Design and Sizing of Mobile Solar Photovoltaic Power Plant to Support Rapid Charging for Electric Vehicles
Abstract
:1. Introduction
2. Literature Review
3. Methodology
3.1. PVsyst for Sizing
3.2. Modelling of the Proposed System
3.2.1. PV Array Output
3.2.2. Battery Modelling
3.2.3. Electric Vehicle Demand
3.3. Proposed Algorithm
4. Results and Discussion
5. Economics and Carbon Balance
6. Summary
7. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Parameters | Value |
---|---|
PV Peak power | 20 kWp |
Approximate units generated | 60–66 kWh |
Battery capacity | 279 Ah |
Time need to charge the full battery | 2 days |
Proposed DC charger | Direct coupler |
Horizontal Global Irradiation | Global Effective Corrected for IAM and Shadings | Available Solar Energy | The Energy Supplied to the User | Ambient Temperature | Effective Energy at the Output of the Array | Probability of “Loss-of-Load” | Duration of “Loss-of-Load” (User Not Supplied) | |
---|---|---|---|---|---|---|---|---|
Month | kWh/m2 | kWh/m2 | kWh | kWh | °C | kWh | % | Hour |
Jan | 129.4 | 126.7 | 1976 | 1822 | 27.25 | 1990 | 2.85 | 21 |
Feb | 131.3 | 128.6 | 2006 | 1595 | 27.73 | 1784 | 6.47 | 44 |
Mar | 150.3 | 145.9 | 2265 | 1844 | 28.07 | 2085 | 2.58 | 19 |
Apr | 140.2 | 134.6 | 2104 | 1756 | 27.57 | 1926 | 2.75 | 20 |
May | 142.5 | 135.6 | 2108 | 1811 | 28.58 | 2045 | 2.90 | 22 |
Jun | 131 | 124.3 | 1937 | 1755 | 27.81 | 1979 | 5.40 | 39 |
Jul | 133.3 | 127.1 | 1983 | 1665 | 27.83 | 1857 | 16.64 | 124 |
Aug | 133.8 | 128 | 1997 | 1766 | 27.79 | 1963 | 8.33 | 62 |
Sep | 131.2 | 126.6 | 1975 | 1735 | 27.2 | 1926 | 8.13 | 59 |
Oct | 135.5 | 131.9 | 2054 | 1861 | 27.48 | 2014 | 0.00 | 0 |
Nov | 119.9 | 117.4 | 1838 | 1664 | 26.69 | 1926 | 11.35 | 82 |
Dec | 118.9 | 116.6 | 1825 | 1669 | 27.17 | 1799 | 15.19 | 113 |
PV Loss due to Irradiance Level | PV Loss due to Temperature | Module Array Mismatch Loss | Ohmic Wiring Loss | Unused Energy Loss (Full Battery) | |
---|---|---|---|---|---|
Month | kWh | kWh | kWh | kWh | kWh |
January | 36.88 | 169.7 | 21.92 | 40.34 | 129.9 |
February | 30.99 | 192.5 | 22.09 | 43.49 | 357.7 |
March | 34.1 | 224.6 | 25 | 49.61 | 333.2 |
April | 34.81 | 191 | 23.2 | 44.23 | 329.3 |
May | 37.43 | 196.4 | 23.33 | 43.59 | 217.6 |
June | 37.05 | 165.8 | 21.49 | 38.95 | 107 |
July | 37.38 | 177.9 | 21.88 | 40.94 | 265 |
August | 37.71 | 172.4 | 22.11 | 40.52 | 187.4 |
September | 35.65 | 174.5 | 21.85 | 41.16 | 176.7 |
October | 35.94 | 184.6 | 22.74 | 43.06 | 178.4 |
November | 35.69 | 143.7 | 20.41 | 36.46 | 62.4 |
December | 37.35 | 149.9 | 20.2 | 36.28 | 158.7 |
Average Battery Voltage | SOC at the End of Time Interval | Battery Current/Discharge Efficiency | Battery Energy Charge/Discharge Efficiency | The Current Required to Charge Battery | Battery Discharging Current | |
---|---|---|---|---|---|---|
Month | V | % | % | % | Ah | Ah |
January | 419.7 | 31.3 | 96.1 | 95.5 | 1460.4 | 1421.8 |
February | 428.5 | 35.1 | 91 | 89.5 | 1420 | 1293.2 |
March | 426.4 | 60.4 | 91.4 | 85.9 | 1559.7 | 1361.8 |
April | 431.4 | 37.6 | 90.7 | 94.4 | 1413.7 | 1362.1 |
May | 423.1 | 57.9 | 91.3 | 86.9 | 1605.2 | 1417.6 |
June | 429.2 | 78.7 | 91.1 | 86 | 1416.3 | 1240.6 |
July | 422.3 | 77.1 | 90.8 | 90.4 | 1534.1 | 1411.4 |
August | 419.9 | 76.1 | 91.5 | 90.9 | 1528.8 | 1414.8 |
September | 424.8 | 70.4 | 90.9 | 91.3 | 1505.9 | 1398.8 |
October | 426.2 | 25.4 | 90.5 | 98.1 | 1501.3 | 1503.4 |
November | 414.4 | 78.0 | 91.6 | 80.8 | 1573 | 1294.2 |
December | 421.5 | 32.8 | 90.6 | 99.2 | 1386.3 | 1401.4 |
Equipment | Units | Cost in MYR |
---|---|---|
PV modules | 52 of 360 Wp | 18,950 |
Supports/Integration (Structure and trailer) | As required and one trailer | 6000 |
Batteries | 8 of 50 V/260 Ah | 214,900 |
Charge Controller | 1 | 5000 |
Gross investment (excluding Taxes) | - | 244,850 |
Assuming 6% tax | - | 14,931 |
Gross investment | - | 263,781 |
Annuities (loan 5% over 25 years) | Per year | 18,716 |
Battery replacement | 5 years of lifetime | 3000 |
Total yearly cost | Per year | 21,716 |
Used energy cost | Per kWh | 1.04 |
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Satya Prakash Oruganti, K.; Aravind Vaithilingam, C.; Rajendran, G.; A, R. Design and Sizing of Mobile Solar Photovoltaic Power Plant to Support Rapid Charging for Electric Vehicles. Energies 2019, 12, 3579. https://doi.org/10.3390/en12183579
Satya Prakash Oruganti K, Aravind Vaithilingam C, Rajendran G, A R. Design and Sizing of Mobile Solar Photovoltaic Power Plant to Support Rapid Charging for Electric Vehicles. Energies. 2019; 12(18):3579. https://doi.org/10.3390/en12183579
Chicago/Turabian StyleSatya Prakash Oruganti, Kameswara, Chockalingam Aravind Vaithilingam, Gowthamraj Rajendran, and Ramasamy A. 2019. "Design and Sizing of Mobile Solar Photovoltaic Power Plant to Support Rapid Charging for Electric Vehicles" Energies 12, no. 18: 3579. https://doi.org/10.3390/en12183579
APA StyleSatya Prakash Oruganti, K., Aravind Vaithilingam, C., Rajendran, G., & A, R. (2019). Design and Sizing of Mobile Solar Photovoltaic Power Plant to Support Rapid Charging for Electric Vehicles. Energies, 12(18), 3579. https://doi.org/10.3390/en12183579