利用反射准直器和自由小透镜阵列实现LED均匀照明的简单设计

IF 2.1 3区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY Lighting Research & Technology Pub Date : 2021-12-09 DOI:10.1177/14771535211052451
DT Vu, H. Vu, S. Shin, NM Kieu, TQ Tien, NH Vu
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引用次数: 0

摘要

我们介绍了一种紧凑的透镜阵列原理,该原理利用自由曲面光学来部署光分配器,有利于高效,廉价,低能耗的发光二极管(LED)照明系统。我们在这里概述了一个设计自由曲面透镜的简单策略,它利用了一组相同的平凸透镜。光根据光程长度守恒的原理从这样的小透镜重新分配,然后被传送到接收平面。在接收平面上,每个小透镜的非均匀照明区域发生叠加,其中位于边界的非均匀照明区域的尺寸应与自由小透镜阵列的尺寸相同。到目前为止,由于它们的尺寸小,这样的区域可以忽略不计,这是我们设计的关键,与以前的实现有很大的不同。基于评估光性能的模拟,提出的设计展示了多种辐射几何形状和离轴照明的兼容性,而不关心光源的初始辐射模式。仿真结果表明,集成该自由形状透镜阵列的LED光源在目标照明区域内的发光效率和均匀度分别达到70%和85%以上。这种新颖的设计随后被实验证明具有75%的均匀性,这与模拟结果接近。此外,还将拟议的室内照明与商用LED筒灯和LED面板进行了比较,从而评估了能耗、灯具数量和照明性能,以显示我们简化模型的优势。
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A simple design of uniform LED illumination using catadioptric collimator and freeform lenslet array
We introduce a compact lenslet array principle that takes advantage of freeform optics to deploy a light distributor, beneficial for highly efficient, inexpensive, low energy consumption light-emitting diode (LED) lighting system. We outline here a simple strategy for designing the freeform lens that makes use of an array of the identical plano-convex lenslet. The light is redistributed from such lenslet, hinging on the principle of optical path length conservation, and then delivered to the receiver plane. The superimposing of such illumination area from every lenslet occurs on the receiver plane, in which the non-uniform illumination area located in the boundary should have the same dimension as the size of the freeform lenslet array. Such an area, insofar, is negligible due to their small size, which is the crux of our design, representing a large departure from the former implementations. Based on simulations that assess light performance, the proposed design exhibited the compatibility for multiple radiation geometries and off-axis lighting without concern for the initial radiation pattern of the source. As simulated, the LED light source integrated with such proposed freeform lenslet array revealed high luminous efficiency and uniformity within the illumination area of interest were above 70% and 85%, respectively. Such novel design was then experimentally demonstrated to possess a uniformity of 75% at hand, which was close to the simulation results. Also, proposed indoor lighting was implemented in comparison with the commercial LED downlight and LED panel, whereby the energy consumption, number of luminaires and illumination performance were assessed to show the advantage of our simplified model.
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来源期刊
Lighting Research & Technology
Lighting Research & Technology 工程技术-光学
CiteScore
5.40
自引率
16.00%
发文量
69
审稿时长
>12 weeks
期刊介绍: Lighting Research & Technology (LR&T) publishes original peer-reviewed research on all aspects of light and lighting and is published in association with The Society of Light and Lighting. LR&T covers the human response to light, the science of light generation, light control and measurement plus lighting design for both interior and exterior environments, as well as daylighting, energy efficiency and sustainability
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