Light Shelf Development Using Folding Technology and Photovoltaic Modules to Increase Energy Efficiency in Building
Abstract
:1. Introduction
1.1. The Light Shelves Concept and Operation Technologies
1.2. Concept and Power Generation Principle of Photovoltaic Modules
1.3. Indoor Illuminance Standards for Lighting Control
2. Methods
2.1. Proposal of Light Shelf That Applies Folding Technology and Photovoltaic Modules
2.2. Environment for Performance Evaluation
2.3. Methods of Performance Appraisal
3. Results and Discussion
3.1. Performance Evaluation Results
3.2. Performance Evaluation Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Author | Purpose | Photovoltaic Module Application | Consideration of Operation Technologies |
---|---|---|---|
Lim and Heng [8] | Proposal and performance evaluation of dynamic internal light shelf in high-rise office buildings | No | Not considered (Fixed light shelf) |
Claros and Soler [13] | Performance evaluation according to light shelf reflectance | ||
Warrier and Raphael [14] | Indoor visual comfort analysis according to the presence of light shelves | ||
Lee [9] | Performance evaluation of perforated light shelves in response to external wind pressure | Light shelf angle control by a single rotating shaft | |
Lee et al. [15] | Performance evaluation of light shelves with diffusion sheets | ||
Lee and Seo [16] | Proposal of a prism sheet application method for improving light shelf performance | ||
Mangkuto et al. [17] | Parametric design study of light shelves for application to hospital buildings | ||
Lee et al. [18] | Performance evaluation of light shelves by applying curvature | ||
Meresi [19] | Evaluation of the light shelf performance based on the application of the external blinds | ||
Lee [20] | Development and performance evaluation of a light shelf that can change the reflectivity | ||
AmirEbrahimi-Moghadam et al. [21] | Performance evaluation of interior light shelves | ||
Kim et al. [10] | Development and performance evaluation of light shelves based on user-awareness technology | ||
Lee et al. [22] | Performance evaluation of light shelves with location-awareness technology | Light shelf and light shelf angle control by multiple rotating shafts | |
Hwang et al. [11] | Performance evaluation of photovoltaic-integrated light shelf systems | Yes | Not considered (Fixed light shelf) |
Lee [12] | Performance evaluation of light shelves according to photovoltaic module attachment ratio | Light shelf angle control by a single rotating shaft |
Country | Optimal Indoor Illuminance Standards | Task Grade | Illuminance Range (lx) |
---|---|---|---|
Minimum-Standard-Maximum | |||
USA | IES [35] | General | 500-750-1000 |
Simple | 200-300-500 | ||
Japan | JIS Z 9110 [36] | General | 300-500-600 |
Simple | 150-200-300 | ||
Republic of Korea | KS A 3011 [37] | General | 300-400-600 |
Simple | 150-200-300 |
Case | Light Shelf | Photovoltaic Module Application (# of Photovoltaic Cells Applied) | Folding Technology Application | Operation Method | Light Shelf Angle | |
---|---|---|---|---|---|---|
Width | Angle | |||||
1 | 0.6 m | −10°, 0°, 10°, 20°, 30° | Not applied (0) | Not applied | Rotation by a rotating shaft | |
2 | −70°, −60°, −50°, −40°, −30°, −20°, −10°, 0°, 10°, 20°, 30° | Applied (33 *) | ||||
3 | 0° (fixed) | Applied (33 *) | Applied (divided into 6 modules) | Operates along a rail axis |
Folding Stage | Light Shelf Width (W) | Reflector Module Angle (α) | Photovoltaic Module Angle (β) |
---|---|---|---|
1 (Straight, no folding) | 0.60 m | 0° | 180° |
2 | 0.58 m | 14.8° | 165.2° |
3 | 0.56 m | 21.0° | 159° |
4 | 0.54 m | 25.8° | 154.2° |
5 | 0.52 m | 29.9° | 150.1° |
6 | 0.50 m | 33.6° | 146.4° |
Item | Specifications | Item | Specifications |
---|---|---|---|
Max. Power | 2 W | Max. Current (Impp) | 670 mA |
Max. Voltage (Vmpp) | 3 V | Size | 165 mm × 100 mm |
Efficiency | 16.3% | Reflectance | 1–6% |
Item | Specifications | Image |
---|---|---|
Measurement item (measurement capacity) | DC Voltage (0~600 V), DC Current (0~60 A) | |
Error rate | ±(0.5% + 3) |
Season | Meridian Altitude | External Illuminance (lx)/Solar Radiation (W/m2) | Outdoor Temperature | ||||
---|---|---|---|---|---|---|---|
10:00–11:00 | 11:00–12:00 | 12:00–13:00 | 13:00–14:00 | 14:00–15:00 | |||
Summer | 76.5 | 70,000/530 | 80,000/638 | 80,000/638 | 80,000/638 | 70,000/530 | 27.1 °C |
Middle season | 52.5 | 50,000/414 | 50,000/414 | 60,000/476 | 60,000/476 | 50,000/414 | 17.2 °C |
Winter | 29.5 | 20,000/289 | 30,000/332 | 30,000/332 | 30,000/332 | 20,000/289 | −3.2 °C |
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Lee, H.; Han, S.; Seo, J. Light Shelf Development Using Folding Technology and Photovoltaic Modules to Increase Energy Efficiency in Building. Buildings 2022, 12, 81. https://doi.org/10.3390/buildings12010081
Lee H, Han S, Seo J. Light Shelf Development Using Folding Technology and Photovoltaic Modules to Increase Energy Efficiency in Building. Buildings. 2022; 12(1):81. https://doi.org/10.3390/buildings12010081
Chicago/Turabian StyleLee, Heangwoo, Sowon Han, and Janghoo Seo. 2022. "Light Shelf Development Using Folding Technology and Photovoltaic Modules to Increase Energy Efficiency in Building" Buildings 12, no. 1: 81. https://doi.org/10.3390/buildings12010081
APA StyleLee, H., Han, S., & Seo, J. (2022). Light Shelf Development Using Folding Technology and Photovoltaic Modules to Increase Energy Efficiency in Building. Buildings, 12(1), 81. https://doi.org/10.3390/buildings12010081