Analytical Modeling of Solar Radiation Distribution on Vertical PV Facades in Urban Settings
Abstract
1. Introduction
2. Methods and Materials
2.1. Incident Direct-Beam Radiation
2.1.1. Left Wall
2.1.2. Right Wall
2.2. Incident Diffuse Radiation
2.3. Local Sky-View Factor
3. Results
3.1. Distance Between Walls, (Front Wall Lower than Rear Wall),
3.2. Distance Between Building Walls, (Front Building Higher than Rear Building),
3.3. Building Walls Oriented with Azimuth Angle
3.4. Local Sky-View Factor Results
3.5. Incident Solar Energy on Building Walls at a Different Location and Using a Different Source of Solar Radiation Data
3.6. Anisotropic Diffuse Radiation
3.7. Incident Solar Energy on Building Walls in High-Mid Latitude, Lindenberg, Germany, Latitude , Longitude , TMY, Hourly Samples (Monitoring Station, BSRN—https://dataportals.pangaea.de/bsrn/?q=LR1300, Accessed on 29 April 2026)
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
| Direct-beam irradiance—W/m2 | |
| Incident direct-beam radiation—W/m2 | |
| Diffusion radiation on a horizontal plane—W/m2 | |
| Monthly incident energy density—kWh/m2 | |
| Front-building wall height—m | |
| Rear-building wall height—m | |
| Shade height on rear wall—m | |
| Wall length—m | |
| Shade length on rear wall—m | |
| Number of days in month i | |
| Time collector rise | |
| Time collector set | |
| Time interval | |
| Wall shade area—m2 | |
| Sky-view factor of front wall | |
| Sky-view factor of rear wall | |
| Solar altitude angle—deg. | |
| Collector tilt angle—deg. | |
| Sun declination angle—deg. | |
| Collector latitude, deg. | |
| Collector azimuth angle —deg. ( walls facing due south), | |
| Solar azimuth angle-deg. (noon), forenoon afternoon | |
| Angle between solar rays and the normal to wall surface—deg. | |
| Solar zenith angle—deg. | |
| Sunrise hour angles—deg. | |
| Sunset hour angle—deg. | |
| Wall rise hour angle—deg. | |
| Wall set hour angle—deg. |
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| Annual Incident Energies | Beam [kWh/m2/Year] | Diffuse [kWh/m2/Year] | Global [kWh/m2/Year] |
|---|---|---|---|
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 25 m | 673 | 240 | 913 |
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 15 m | 666 | 207 | 873 |
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 10 m | 602 | 174 | 776 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 25 m | 673 | 297 | 970 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 15 m | 673 | 297 | 970 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 10 m | 673 | 297 | 970 |
| Annual Incident Energies | Beam [kWh/m2/Year] | Diffuse [kWh/m2/Year] | Global [kWh/m2/Year] |
|---|---|---|---|
| Rear building, H1 = 15 m, H2 = 10 m, D = 25 m | 680 | 189 | 868 |
| Rear building, H1 = 20 m, H2 = 10 m, D = 25 m | 651 | 147 | 798 |
| Front building, H1 = 15 m, H2 = 10 m, D = 25 m | 680 | 298 | 978 |
| Front building, H1 = 20 m, H2 = 10 m, D = 25 m | 680 | 298 | 978 |
| Annual Incident Energies | Beam [kWh/m2/Year] | Diffuse [kWh/m2/Year] | Global [kWh/m2/Year] |
|---|---|---|---|
| Rear building, H1 = 10 m, H2 = 15 m, D = 25 m | 706 | 240 | 946 |
| Rear building, H1 = 10 m, H2 = 15 m, D = 15 m | 665 | 207 | 872 |
| Rear building, H1 = 10 m, H2 = 15 m, D = 10 m | 595 | 174 | 769 |
| Front building, H1 = 10 m, H2 = 15 m, D = 25 m | 721 | 297 | 1018 |
| Front building, H1 = 10 m, H2 = 15 m, D = 15 m | 721 | 297 | 1018 |
| Front building, H1 = 10 m, H2 = 15 m, D = 10 m | 721 | 297 | 1018 |
| Month | Segment 1 [kWh/m2/ Month] | Segment 2 [kWh/m2/ Month] | Segment 3 [kWh/m2/ Month] | Segment 4 [kWh/m2/ Month] | Segment 5 [kWh/m2/ Month] | Segment 6 [kWh/m2/ Month] | Segment 7 [kWh/m2/ Month] | Segment 8 [kWh/m2/ Month] |
|---|---|---|---|---|---|---|---|---|
| 1 | 16.62 | 46.51 | 72.90 | 77.45 | 78.15 | 78.48 | 78.48 | 78.48 |
| 2 | 50.63 | 69.30 | 72.32 | 72.74 | 72.90 | 72.90 | 72.90 | 72.90 |
| 3 | 61.80 | 61.85 | 61.85 | 61.85 | 61.85 | 61.85 | 61.85 | 61.85 |
| 4 | 43.00 | 43.00 | 43.00 | 43.00 | 43.00 | 43.00 | 43.00 | 43.00 |
| 5 | 23.23 | 23.23 | 23.23 | 23.23 | 23.23 | 23.23 | 23.23 | 23.23 |
| 6 | 14.31 | 14.31 | 14.31 | 14.31 | 14.31 | 14.31 | 14.31 | 14.31 |
| 7 | 20.03 | 20.03 | 20.03 | 20.03 | 20.03 | 20.03 | 20.03 | 20.03 |
| 8 | 38.73 | 38.73 | 38.73 | 38.73 | 38.73 | 38.73 | 38.73 | 38.73 |
| 9 | 67.36 | 67.36 | 67.36 | 67.36 | 67.36 | 67.36 | 67.36 | 67.36 |
| 10 | 74.13 | 82.69 | 83.94 | 84.11 | 84.11 | 84.11 | 84.11 | 84.11 |
| 11 | 24.65 | 64.81 | 83.64 | 86.78 | 87.34 | 87.46 | 87.51 | 87.51 |
| 12 | 15.15 | 32.30 | 73.56 | 79.48 | 81.14 | 81.46 | 81.53 | 81.53 |
| Total | 449.65 | 564.13 | 654.87 | 669.08 | 672.16 | 672.93 | 673.05 | 673.05 |
| Annual Incident Energies | Beam [kWh/m2/Year] | Diffuse [kWh/m2/Year] | Global [kWh/m2/Year] |
|---|---|---|---|
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 25 m | 724 | 181 | 905 |
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 15 m | 670 | 147 | 816 |
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 10 m | 575 | 117 | 692 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 25 m | 724 | 251 | 975 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 15 m | 724 | 251 | 975 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 10 m | 724 | 251 | 975 |
| Annual Incident Energies | Beam [kWh/m2/Year] | Diffuse [kWh/m2/Year] | Global [kWh/m2/Year] |
|---|---|---|---|
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 25 m | 702 | 188 | 891 |
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 15 m | 644 | 153 | 796 |
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 10 m | 549 | 121 | 670 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 25 m | 703 | 261 | 964 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 15 m | 703 | 261 | 964 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 10 m | 703 | 261 | 964 |
| Annual Incident Energies | Beam [kWh/m2/Year] | Diffuse Isotropic [kWh/m2/Year] | Diffuse Anisotropic [kWh/m2/Year] | Global Isotropic [kWh/m2/Year] | Global Anisotropic [kWh/m2/Year] |
|---|---|---|---|---|---|
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 25 m | 673 | 240 | 274 | 913 | 947 |
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 15 m | 666 | 207 | 229 | 873 | 895 |
| Rear collectors, H1 = 10 m, H2 = 15 m, D = 10 m | 602 | 174 | 180 | 776 | 782 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 25 m | 673 | 297 | 340 | 970 | 1013 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 15 m | 673 | 297 | 329 | 970 | 1002 |
| Front collectors, H1 = 10 m, H2 = 15 m, D = 10 m | 673 | 297 | 307 | 970 | 980 |
| Annual Incident Energies | Beam [kWh/m2/Year] | Diffuse [kWh/m2/Year] | Global [kWh/m2/Year] |
|---|---|---|---|
| Rear building (H1 = 10 m, H2 = 15 m, D = 25 m) | 313 | 230 | 543 |
| Rear building (H1 = 10 m, H2 = 15 m, D = 15 m) | 313 | 198 | 511 |
| Rear building (H1 = 10 m, H2 = 15 m, D = 10 m) | 298 | 167 | 465 |
| Front building (H1 = 10 m, H2 = 15 m, D = 25 m) | 313 | 284 | 597 |
| Front building (H1 = 10 m, H2 = 15 m, D = 15 m) | 313 | 284 | 597 |
| Front building (H1 = 10 m, H2 = 15 m, D = 10 m) | 313 | 284 | 597 |
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Share and Cite
Appelbaum, J.; Peled, A. Analytical Modeling of Solar Radiation Distribution on Vertical PV Facades in Urban Settings. Urban Sci. 2026, 10, 258. https://doi.org/10.3390/urbansci10050258
Appelbaum J, Peled A. Analytical Modeling of Solar Radiation Distribution on Vertical PV Facades in Urban Settings. Urban Science. 2026; 10(5):258. https://doi.org/10.3390/urbansci10050258
Chicago/Turabian StyleAppelbaum, Joseph, and Assaf Peled. 2026. "Analytical Modeling of Solar Radiation Distribution on Vertical PV Facades in Urban Settings" Urban Science 10, no. 5: 258. https://doi.org/10.3390/urbansci10050258
APA StyleAppelbaum, J., & Peled, A. (2026). Analytical Modeling of Solar Radiation Distribution on Vertical PV Facades in Urban Settings. Urban Science, 10(5), 258. https://doi.org/10.3390/urbansci10050258

