Proposal for an Experimental Methodology for Evaluation of Natural Lighting Systems Applied in Buildings
Abstract
:1. Introduction
2. Materials and Methods
2.1. Characteristics of Natural Lighting Systems
2.2. Validation System
2.3. Data Acquisition
3. Results and Discussion
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Manufacturer | Reflective Tube Material | Nominal Reflection |
---|---|---|
Espacio Solar (Spain) | Aluminum with silver coating | 98% |
Velux (Portugal) | Highly reflective aluminum | 99% |
Fakro (Portugal) | Aluminum with silver coating | 98% |
Natural light tubular skylights (USA) | Aluminum with silver coating | 98% |
SOLATUBE (Australia) | Aluminum with silver coating | 99.7% |
Chatron (Portugal) | Aluminum with silver coating | 99.7% |
Solarspot (Italy) | Highly reflective aluminum | 99.7% |
Title | Information |
---|---|
Cylindrical mirror light pipes [13] | Evaluation of reflectivity in solar tubes from integrative sphere analysis |
Tubular guidance systems for daylight: Achieved and predicted installation performances [14] | Critical review of existing zenith lighting methods |
Tubular light guidance systems as advanced daylighting strategy [15] | Evaluation of tubular lighting systems using SkyVision software and other software with the same function |
Rectangular-section mirror light pipes [16] | Modeling of rectangular reflective systems with integrative sphere |
Analytical solution for daylight transmission via hollow light pipes with a transparent glazing [17] | Modeling of light transmission in solar tubes |
Splayed mirror light pipes [18] | Modeling of rectangular reflective systems |
Transmission of mirror light pipes with triangular, rectangular, rhombic and hexagonal cross section [19] | Definition of expressions for calculation of light transmission in reflective, triangular, rhombohedral and hexagonal rectangular systems |
Overview and new developments in optical daylighting systems for building a healthy indoor environment [20] | Overview of two optical natural lighting systems (tube light systems and mirror systems) |
Light transmission efficiency of daylight guidance systems: An assessment approach based on simulations and measurements in a sun/sky simulator [21] | Characterization of the photometric performance of tubular light guidance systems in terms of light |
Light Pipes Performance Prediction: inter model and experimental confrontation on vertical circular light-guides [22] | Modeling and experimental analysis of vertical solar tubes |
Study of light-pipes for the use of sunlight in road tunnels: From a scale model to real tunnels [23] | Evaluation of the application of light tubes in tunnel lighting |
Thermal analysis of light pipes for insulated flat roofs [24] | Thermal analysis of solar tubes used in roofs |
Innovative daylighting systems challenges: A critical study [25] | Analysis of existing natural light utilization technologies |
Research on energy saving analysis of tubular daylight devices [26] | Presentation of a model for evaluating the efficiency of tubular systems |
Investigation of laminar natural convection heat transfer within tubular daylighting devices for winter conditions [27] | Experimental and numerical study on natural laminar convection in TDD for winter conditions |
Passive Tubular Daylight Guidance System Survey [28] | Case study of the installation of a TDGS in Cluj-Napoca (Romania) |
Study of tubular daylight guide systems in buildings: Experimentation, modelling and validation [29] | Proposition of a new model of analysis more precise to validate the TDGS in efficacies |
Characteristics of Reflexive Tubes | |||||
---|---|---|---|---|---|
External Material | Internal Material | Diameter (mm) | Length (mm) | Weight (Kg) | |
Commercial (Solatube 160DS) | Aluminum 99% | High-purity silver (Vacuum Metallization) | 250 | 1800 | 2.2 |
Prototype | Recycled polypropylene | Aluminum (Vacuum Metallization) | 250 | 1800 | 2.9 |
Hour | 06:00 | 07:00 | 08:00 | 09:00 | 10:00 | 11:00 | 12:00 |
---|---|---|---|---|---|---|---|
Standard Tube | 0.00 | 4.11 | 19.85 | 44.45 | 57.82 | 81.18 | 97.99 |
Recycle Tube | 0.00 | 1.55 | 5.70 | 12.75 | 17.91 | 27.94 | 38.39 |
Solar Rad. | 0.60 | 31.70 | 119.30 | 260.80 | 326.30 | 350.90 | 390.10 |
Hour | 13:00 | 14:00 | 15:00 | 16:00 | 17:00 | 18:00 | 19:00 | 20:00 |
---|---|---|---|---|---|---|---|---|
Standard Tube | 77.60 | 90.57 | 78.64 | 50.62 | 29.89 | 23.97 | 10.43 | 0.46 |
Recycle Tube | 41.02 | 39.50 | 29.32 | 18.05 | 10.24 | 7.70 | 3.61 | 0.16 |
Solar Rad. | 430.90 | 438.30 | 401.70 | 294.20 | 246.40 | 147.90 | 66.50 | 13.50 |
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Share and Cite
Spacek, A.D.; Neto, J.M.; Biléssimo, L.D.; Junior, O.H.A.; Neto, G.P.D.F.; Giansella, R.D.S.; Santana, M.V.F.D.; Malfatti, C.D.F. Proposal for an Experimental Methodology for Evaluation of Natural Lighting Systems Applied in Buildings. Energies 2017, 10, 1014. https://doi.org/10.3390/en10071014
Spacek AD, Neto JM, Biléssimo LD, Junior OHA, Neto GPDF, Giansella RDS, Santana MVFD, Malfatti CDF. Proposal for an Experimental Methodology for Evaluation of Natural Lighting Systems Applied in Buildings. Energies. 2017; 10(7):1014. https://doi.org/10.3390/en10071014
Chicago/Turabian StyleSpacek, Anderson Diogo, João Mota Neto, Luciano Dagostin Biléssimo, Oswaldo Hideo Ando Junior, Gustavo Pedro De Freitas Neto, Rodrigo Da Silva Giansella, Marcus Vinícius Ferreira De Santana, and Celia De Fraga Malfatti. 2017. "Proposal for an Experimental Methodology for Evaluation of Natural Lighting Systems Applied in Buildings" Energies 10, no. 7: 1014. https://doi.org/10.3390/en10071014
APA StyleSpacek, A. D., Neto, J. M., Biléssimo, L. D., Junior, O. H. A., Neto, G. P. D. F., Giansella, R. D. S., Santana, M. V. F. D., & Malfatti, C. D. F. (2017). Proposal for an Experimental Methodology for Evaluation of Natural Lighting Systems Applied in Buildings. Energies, 10(7), 1014. https://doi.org/10.3390/en10071014