 | |
Description | General tariff | Time of use | PV consumer |
Capacity charge | - | 5.80 USD/kW/Month | 5.80 USD/kW/Month |
Energy charge (7 a.m. to 9 p.m.) | - | 0.1640 USD/kWh | - |
Energy charge (9 p.m. to 7 a.m.) | - | 0.13696 | - |
Tariff | 0.17232 USD/kWh | - | 0.1640 USD/kWh |
Items | Description | ||
---|---|---|---|
PV System | Inverter | Grid | |
Capacity (kW) | 1 | 1 | - |
Capital cost (USD) | 600 | 300 | - |
Replacement cost (USD) | 600 | 300 | - |
O&M cost (USD/year) | 10 | 10 | - |
Lifetime (year) | 30 | 15 | - |
Degrading factor (%) | 80 | - | - |
Efficiency (%) | - | 95 | - |
Contract capacity (kVA) | - | - | 50 |
Algorithms | Total Active Power P(kW) | ||
---|---|---|---|
A-Phase | B-Phase | C-Phase | |
1st Algorithm | 14.048 | 10.035 | 18.917 |
2nd Algorithm | 13.975 | 14.294 | 14.731 |
3rd Algorithm | 13.923 | 15.127 | 13.950 |
Items | Algorithms | ||
---|---|---|---|
1st Algorithm | 2nd Algorithm | 3rd Algorithm | |
Annual energy used (MWh) | 198.57 | 197.02 | 196.94 |
MV/LV Required (kW) | 46.60 | 45.92 | 45.89 |
Maximal power loss (kW) | 3.60 | 2.92 | 2.89 |
Maximal current (A) | 91.87 | 70.16 | 71.78 |
Minimal voltage (pu) | 0.9216 | 0.9395 | 0.9394 |
OPEX per year (KUSD) | 36.239 | 35.956 | 35.940 |
Indicators | Description | ||
---|---|---|---|
Option 1 | Option 2 | Option 3 | |
PV (kW) | - | - | 22.5 |
Inverter (kW) | - | - | 15.8 |
NPC (kUSD) | 360.359 | 353.137 | 345.813 |
LCOE (USD/kWh) | 0.1723 | 0.1689 | 0.1654 |
Operating cost (kUSD/year) | 33.938 | 33.258 | 30.850 |
Initial capital cost (kUSD) | - | - | 18.24 |
Renewable energy fraction (%) | - | - | 15.8 |
CO2 Emissions (Mg/year) | 124.47 | 124.47 | 104.86 |
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Vai, V.; Eng, S. Study of Grid-Connected PV System for a Low Voltage Distribution System: A Case Study of Cambodia. Energies 2022, 15, 5003. https://doi.org/10.3390/en15145003
Vai V, Eng S. Study of Grid-Connected PV System for a Low Voltage Distribution System: A Case Study of Cambodia. Energies. 2022; 15(14):5003. https://doi.org/10.3390/en15145003
Chicago/Turabian StyleVai, Vannak, and Samphors Eng. 2022. "Study of Grid-Connected PV System for a Low Voltage Distribution System: A Case Study of Cambodia" Energies 15, no. 14: 5003. https://doi.org/10.3390/en15145003
APA StyleVai, V., & Eng, S. (2022). Study of Grid-Connected PV System for a Low Voltage Distribution System: A Case Study of Cambodia. Energies, 15(14), 5003. https://doi.org/10.3390/en15145003