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A Design Methodology for Smart LED Lighting Systems Powered By Weakly Regulated Renewable Power Grids

机译:弱调节可再生电网驱动的智能LED照明系统的设计方法

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The increasing use of intermittent renewable energy sources to decarbonize electric power generation is expected to introduce dynamic instability to the mains. This situation is of particular concern for mini-grids or isolated grids in which wind and/or solar power sources are the dominant or the sole power sources. In this paper, we utilize the photo-electro-thermal theory to develop a design methodology for LED lighting systems for weakly regulated voltage sources, with the objectives of minimizing the fluctuation of the human luminous perception and adopting reliable LED driver with long lifetime and robustness against extreme weather conditions. The proposed LED system, practically verified in a 10 kVA small power grid driven by an ac voltage source and a wind energy simulator, can be considered as a smart load with its load demand following the power generation. A typical swing of 40 V in the mains will cause only 15% actual light variation in a 132 W LED system when compared with 40% change in 150 W high-pressure-sodium lamp system. The design methodology enables future large-scale LED systems to be designed as a new generation of smart loads that can adapt to the voltage and power fluctuations arising from the intermittent nature of renewable energy sources.
机译:越来越多地使用间歇性可再生能源来使发电脱碳,这将给电网带来动态不稳定。对于其中风力和/或太阳能为主要或唯一电源的微型电网或隔离电网,这种情况尤为令人关注。在本文中,我们利用光电热理论为弱调节电压源的LED照明系统开发了一种设计方法,其目的是最大程度地减少人类发光感知的波动,并采用具有长寿命和鲁棒性的可靠LED驱动器应对极端天气条件。所提出的LED系统在由交流电压源和风能模拟器驱动的10 kVA小型电网中进行了实际验证,可以将其视为智能负载,其负载需求随发电而变化。与150 W高压钠灯系统中40%的变化相比,132 W LED系统中电源中典型的40 V摆幅将仅导致15%的实际光变化。该设计方法使未来的大型LED系统可以设计为新一代智能负载,可以适应由于可再生能源的间歇性而引起的电压和功率波动。

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