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Near-field and far-field goniophotometry of narrow-beam LED arrays

机译:窄光束LED阵列的近场和远场测角光度法

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摘要

In lighting calculations and simulations, the emission of a light source is conventionally modeled using the far-field luminous intensity distribution. However, the advent of luminaires including large arrays of LEDs with focusing optics creating narrow beams has made the traditional limiting photometric distance to reach far-field conditions less easy to determine. Furthermore, even correct far-field data can lead to erroneous predictions when illuminances are determined on a task surface which is positioned within the near-field region. A near-field representation could overcome these problems, but experimental validation for such LED arrays is lacking. This paper reports on near-field and far-field laboratory experiments using an array of two and five narrow-beam LEDs. A near-field approach makes discussions to determine the far-field photometric distance superfluous and leads to correct illuminances at any location with respect to the array, irrespective of the dimensions of the array and the beam angle of the individual components. Introducing the near-field representation of light sources in lighting design offers more accurate predictions when luminaires based on LED arrays with focusing optics are involved.
机译:在照明计算和模拟中,通常使用远场发光强度分布来模拟光源的发射。然而,包括具有聚焦光学器件产生窄光束的大型LED阵列的照明器的出现使得传统的极限光度距离难以达到远场条件。此外,当在位于近场区域内的任务表面上确定照度时,即使正确的远场数据也可能导致错误的预测。近场表示可以克服这些问题,但是缺少对这种LED阵列的实验验证。本文报道了使用两个和五个窄光束LED阵列进行的近场和远场实验室实验。近场方法使确定远场光度距离成为多余的讨论,并导致相对于阵列在任何位置的正确照度,而与阵列的尺寸和各个组件的光束角无关。当涉及基于带聚焦光学器件的LED阵列的灯具时,在照明设计中引入光源的近场表示可提供更准确的预测。

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  • 来源
    《Lighting Research & Technology》 |2015年第4期|470-482|共13页
  • 作者单位

    Department of Electric Engineering and Energy Technology, Vrije Universiteit Brussel, Brussels, Belgium ,Department of Electrical Engineering, Light and Lighting Laboratory, KU Leuven, Heverlee (Leuven), Belgium ,Department ETEC, Vrije Universiteit Brussel, Pleinlaan 2, 1050 Brussels, Belgium;

    Department of Electrical Engineering, Light and Lighting Laboratory, KU Leuven, Heverlee (Leuven), Belgium;

    Department of Electric Engineering and Energy Technology, Vrije Universiteit Brussel, Brussels, Belgium;

    Department of Electrical Engineering, Light and Lighting Laboratory, KU Leuven, Heverlee (Leuven), Belgium;

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