博碩士論文 992206042 詳細資訊




以作者查詢圖書館館藏 以作者查詢臺灣博碩士 以作者查詢全國書目 勘誤回報 、線上人數:31 、訪客IP:18.117.99.192
姓名 張育譽(Yu-Yu Chang)  查詢紙本館藏   畢業系所 光電科學與工程學系
論文名稱 雙螢光粉光學模型之研究及其演色性之評估
(A study of optical modeling and evaluation of color rendering property of a dual-phosphor system)
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摘要(中) 本論文奠基於孫慶成教授所領導之固態照明實驗室所建立之螢光粉光學模型,利用紅綠雙螢光粉為材料,進行其混粉光學模型之建立與分析。此等效螢光粉光學模型可用來評估一白光 LED 在各特定螢光粉配方下之封裝效率,以及色彩於空間上之分布。藉由模型的開發,成功的利用模擬與實驗驗證,比較混粉及分層之螢光粉配置方式下,空間色偏與封裝效率及演色性之差異,突破文獻中僅能以實驗進行探討之缺陷。在高演色性的光源應用當中,封裝方式有相當多種,因此如何有效由光學模型來進行效率及色彩部分的分析相當重要。藉由實驗進行分析及優化,以發展出高效率且高演色性之封裝型式。最後實際應用至燈具當中進行光學特性之評估與分析以提升其光色品質。
摘要(英) In this thesis, on the basis of the phosphor optical models developed in the solid-state lighting laboratory whose supervisor is Dr. Ching-Cherng Sun, green and red phosphor mixture optical model has been well established. Under some specific green to red phosphor doping proportions, this model can be utilized to simulate the chromatic properties, spatial CCT distributions, and packaging efficiency. On the benefits of applying the phosphor optical model, the confusion about mixture or layer phosphor configuration can perform better could be solved. The comparison and analysis of these phosphor configurations can be made not only in experiment but also in simulation to discuss in more details. There are several types of packaging structures in high color quality applications. Consequently, the importance of phosphor optical model cannot be overestimated. With the help of experimental analysis and optimized in simulation, a packaging structure with high color quality and high efficiency has been approved. Finally, this light source with high performance is utilized in the luminaire to improve the color and energy saving properties.
關鍵字(中) ★ 白光LED
★ 螢光粉
★ 光學模型
★ 演色性
關鍵字(英) ★ White LEDs
★ Phosphor
★ Optical model
★ CRI
論文目次 摘要 I

Abstract II

目錄 VI

圖目錄 VIII

表目錄 XVI

第一章 緒論 1

1.1 前言 1

1.2 研究動機與目的 5

1.3 論文大綱 8

第二章 基本原理 10

2.1 引言 10

2.2 LED 發光原理 10

2.3 螢光粉發光原理 14

2.4 色彩光學 17

2.4.1 CIE XYZ 色彩空間 18

2.4.2 相關色溫 21

2.4.3 演色性 22

第三章 雙色螢光粉光學模型 25

3.1 螢光粉模型之文獻回顧 25

3.2 雙色螢光粉散射模型 28

3.3 雙色螢光粉之等效吸收係數與等效轉換效率 38

3.4 各螢光粉配比之光學模型驗證 48

第四章 不同螢光粉配置方式之雙螢光粉白光 LED 光色品質分析 55

4.1 雙螢光粉封裝架構 56

4.1.1 雙螢光粉混粉封裝架構與配方 57

4.2 分層與混粉之色彩表現比較與分析 60

4.2.1 分層與混粉之演色性比較與分析 61

4.2.2 分層與混粉之空間色偏比較與分析 68

4.3 分層與混粉之封裝效率比較與分析 80

4.3.1 混粉之封裝效率模型驗證與分層之封裝效率比較 82

第五章 遠離式空間分布之高效率及高演色性封裝實作與分析 86

5.1 遠離式空間分布之高效率白光 LED 封裝 87

5.2 遠離式空間分布之高效率白光 LED 封裝之應用 90

第六章 結論 102

參考文獻 105

中英文名詞對照表 115

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指導教授 孫慶成(Ching-Cherng Sun) 審核日期 2015-8-27
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