Javascript must be enabled to continue!
Flat Optical Fiber Daylighting System with Lateral Displacement Sun-Tracking Mechanism for Indoor Lighting
View through CrossRef
An essential impact which can improve the indoor environment and save on power consumption for artificial lighting is utilization of daylight. Optical fiber daylighting technology offers a way to use direct daylight for remote spaces in a building. However, the existing paradigm based on the precise orientation of sunlight concentrator toward the Sun is very costly and difficult to install on the roof of buildings. Here, we explore an alternative approach using mirror-coated lens array and planar waveguide to develop a flat optical fiber daylighting system (optical fiber daylighting panel) with lateral displacement Sun-tracking mechanism. Sunlight collected and reflected by each mirror-coated lens in a rectangular lens array is coupled into a planar waveguide using cone prisms placed at each lens focus. This geometry yields a thin, flat profile for Sunlight concentrator. Our proposed concentrating panel can be achieved with 35 mm thickness while the concentrator’s width and length are 500 mm × 500 mm. The commercial optical simulation tool (LightToolsTM) was used to develop the simulation models and analyze the system performance. Simulation results based on the designed system demonstrated an optical efficiency of 51.4% at a concentration ratio of 125. The system can support utilizing a lateral displacement Sun-tracking system, which allows for replacing bulky and robust conventional rotational Sun-tracking systems. This study shows a feasibility of a compact and inexpensive optical fiber daylighting system to be installed on the roof of buildings.
Title: Flat Optical Fiber Daylighting System with Lateral Displacement Sun-Tracking Mechanism for Indoor Lighting
Description:
An essential impact which can improve the indoor environment and save on power consumption for artificial lighting is utilization of daylight.
Optical fiber daylighting technology offers a way to use direct daylight for remote spaces in a building.
However, the existing paradigm based on the precise orientation of sunlight concentrator toward the Sun is very costly and difficult to install on the roof of buildings.
Here, we explore an alternative approach using mirror-coated lens array and planar waveguide to develop a flat optical fiber daylighting system (optical fiber daylighting panel) with lateral displacement Sun-tracking mechanism.
Sunlight collected and reflected by each mirror-coated lens in a rectangular lens array is coupled into a planar waveguide using cone prisms placed at each lens focus.
This geometry yields a thin, flat profile for Sunlight concentrator.
Our proposed concentrating panel can be achieved with 35 mm thickness while the concentrator’s width and length are 500 mm × 500 mm.
The commercial optical simulation tool (LightToolsTM) was used to develop the simulation models and analyze the system performance.
Simulation results based on the designed system demonstrated an optical efficiency of 51.
4% at a concentration ratio of 125.
The system can support utilizing a lateral displacement Sun-tracking system, which allows for replacing bulky and robust conventional rotational Sun-tracking systems.
This study shows a feasibility of a compact and inexpensive optical fiber daylighting system to be installed on the roof of buildings.
Related Results
Prediction of Annual Daylighting Performance Using Inverse Models
Prediction of Annual Daylighting Performance Using Inverse Models
This paper presents the results of a study that developed improved inverse models to accurately predict the annual daylighting performance (sDA and lighting energy use) of various ...
A COMPREHENSIVE REVIEW OF ENERGY-EFFICIENT LIGHTING TECHNOLOGIES AND TRENDS
A COMPREHENSIVE REVIEW OF ENERGY-EFFICIENT LIGHTING TECHNOLOGIES AND TRENDS
Energy-efficient lighting technologies have undergone significant advancements in recent years, driving a transformation in the lighting industry. This comprehensive review explore...
OCCUPANTS’ PERSONALIZED PREFERENCE FOR INDOOR THERMAL AND LIGHTING ENVIRONMENT OF OFFICE BUILDINGS: A CASE STUDY BASED UTILITY FUNCTION AND BAYESIAN INFERENCE
OCCUPANTS’ PERSONALIZED PREFERENCE FOR INDOOR THERMAL AND LIGHTING ENVIRONMENT OF OFFICE BUILDINGS: A CASE STUDY BASED UTILITY FUNCTION AND BAYESIAN INFERENCE
ABSTRACT
Building thermal and lighting environment is a key concern in the construction industry. To study the personalized preferences of thermal and lighting environments...
Simple Nomographs for Assessing Lighting in Urban Environments
Simple Nomographs for Assessing Lighting in Urban Environments
<p>Incorporating different technologies and lighting techniques in the illumination of structures has allowed us to portray fantastic night time vistas of our cities. However...
Is a Fitbit a Diary? Self-Tracking and Autobiography
Is a Fitbit a Diary? Self-Tracking and Autobiography
Data becomes something of a mirror in which people see themselves reflected. (Sorapure 270)In a 2014 essay for The New Yorker, the humourist David Sedaris recounts an obsession spu...
Multi-lateral Wells With Cemented Junctions
Multi-lateral Wells With Cemented Junctions
Abstract
Multi-lateral drilling and completion technology is advancing rapidly in the petroleum industry. It is currently being applied or considered for applicat...
Is part‐night lighting an effective measure to limit the impacts of artificial lighting on bats?
Is part‐night lighting an effective measure to limit the impacts of artificial lighting on bats?
AbstractAs light pollution is currently considered to be a major threat to biodiversity, different lighting management options are being explored to mitigate the impact of artifici...
Optical Fiber Technology for Efficient Daylighting and Thermal Control: A Sustainable Approach for Buildings
Optical Fiber Technology for Efficient Daylighting and Thermal Control: A Sustainable Approach for Buildings
Different direct solar harvesting systems for daylighting are being explored to achieve high uniform illumination deep within buildings at minimal cost. A promising solution to mak...

