Enhancing Classroom Lighting Quality in Tehran Through the Integration of a Dynamic Light Shelf and Solar Panels
Abstract
1. Introduction
- Photovoltaic panels should not be mounted directly on the light shelf but should instead be installed at their optimal tilt angles.
- Integration of solar panels with light shelves is more appropriate during the winter season.
Theoretical Foundations and Research Objectives
- How can photovoltaic panels be employed to simultaneously prevent glare during winter and generate electricity at their maximum potential?
- What is the most suitable combination of geometry, depth, and surface reflectance for the light shelf to achieve its highest performance across different seasons?
2. Materials and Methods
2.1. Research Process
- Integration with solar panels:
- 2.
- Finding a suitable combination of geometry, depth, and reflectance for each season:
2.2. Research Context
2.3. Validation
3. Results
- Assessment of the existing classroom conditions;
- The appropriate integration of photovoltaic panels with the light shelf;
- The proposed suitable geometry, depth and reflectance of the light shelf in each season.
3.1. Assessment of Current Conditions
3.2. The Appropriate Integration of Photovoltaic Panels with the Light Shelf
- Single solar panel with a depth of 60 cm.
- Two solar panels, each with a depth of 30 cm.
- Three solar panels, each with a depth of 20 cm.
- Four solar panels, each with a depth of 15 cm.
3.3. Proposed Suitable Geometry, Depth and Reflectance of Light Shelf in Each Season
4. Discussion
4.1. Integrating Photovoltaic Panels with Light Shelf as Shading System During Winter
4.2. Proposed Suitable Geometry, Depth, and Reflectance of Light Shelf in Each Season
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Testing Method | Space Utilization | Type of Light Shelf (Static/ Dynamic) | Orientation | Field of Investigation (Daylight Quality–Energy Consumption–Thermal Comfort) | Approaches | |
---|---|---|---|---|---|---|
[8] | IESVE | Office | Static | South–North–East–West | Daylight | Integration with horizontal light tubes |
[9] | DIVA | - | Static | South | Daylight | Use of various ceiling forms |
[10] | DIVA | Educational | Static | South–North–East–West | Daylight | Evaluating the impact of light shelf geometry on daylight quality and visual comfort |
[11] | DIVA | Healthcare | Static | East–West | Daylight | Optimizing light shelf proportions for improved daylight quality |
[12] | DIVA | Educational | Static | South | Daylight | Investigating the effect of light shelves on space lighting quality |
[13] | Honeybee and Ladybug | Office | Static | South | Daylight, Energy Consumption | Sensitivity analysis and optimization to determine suitable light shelf parameters |
[14] | Field Measurement | Educational | Static | South | Daylight | Proposing translucent and curved internal light shelves |
[15] | Honeybee and Ladybug/ Open Studio | Educational | Static | South–North | Daylight, Thermal Comfort | Optimizing light shelf proportions for improved daylight and thermal comfort |
[16] | Honeybee | Residential | Static | Northwest–Northeast–Southeast–Southwest | Daylight, Thermal Comfort | Use of a series of light shelves |
[17] | Honeybee and Ladybug–Field Measurement | Office | Static | South | Daylight | Optimizing light shelf proportions to improve daylight quality |
[18] | Ecotect | Educational | Dynamic | South | Daylight | Integration with louvers |
[19] | Ecotect–Field Measurement | Educational | Static | South | Daylight | Integration with louvers |
[20] | Radiance/ Ecotect | Office | Static | South | Daylight | Investigating latitude impact on light shelf proportions |
[21] | Radiance | - | Static | South | Daylight | Use of curved ceilings |
[22] | Radiance–Field Measurement | Office | Dynamic | South–North–East–West | Daylight | Use of dynamic light shelves for tropical climates |
[23] | Radiance–Field Measurement | - | Static | South | Daylight | Use of various ceiling forms |
[24] | Radiance–Field Measurement | Office | Dynamic | South–East–West | Daylight, Energy Consumption | Integration with a set of mirrors |
[25] | Relux | Educational | Static | Northeast–Southwest–Northwest | Daylight | Integration with louvers |
[26] | TracePro7.0 | Residential | Static | South | Daylight | Proposing unique windows above light shelves |
[27] | Design Builder | Educational | Static | East–West | Daylight, Energy Consumption, Thermal Comfort | Evaluating light shelf performance |
[28] | DIALux 4.13 program | Educational | Static | South–North–East–West | Daylight | Use of a series of light shelves |
[29] | Energy Plus/Comfen | Office | Dynamic | South | Daylight | Integration with horizontal and vertical shading devices |
[30] | DeLuminae | Office | Static | South–North–East–West | Daylight | Integration with translucent ceilings aligned with light shelves |
[31] | Lightscape | Office | Static | South | Daylight, Energy Consumption | Integration with louvers |
[32] | Field Measurement | - | Static | South | Daylight, Energy Consumption | Integration with daylight diffusing sheets |
[33] | Field Measurement | - | Static | South | Daylight, Energy Consumption | Integration with solar panels |
[34] | DIVA | Office | Static | South | Daylight, Energy Consumption | Integration with solar panels |
[35] | Field measurement | - | Static | South | Daylight quality Energy consumption | Integration with solar panels |
[36] | Field measurement | - | Dynamic | South | Daylight quality Energy consumption | Integration with solar panels |
[37] | Field measurement | - | Dynamic | South | Daylight quality Energy consumption | Integration with solar panels |
[38] | Honeybee and Ladybug | Educational | Static | South | Daylight quality Energy consumption Thermal comfort | Integration with solar panels |
Value | Effective Parameters in Simulation |
---|---|
6 | Number of Diffuse Reflections Between Surfaces (ab) |
2500 | Number of Rays Emitted from Surfaces in Calculations (ad) |
Reflectance | Color | Type of Material | Surfaces |
---|---|---|---|
0.201 | Light Gray | Ceramic | Floor |
0.822 | white | Plaster | Interior Ceiling |
0.701 | Transparent | Double-Glazed Glass with 70% Visible Light Transmission | Window |
0.812 | white | Plaster | Wall |
0.419 | Light Brown | wooden | Door |
0.077 | red | Fabric | Curtain |
0.87 | white | Semi-Mirror Surface | Light Shelf |
Sensor | Measured (lux) | Simulated (lux) |
---|---|---|
1 | 343 | 374 |
2 | 403 | 439 |
3 | 379 | 413 |
4 | 355 | 387 |
5 | 572 | 623 |
6 | 646 | 704 |
7 | 641 | 699 |
8 | 584 | 637 |
9 | 1241 | 1353 |
10 | 1215 | 1324 |
11 | 1209 | 1318 |
12 | 1385 | 1510 |
Investigation of Different Modes of Integrating Solar Cells with a Light Shelf | ||||
---|---|---|---|---|
Uniformity = 0.41 | UDI = 76/9% | SDA = 95.7% | Depth of 60 cm (1 solar panel) | |
Uniformity = 0.42 | UDI = 78.4% | SDA = 98% | Depth of 30 cm (2 solar panels) | |
Uniformity = 0.38 | UDI = 79.2% | SDA = 98% | Depth of 20 cm (3 solar panels) | |
Uniformity = 0.4 | UDI = 79.3% | SDA = 98.9% | Depth of 15 cm (4 solar panels) |
Daylight | Energy Consumption | ThermalComfort | Alternatives | 4 Segments (Depth 60 cm) | |||||
---|---|---|---|---|---|---|---|---|---|
UDI | sGA | Cooling | Heating | EUI | TCP | ||||
48.86% | 0.50 | 33.53 | 3.086 | 68.43 | 35.38% | Existing classroom condition | 0 | Without Solar panels | |
52.38% | 0.57 | 21.486 | 5.104 | 58.40 | 46.43% | Horizontal Light shelf | 0 | ||
67.91% | 0.70 | 14.72 | 13.41 | 59.95 | 75.82% | Horizontal Light shelf | 1 | With Solar panels | |
64.83% | 0.650 | 15.01 | 12.40 | 59.24 | 73.6% | Horizontal Light shelf with fixed angle elements | 2 | ||
63.86% | 0.653 | 14.84 | 12.23 | 58.88 | 72.54% | Horizontal Light shelf with variable angle elements | 3 | ||
64.23% | 0.646 | 14.66 | 12.40 | 58.88 | 72.33% | Lightshelf with −10 angle | 4 | ||
63.16% | 0.641 | 14.18 | 12.16 | 58.16 | 72.44% | Curved Light shelf | 5 |
Daylight | Energy Consumption | ThermalComfort | Alternatives | Analysis of the Depth of the Light Shelf | |||||
---|---|---|---|---|---|---|---|---|---|
UDI | sGA | Cooling | Heating | EUI | TCP | ||||
66.10% | 0.68 | 17.75 | 11.99 | 61.55 | 74.02% | 3 segments with a depth of 45 cm | 1 | With Solar panels | |
67.91% | 0.70 | 14.72 | 13.41 | 59.95 | 75.82% | 4 segments with a depth of 60 cm | 2 | ||
63.86% | 0.653 | 14.84 | 12.23 | 58.88 | 72.54% | 5 segments with a depth of 75 cm | 3 |
Daylight | Energy Consumption | ThermalComfort | The Type of Light Shelf Suitable for Each Season | Season | |||
---|---|---|---|---|---|---|---|
UDI | sGA | Cooling | Heating | EUI | TCP | ||
83.93% | 0.872 | 20.48 | 6.71 | 59.00 | 45.76% | The current situation | Spring |
96.87% | 0.965 | 15.61 | 8.84 | 56.27 | 55.96% | A curved light shelf with 100 degree angle and 20 degree placement with depth of 75 cm and a reflectance coefficient of 50% | |
84.20% | 0.85 | 40.30 | 0.83 | 73.95 | 11.07% | The current situation | Summer |
95.94% | 0.947 | 20.77 | 1.19 | 60.66 | 43.89% | A curved light shelf with 80 degree angle and 20 degree placement with depth of 45 cm and a reflectance coefficient of 50% | |
56.41% | 0.564 | 18.64 | 8.49 | 58.94 | 48.69% | The current situation | Autumn |
71.33% | 0.6625 | 12.82 | 12.23 | 56.86 | 57.095% | A flat depth of 75 cm with a reflectance coefficient of 50% | |
48.86% | 0.50 | 33.53 | 3.086 | 68.43 | 35.38% | The current situation | Winter |
67.91% | 0.70 | 14.72 | 13.41 | 60.95 | 75.82% | A flat depth of 60 cm integrated with solar panels |
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Share and Cite
Masoud, S.; Zamani, Z.; Hosseini, S.M.; Mahdavinejad, M.; Wang, J. Enhancing Classroom Lighting Quality in Tehran Through the Integration of a Dynamic Light Shelf and Solar Panels. Buildings 2025, 15, 2215. https://doi.org/10.3390/buildings15132215
Masoud S, Zamani Z, Hosseini SM, Mahdavinejad M, Wang J. Enhancing Classroom Lighting Quality in Tehran Through the Integration of a Dynamic Light Shelf and Solar Panels. Buildings. 2025; 15(13):2215. https://doi.org/10.3390/buildings15132215
Chicago/Turabian StyleMasoud, Shadan, Zahra Zamani, Seyed Morteza Hosseini, Mohammadjavad Mahdavinejad, and Julian Wang. 2025. "Enhancing Classroom Lighting Quality in Tehran Through the Integration of a Dynamic Light Shelf and Solar Panels" Buildings 15, no. 13: 2215. https://doi.org/10.3390/buildings15132215
APA StyleMasoud, S., Zamani, Z., Hosseini, S. M., Mahdavinejad, M., & Wang, J. (2025). Enhancing Classroom Lighting Quality in Tehran Through the Integration of a Dynamic Light Shelf and Solar Panels. Buildings, 15(13), 2215. https://doi.org/10.3390/buildings15132215