Modeling the Functioning of the Half-Cells Photovoltaic Module under Partial Shading in the Matlab Package
Abstract
:1. Introduction
2. Materials and Methods
2.1. Construction of Simulation Model in Matlab Package
2.2. Verification Research Methodology
3. Results
4. Discussion and Conclusions
Funding
Conflicts of Interest
References
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Name of the PV Module Parameter: | Standard Module JAM60S01-320/PR | Half-Cell Module JAM60S03-320/PR |
---|---|---|
Type of PV cells | Monocrystalline Silicon | Monocrystalline Silicon |
Number of PV cells/half-cells, (pcs.) | 60 | 120 |
Maximum Power Point—PMPP, (W) | 320 | 320 |
Open Circuit Voltage—UOC, (V) | 40.8 | 40.22 |
Voltage in MPP—UMPP, (V) | 33.48 | 33.34 |
Short Circuit Current—ISC, (A) | 10.05 | 10.16 |
Current in MPP—IMPP, (A) | 9.56 | 9.6 |
Module Efficiency—η, (%) | 19.6 | 19.2 |
Temperature Coefficient of ISC—αT, (%/°C) | +0.06 | +0,051 |
Temperature Coefficient of UOC—βT, (%/°C) | −0.30 | −0.29 |
Temperature Coefficient of PMPP—γT, (%/°C) | −0.38 | −0.36 |
Temperature in NOCT conditions, (°C) | 45 | 45 |
Dimensions of PV Module, (mm) | 1650 × 991 × 35 | 1678 × 991 × 35 |
Mass, (kg) | 18.2 | 18.5 |
Measurement Points: | PV Module Temperature TM, (°C) | Number of Shaded PV Cell Halves (pcs.) | Solar Surface Irradiance Unshaded/Shaded E, (W·m−2) |
---|---|---|---|
P1 (Figure 4) | 35.5 | 0 1 | 810/0 |
P2 (Figure 5) | 36.9 | 4 (Figure 3a) | 809/444 |
P3 (Figure 6) | 36.2 | 8 (Figure 3b) | 808/443 |
P4 (Figure 7) | 33.5 | 12 (Figure 3c) | 805/442 |
P5 (Figure 8) | 32.8 | 24 (Figure 3d) | 802/432 |
Parameters and Coefficients: | Measurement Results | Simulation Results | Relative Error of Comparison, (%) |
---|---|---|---|
ISC, (A) | 8.23 | 8.09 | 1.7 |
UOC, (V) | 37.87 | 38.28 | 1.1 |
IMPP, (A) | 7.61 | 7.58 | 0.4 |
UMPP, (V) | 31.58 | 32.98 | 4.4 |
PMPP, (W) | 240 | 250 | 4 |
FF, (%) | 77.1 | 80.7 | 4.7 |
η, (%) | 17.8 | 18.6 | 4 |
Parameters: | Model Calculations Results | Measurement Results | Relative Error of Comparison, (%) |
---|---|---|---|
ISC, (A) | 10.21 | 8.23 | 19% |
UOC, (V) | 39 | 37.87 | 3% |
PMPP, (W) | 307.9 | 240 | 22% |
PV Module Type/Number of Shaded PV Cells | Relative Decrease in Current—δΔI, (%) | Relative Decrease in Voltage—δΔU, (%) |
---|---|---|
MonoSol 260 EX/2 | 59 | 39 |
JAM60S03-320/PR/4 (Figure 5) | 24 | 42 |
MonoSol 260 EX/4 | 61 | 71 |
JAM60S03-320/PR/8 (Figure 6) | 22 | 70 |
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Sarniak, M.T. Modeling the Functioning of the Half-Cells Photovoltaic Module under Partial Shading in the Matlab Package. Appl. Sci. 2020, 10, 2575. https://doi.org/10.3390/app10072575
Sarniak MT. Modeling the Functioning of the Half-Cells Photovoltaic Module under Partial Shading in the Matlab Package. Applied Sciences. 2020; 10(7):2575. https://doi.org/10.3390/app10072575
Chicago/Turabian StyleSarniak, Mariusz T. 2020. "Modeling the Functioning of the Half-Cells Photovoltaic Module under Partial Shading in the Matlab Package" Applied Sciences 10, no. 7: 2575. https://doi.org/10.3390/app10072575
APA StyleSarniak, M. T. (2020). Modeling the Functioning of the Half-Cells Photovoltaic Module under Partial Shading in the Matlab Package. Applied Sciences, 10(7), 2575. https://doi.org/10.3390/app10072575