DocumentCode :
144005
Title :
Design and optimization of a generalized wide-bandwidth white light system for Light-Eye Technology (LeyeT)
Author :
Po Ting Lin ; Wei-Lee Chen ; Yeeu-Chang Lee ; Ming Chang ; Yu-cheng Chou ; Chang-Chun Lee
Author_Institution :
Dept. of Mech. Eng., Chung Yuan Christian Univ., Chungli, Taiwan
fYear :
2014
fDate :
11-14 April 2014
Firstpage :
1
Lastpage :
5
Abstract :
The Light-Eye Technology (LeyeT) has been developed to provide a generalized light source for various biomedical applications. The LeyeT system is designed for the purposes of uniform light, light with specific wavelength, controllable size of light, etc. Multiple high-directionality single-Watt light-emitting diodes (LED) are packed together and integrated to deliver a wide-bandwidth white light source. The light uniformity is optimized with respect to the arrangement of LEDs and the controlled currents. The mixed light is then directed to a series of optical devices, including lenses, filters, grating, etc., to synthesize the light of the system. A system optimization is necessary to maintain the performance of system light. The light spectrum is analyzed numerically using a Monte Carlo ray tracing method and verified experimentally using an integrated sphere with a spectrometer. Each optical component is designed and built separately but every local performance is mutually coupled with each other. The system is therefore decomposed into several subsystems while the system target is assigned to each subsystem. Each subsystem finds the new design point along the gradient direction of the local constraint and responds back to the system. Using this Gradient-based Transformation Method (GTM), the optimal design variables are to be found efficiently due to the monotonic characteristics of the gradient-based transformed formulations. The design and optimization of the LeyeT system is been developing to provide the desired generalized light source, which is controllable and optimized for various biomedical applications. In this paper, the design and optimization of the generalized wide-bandwidth white light source is investigated.
Keywords :
Monte Carlo methods; biomedical equipment; biomedical measurement; design; diffraction gratings; gradient methods; lenses; light emitting diodes; light sources; optical filters; optical variables control; radiation therapy; ray tracing; GTM; LED arrangement; LeyeT development; LeyeT system design; LeyeT system optimization; Monte Carlo ray tracing method; biomedical applications; controllable generalized light source; controllable light size; current control; generalized light source optimization; generalized wide-bandwidth white light system; gradient-based transformation method; integrated sphere; light spectral analysis; light synthesis; light uniformity optimization; light-emitting diodes; light-eye technology; mixed light; multiple high-directionality single-Watt LED; numerical analysis; optical component design; optical devices; optical filters; optical grating; optical lenses; optimal design variables; specific light wavelength; spectrometer; system decomposition; system light performance; white light system design; white light system optimization; wide-bandwidth white light source; Biomedical optical imaging; Cancer; Light emitting diodes; Light sources; Optical imaging; Optical reflection; Optimization; Gradient-based Transformation Method (GTM); Light-Eye Technology (LeyeT); light mixing; light-emitting diode (LED); multidisciplinary design optimization (MDO);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioelectronics and Bioinformatics (ISBB), 2014 IEEE International Symposium on
Conference_Location :
Chung Li
Print_ISBN :
978-1-4799-2769-2
Type :
conf
DOI :
10.1109/ISBB.2014.6820950
Filename :
6820950
Link To Document :
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