An Approach for Lighting Calculations in Indoor Mirrored Facilities Based on Virtual Twin-Spaces
Abstract
:1. Introduction
- (1)
- Lighting installations generally operate during hours including both daytime and nighttime, which dramatically changes their conditions of work because natural light reinforces the lighting levels and/or impairs the visual task due to glare, loss of contrast and other factors. Due to the variability of the relative position of the window/sun, the levels of natural luminous flux also vary across the days, seasons, etc. All these circumstances make effective and ergonomic integration of daylight in indoor facilities a non-solved and extremely difficult task [1,2].
- (2)
- Indoor spaces frequently change their configuration (furniture), utility and use during their lifetimes. Due to the important role of the light reflected in the different elements of the room [3,4] and their role in the creation of shadows [5], lack of uniformity, influence on the illuminance levels on the working plane, performance of the visual task, etc., we find that the projected installations usually do not meet the needs they were initially designed for. This influence is similar to that of groves on street lighting [6], which results in frequent disagreements between projected and measured luminance/illuminance levels and uniformity.
- (3)
- The influence of lighting on the users of the installations goes beyond visual performance to enter complex paths intimately related to hormones, which have an impact on psychological aspects of human life and performance (mood, anxiety, health, insomnia, etc.). This influence is especially acute in indoor lighting, whose very basis and applications are currently under deep revision [7,8,9,10] after the recent and ongoing advances in the comprehension of the non-visual paths of light in the human retina and neurological system to produce and regulate non-visual effects [11,12,13], so lighting of indoor spaces and the maximization of the performance there is a matter of active research.
2. Coefficient of Utilization as a Key Factor in the Design
- (1)
- The activity to be carried out.
- (2)
- The required average illuminance and uniformity on the working plane, as well as how to limit glare on the user’s eye for this activity. These requirements are generally established in national regulations and international standards such as the European standard EN 12464-1:2021, “Light and Lighting. Lighting of Work Places. Part 1: Indoor Work Places” [20].
- (3)
- The characteristics of the light needed for the visual task to be performed, mainly spectral distribution, color temperature (Tc) and color rendering (Ra).
- (4)
- The dimensions and shape of the room.
- (5)
- The reflective properties of the walls to determine the coefficient of utilization Cu.
3. A Simple Model Based on Virtual Twin-Spaces to Design Lighting Installations in Mirrored Indoor Facilities
- Case 1: room with one mirrored wall
- Case 2: room with two mirrored walls
- (1)
- N = 126: A total of 14 rows of luminaries in length and 9 in width, giving an average illuminance on the working plane Em = 302.4 lux, just 0.8% above the 300 lux required by regulation EN 12464 [20].
- (2)
- N = 128: A total of 16 rows of luminaries in length and 8 in width, giving an average illuminance on the working plane Em = 307.2 lux, just 2.4% above the 300 lux required by regulation EN 12464 [20].
4. Discussion
5. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
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Peña-García, A. An Approach for Lighting Calculations in Indoor Mirrored Facilities Based on Virtual Twin-Spaces. Sustainability 2022, 14, 11837. https://doi.org/10.3390/su141911837
Peña-García A. An Approach for Lighting Calculations in Indoor Mirrored Facilities Based on Virtual Twin-Spaces. Sustainability. 2022; 14(19):11837. https://doi.org/10.3390/su141911837
Chicago/Turabian StylePeña-García, Antonio. 2022. "An Approach for Lighting Calculations in Indoor Mirrored Facilities Based on Virtual Twin-Spaces" Sustainability 14, no. 19: 11837. https://doi.org/10.3390/su141911837
APA StylePeña-García, A. (2022). An Approach for Lighting Calculations in Indoor Mirrored Facilities Based on Virtual Twin-Spaces. Sustainability, 14(19), 11837. https://doi.org/10.3390/su141911837