Review on Optimization Techniques of PV/Inverter Ratio for Grid-Tie PV Systems
Abstract
:1. Introduction
2. Literature Review
2.1. Derating Factor of PV Technology
2.2. PV Array to Inverter Sizing Strategies
- Manufacturers’ recommendations based on PV guidelines.
- DC/AC sizing ratio according to third-party publications.
2.2.1. Manufacturers’ Recommendations Based on PV Guidelines
2.2.2. DC/AC Sizing Ratio According to Third-Party Publications
2.2.3. A Climate Classification
2.3. Analytical Methods Affect the Inverter in the PV Inverter
3. Recommended Deep Learning for Inverter Sizing
3.1. System Cost Consideration
3.2. Recommended Approach
3.3. Results
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Ref. | Range of Discussion on DC/AC Sizing and Cost | Literature Focus | Related Analysis and Results | Inverter Undersizing | Proposing System | Date Publish |
---|---|---|---|---|---|---|
[32] | Extensive | sizing optimization issues, hybrid PV/wind/diesel generator systems, hybrid PV/wind systems, hybrid PV/diesel generator, and standalone PV systems | No | Limited | No | 2013 |
[33] | Limited | Power and Energy Losses in PV Plants in Future Ancillary Services Markets | Limited | No | No | 2020 |
[34] | Limited | Optimization goals, utilized optimization methods, grid type as well as the investigated technology | Yes, statistical results | No | No | 2018 |
[35] | Limited to PV system installed | Environmental, PV system, installation, cost factors as well as other miscellaneous factors | Limited | No | No | 2017 |
This work | Extensive | DC/AC ratio optimization techniques | Yes, main results | yes | Yes | 2023 |
Ref. | PV/Inverter Ratio | Company/Country | Recommendations |
---|---|---|---|
[56] | 0.88–1.1 | KACO New Energy | Power Ratio = PVGEN/PAC,INV |
[57] | 0.7–1.0 | Power-One Inc. | PV Power @ STC/AC Power Nom. Max. of Inverter |
[58] | 1.0 | Leonic Co., Ltd. | N/A |
[54] | 0.8–1.2 | Danfoss Solar Inverters | Si PV = 0.94; Thin-Film = 0.94–0.90 and Thin–Film = 1.0 if Free-standing |
[59] | 0.75–0.85 | AE PV-powered Inc | N/A |
[60] | 0.8–1.2 | SMA Solar AG | PV/inverter power ratio (Vp) = input power inverter/peak power PV (0.9–1.0); Accepted Vp = 0.8–1.2 = (under extreme climate) |
[61] | 0.8–1.1 | Energy, Staffelstein & Engineering | DF (Dimensioning factor) = Psolar/PWR,ACmax < 0.8:for DF = 0.8–1.15 = inverter too high; recommended for 35° inclination and south orientation; DF = (1.2–1.3): recommended facades (90° inclination), west or facing east; DF over 1.3: inverter too small; DF = (1.15 to 1.2): recommended to orient well to a very flat module under 15° inclinations or/and south (SW, SE). |
[62] | 1.3–0.8 | Solar Photovoltaic Power: Designing Grid-Connected Systems, Malaysia | For Si PV = 0.80–0.75; for Thin–Film = 1.30–1.00 |
[63] | 0.7–1.5 | UD, Delaware, US, Syllabus Book | Cost-effective and limited choice of inverter sizes to choose SF, even if overloaded occasionally. |
[64] | 0.7–1.0 | Europe | Southern Europe (35–45° N) = 1.0–0.85; Central Europe (45–55° N) = 0.9–0.75; Northern Europe (55–70° N) = 0.8–0.7; |
[65] | 0.8–1.2 | India | N/A |
[66] | 0.7–0.65 | United States | N/A |
[45] | 1–0.8 | United Kingdom | PV array-to-inverter ratio must be sized between 1:0.8 to 1:1 |
[67] | 0.75 | Guideline/Standard Australia | The nominal AC output power of the inverter cannot be under 75% of the peak power of the PV array. |
Climate Classification | Country/Territory with the Weather |
---|---|
Dfb | Humid continental climate, warm summer; at least four months averaging above 10 °C, all months with average temperatures below 22 °C, and coldest month averaging below 0 °C (or −3 °C). |
Csb | Mediterranean climate, warm summer; the driest month of summer receives less than 40 mm, at least three times as much precipitation in the wettest month of winter as in the driest month of summer, all months with average temperatures below 22 °C, at least four months averaging above 10 °C, and coldest month averaging above 0 °C (or −3 °C). |
Csa | Mediterranean climate, hot summer; the driest month of summer receives less than 40 mm, at least three times as much precipitation in the wettest month of winter as in the driest month of summer, at least four months averaging above 10 °C, at least one month’s average temperature above 22 °C, and coldest month averaging above 0 °C (or −3 °C). |
Cfb | Subtropical highland climate or temperate oceanic climate; at least four months averaging above 10 °C, all months with average temperatures below 22 °C, and coldest month averaging above 0 °C (or −3 °C). |
Cfa | No dry months in the summer. No significant precipitation difference between seasons. Humid subtropical climate; at least four months averaging above 10 °C (50 °F), at least one month’s average temperature above 22 °C (71.6 °F),and coldest month averaging above 0 °C (32 °F) (or −3 °C (27 °F)). |
BSk | Cold semi-arid climate |
BWh | The hot desert climate, and no month with an average temperature greater than 10 °C. |
Cwa | Monsoon-influenced humid subtropical climate; at least ten times as much rain in the wettest month of summer as in the driest month of winter, at least four months averaging above 10 °C, at least one month’s average temperature above 22 °C, and coldest month averaging above 0 °C (or −3 °C). |
Af | The average precipitation of at least 60 mm every month (tropical rainforest climate) |
Aw | The driest month has a precipitation of less than 60 mm (tropical savanna or dry and wet climate). |
Optimal Power Ratio | Method/Relation | Recommendation | Climate Classification | Country/Group | Ref. |
---|---|---|---|---|---|
1.50–1.00 | SI; r = 1.5 medium efficiency inverter, r = 1.2 high-efficiency inverter. HSI; r = 1.10 medium and low-efficiency inverter, r = 1.00 high and medium efficiency inverter. | Dfb | Finland | [73,74] | |
0.71 | 0.71 | Csb | Eugene, OR, USA | [14] | |
0.71 | 0.71 | Csa | Sacramento, CA, USA | [14] | |
1.291–1.204 | β = 60° (1.204), β = 45° (1.291) | Csa | Batna, Algeria | [75,76] | |
1.220–1.153 | β = 60° (1.153), β = 45° (1.220) | Csa | Algiers, Algeria | [77] | |
0.67 | NA | 0.67 | Csa | Portugal | [78,79] |
1.00–0.80 | 0.85 | Cfb | Bogota, Colombia | [80] | |
0.65 | NA | 0.65 | Cfb | The Netherlands | [81] |
1.20–0.75 | v = 0.90 (Germany) | Cfb | Germany | [82] | |
0.95–0.85 | NA | Cfb | Freiburg, Germany | [83] | |
1.30–1.15 | 1.15 | Cfb | Nottingham, UK | [15] | |
0.90–0.70 | TF = 1.3, Overcast sky = 0.9–0.7 | Cfb | Northern Ireland, UK | [84] | |
1.10–1.50 | Low Eff. Inv; LSI = 1.4–1.5; HIS = 1.2–1.3, High Eff. Inv; LSI = 1.3–1.4; HIS = 1.1–1.2, | Cfb | Loughborough, UK | [7] | |
1.25 | 1.10–1.40 | Cfb | Oak ridge, TN, USA | [85] | |
1.25 | 1.10–1.40 | Cfb | Northern Ireland, UK | [7] | |
1.25 | TF = 1.10–1.15 | Cfb | Loughborough, UK | [86] | |
NA | 0.69 | Cfa | Oak ridge, TN, USA | [14] | |
1.30–1.20 | Si PV = 1.30–1.20; Thin-Film < 1.00 | Cfa | UFSC, Florianópolis, South Brazil | [15] | |
0.83–0.78 | Thin-Film Fall = 0.82; Thin-Film Summer = 0.83; Thin-Film Spring = 0.82; Thin-Film Winter = 0.78; | BSk | Golden, Colorado | [87] | |
1.00–0.60 | 1.22 | BSk | San Diego, California | [18,27] | |
NA | 0.74 | BSk | Prewitt, NM, USA | [14] | |
0.85–0.65 | Sfmin = 0.65; Sfmax = 0.85 for Gulf Council Countries | BWh | Kuwait | [88] | |
NA | 0.67 | BWh | Phoenix, AZ, USA | [14] | |
NA | 1.00 | BWh | Las Vegas, NV, USA | [14] | |
1.02–0.55 | NA | Cwa | Sao Paulo, Brazil | [89] | |
1.321–1.210 | β = 45° (1.321), β = 60° (1.210) | BWh | Adrar, Algeria | [3] | |
0.85–1.07 | Valid on all PV technologies | Af | Malaysia | # | |
NA | 0.761 (Lanai)/0.741 (Oahu) | Aw | Lanai/Oahu, Hawaii, USA | [14] | |
1.43–1.21 | Valid on all PV technologies | Af | Kuala Lumpur, Kuching and Alor Setar, Johor Bharu, Ipoh, Malaysia | [90] | |
1.03–0.93 | Integrated (0.93), Flat surface (1.03) | Csa | Cadiz, Spain | [80] |
Description | Dimensions |
---|---|
Minimum Batch Size | 128 |
Initial Learning Rate | 0.0003 |
Maximum Epochs | 15 |
layers convolution 2d Layer 3 | 3 |
batch Normalization Layer | 1 |
relu Layer | 1 |
Maximum Pooling 2d Layer 3, Stride = 2 | 3, 2 |
convolution 2d Layer 3, 2 × Number of filters | 3, 2 × 12 |
batch Normalization Layer | 1 |
relu Layer | 1 |
maximum Pooling 2d Layer 3, Stride = 2 | 3, 2 |
convolution 2d Layer 3, 4 × Number of filters | 3, 4 × 12 |
batch Normalization Layer | 1 |
relu Layer | 1 |
Maximum Pooling 2d Layer 3, Stride = 2 | 3, 2 |
convolution 2d Layer 3, 4 × Number of filters | 3, 4 × 12 |
batch Normalization Layer | 1 |
relu Layer | 1 |
convolution 2d Layer 3, 4 × Number of filters | 3, 4 × 12 |
batch Normalization Layer | 1 |
relu Layer | 1 |
Maximum Pooling 2d Layer (time Pool Size 1) | 1 |
dropout Layer | 1 |
fully Connected Layer (12 = numClasses) | 12 |
Soft-max Layer | 1 |
classification Layer | 1 |
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Hazim, H.I.; Baharin, K.A.; Gan, C.K.; Sabry, A.H.; Humaidi, A.J. Review on Optimization Techniques of PV/Inverter Ratio for Grid-Tie PV Systems. Appl. Sci. 2023, 13, 3155. https://doi.org/10.3390/app13053155
Hazim HI, Baharin KA, Gan CK, Sabry AH, Humaidi AJ. Review on Optimization Techniques of PV/Inverter Ratio for Grid-Tie PV Systems. Applied Sciences. 2023; 13(5):3155. https://doi.org/10.3390/app13053155
Chicago/Turabian StyleHazim, Hazim Imad, Kyairul Azmi Baharin, Chin Kim Gan, Ahmad H. Sabry, and Amjad J. Humaidi. 2023. "Review on Optimization Techniques of PV/Inverter Ratio for Grid-Tie PV Systems" Applied Sciences 13, no. 5: 3155. https://doi.org/10.3390/app13053155
APA StyleHazim, H. I., Baharin, K. A., Gan, C. K., Sabry, A. H., & Humaidi, A. J. (2023). Review on Optimization Techniques of PV/Inverter Ratio for Grid-Tie PV Systems. Applied Sciences, 13(5), 3155. https://doi.org/10.3390/app13053155