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Optimization of multichip white solid-state lighting source with four or more LEDs

机译:具有四个或更多LED的多芯片白色固态照明源的优化

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Polychromatic solid-state lamps that produce white light by additive mixing of the emissions from primary colored light emitting diodes (LEDs) should have a higher luminous efficiency that those using phosphors. These lamps require emission spectra that feature an optimal trade-off between luminous efficacy and color rendering. We developed a mathematical technique that allows us to maximize the luminous efficacy and general color rendering index (CRI) for the white solid-state lamp composed of an arbitrary number of primary LEDs with given spectra. We use this methods in order to compare the optimal efficacy and general CRI for 4 and 5 primary LEDs with that for 2 and 3 LEDs. For a particular color temperature, the required number of primary LEDs depends on the trade-off between efficacy and general CRI. The quadrichromatic lamp is shown to meet requirements for most practical applications. Quintichromatic lamps and lamps with a higher number of primary LEDs yield negligible benefit in improving color rendering. However, quintichromatic LED lamps are capable of producing quasi-continuous spectra that might meet special lighting needs.
机译:通过从初级彩色发光二极管(LED)的添加剂混合产生白光的多色固态灯应该具有更高的发光效率,即使用磷光体的发光效率。这些灯需要发射光谱,其在发光效率和显色之间具有最佳折衷。我们开发了一种数学技术,其允许我们最大化由具有给定光谱的任意数量的主LED组成的白色固态灯的发光功效和一般显色指数(CRI)。我们使用该方法,以比较4和5个主要LED的最佳效能和一般CRI,具有2和3个LED。对于特定色温,所需数量的主要LED取决于疗效和一般CRI之间的权衡。 Quadroicroom灯显示为满足大多数实际应用的要求。具有较多初级LED的Quintichromatic灯和灯具在改善颜色渲染方面可以忽略不计。然而,Quintichromatic LED灯能够产生可能满足特殊照明需求的准连续光谱。

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