Zhao Shuang, Wu Xiaojie, Zou Yonggang, Xu Yingtian, Jin Liang, Zhang He. Design of phosphor-converted white light illumination system simulated by semiconductor laser[J]. Journal of Applied Optics, 2018, 39(1): 140-145. DOI: 10.5768/JAO201839.0107004
Citation: Zhao Shuang, Wu Xiaojie, Zou Yonggang, Xu Yingtian, Jin Liang, Zhang He. Design of phosphor-converted white light illumination system simulated by semiconductor laser[J]. Journal of Applied Optics, 2018, 39(1): 140-145. DOI: 10.5768/JAO201839.0107004

Design of phosphor-converted white light illumination system simulated by semiconductor laser

More Information
  • Received Date: July 23, 2017
  • Revised Date: August 16, 2017
  • The power of single-tube blue semiconductor laser is relatively low. In order to obtain high power laser output, the multi-tube fiber coupling technology was used to achieve 10 W blue laser output, and the white light source output synthetized by laser excitation phosphor sheet was taken as the car high beam light source.According to the requirements of automotive lighting regulations, an automobile high beam lighting system was designed, the optical structures of parabolic reflecting shade, biconcave lens and phosphor sheet as well as the influence of reflecting shade curve parameters, the positions of biconcave lens and phosphor sheet on the color temperature uniformity and illuminance of light source were described in detail.A elliptical parabolic reflecting shade with an elliptical opening of 19 mm×31.6 mm at the top, a circular opening of 5 mm diameter at the bottom and with the height of 60 mm was designed.When the phosphor sheet was placed at a distance of 15 mm from the reflector bottom, an elliptical spot of 5 m×12 m was obtained on the receiving surface 25 m from the light source, the white light source had a luminous flux of 1 025 lm and a center color temperature of 5 880 K, the central color coordinates were (x=0.322 6, y=0.369 2).Results show that the high beam lighting system meets the requirements of automobile lighting regulations.
  • [1]
    SCHUBERT E F, KIM J K, LUO H, et al.Solid-state lighting-a benevolent technology[J].Reports on Progress in Physics, 2006, 69(12):3069-3099. doi: 10.1088/0034-4885/69/12/R01
    [2]
    KIM A Y, GÖTZ W, STEIGERWALD D A, et al.Performance of high-power AlInGaN light emitting diodes[J].Physica Status Solidi, 2015, 188(1):15-21. doi: 10.1002-1521-396X(200111)188-1-15--AID-PSSA15-3.0.CO%3b2-5/
    [3]
    KIM M H, SCHUBERT M F, DAI Q, et al.Origin of efficiency droop in GaN-based light-emitting diodes[J].Applied Physics Letters, 2007, 91(18):183507-1-3. doi: 10.1063/1.2800290
    [4]
    BERGH A A.Blue laser diode (LD) and light emitting diode (LED) applications[J].Physica Status Solidi, 2004, 201(12):2740-2754. http://d.old.wanfangdata.com.cn/NSTLQK/NSTL_QKJJ024427661/
    [5]
    GONDA S I, TSUTSUMI H, ITO Y, et al.Proton radiation effects in nitride lasers and light emitting diodes[J].Physica Status Solidi, 2010, 204(1):231-235. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=71c352ecfd3ef037aed645f4e8c553fd
    [6]
    KOJIMA K, FUNATO M, KAWAKAMI Y, et al.Comparison between optical gain spectra of InxGa1-xN/In0.02Ga0.98N laser diodes emitting at 404 nm and 470 nm[J].Physica Status Solidi, 2010, 204(6):2108-2111.
    [7]
    Jr WIERER J J, TSAO J Y, SIZOV D S.The potential of Ⅲ-nitride laser diodes for solid-state lighting[J].Physica Status Solidi, 2014, 11(3-4):674-677. doi: 10.1002/pssc.201300422
    [8]
    TSAO J Y, Jr WIERER J J, ROHWER L E S, et al.Introduction Part B.Ultra-efficient solid-state lighting:likely characteristics, economic benefits, technological approaches[J].Topics in Applied Physics, 2013, 126(1519):11-26. http://cn.bing.com/academic/profile?id=3c636e5ddc8eabd567f0d12cc4e2228e&encoded=0&v=paper_preview&mkt=zh-cn
    [9]
    陈飞.LED汽车前照灯光源封装及灯具配光研究[D].武汉: 华中科技大学, 2013.

    CHEN Fei.Research on LED package and optical design in automotive forward-lighting application[D].Wuhan: Huazhong University of Science and Technology, 2013.
  • Related Articles

    [1]YANG Wuli, LAI Yueying, ZHANG Xiaohui, JIAO Gangcheng, LI Shilong, GUO Xin, JIA Tiantian. Research on properties of commonly-used phosphors for low-level-light image intensifiers[J]. Journal of Applied Optics, 2022, 43(6): 1207-1216. DOI: 10.5768/JAO202243.0604023
    [2]FU Zhihong, WU Ningjie, TIAN Youqiang, GUO Pengcheng, WANG Hong. Effect of double-layer phosphor coating on LED light output of COB encapsulation[J]. Journal of Applied Optics, 2020, 41(5): 1053-1059. DOI: 10.5768/JAO202041.0505001
    [3]YAO Ze, CHENG Hongchang, LI Tao, ZHOU Yujian, HUANG Wujun, LI Dan. Research on afterglow measurement method of image intensifier based on P31 phosphor powder[J]. Journal of Applied Optics, 2020, 41(4): 796-800. DOI: 10.5768/JAO202041.0404002
    [4]GUO Jintao, XIONG Deping, WEN Kunhua, HE Miao, ZHANG Zhiqing, XIA Zhifeng, XU Yiqin. Design of narrow beam illumination optical system based on LD excitation phosphor white light source[J]. Journal of Applied Optics, 2020, 41(3): 469-476. DOI: 10.5768/JAO202041.0301006
    [5]WU Lin, MA Jianshe, SU Ping. New design of flexible light distribution film[J]. Journal of Applied Optics, 2019, 40(5): 871-875. DOI: 10.5768/JAO201940.0505002
    [6]KANG Jian, ZHANG Le, SHAN Yingshuang, CHEN Hao. Laser white light source of its optical system analysis[J]. Journal of Applied Optics, 2019, 40(5): 763-773. DOI: 10.5768/JAO201940.0501008
    [7]Wu Tong-fei, Zhu Jin-shan, Sun Li-cheng, He Qing-hua. Design and simulation of semiconductor laser ship lights-color properties[J]. Journal of Applied Optics, 2015, 36(2): 321-326. DOI: 10.5768/JAO201536.0207005
    [8]TU Yi, LUO Xiang-qian, JIN Liang. Airborne beacon system design of high-power semiconductor laser[J]. Journal of Applied Optics, 2012, 33(6): 1161-1167.
    [9]ZHANG Biao, GAO Wei, YANG Zhao-jin, YANG Hong-ru. Miniaturization of laser pumped by high-power LD array[J]. Journal of Applied Optics, 2009, 30(4): 703-706.
    [10]TAN Zuo-jun, XUE Song, KANG Jing-ran, CHEN Hai-qing. Collimation and test of semiconductor lasers in laser fuze[J]. Journal of Applied Optics, 2007, 28(4): 454-457.

Catalog

    Article views (1013) PDF downloads (166) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return