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Development of figure of merits for energy efficient LED lighting systems

机译:研发节能LED照明系统的优点

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Energy has been identified as one of the most important problems during the last few years. While energy generation and new energy resources are critical, energy efficiency in production, transportation and utilization are as important as well. One of those energy efficient technologies may reduce consumed energy in buildings from 20 percent to less than 5 percent. A novel lighting technology has recently been evolved as light emitting diodes (LEDs) that can be over 7–10 times more efficient than conventional-old incandescent lamps. Therefore, LED lighting systems have been rapidly replacing conventional energy-hungry lighting products like incandescent lamps and more recently environmentally hazardous fluorescent lamps. While LEDs may produce large amounts of lumens, they are solid state based technologies similar to computer chips so they have to be kept cool at certain chip junction temperature. The demand for high light output LED systems lead to significant heat generation rates, so that higher heat fluxes result in elevated junction temperatures on LED chips in SSL lighting systems. Moreover, the changes on the junction temperature strongly impact the reliability, lifetime, light output and quality of the light. Because of their simplicity, reliability, low cost and silent operation, passive air-cooling systems are preferred in LED lamps. Passive metal based heat sinks are the main cooling components of typical LED lamps serves for both LEDs and driver electronics. Heat is dissipated generally from finned surfaces to ambient air with primarily convection mechanism and partially radiation. But it requires a large surface area and weight under the limitations of the standardized lamps. Thus, the optimization of the heat sink in an LED system is crucial. Developing figure of merits (FOM) is very important for designers and researchers to find the most optimal solution accounting for critical metrics such as size, weight, cost and performance. In the pres- nt study, thermal, electrical and optical experimental results of various commercial A-line LED lamps are investigated and a number of FOMs are proposed based on the performance, size and weight. Proposed FOMs aim to evaluate different aspects by combining a number of performance metrics. Results show that one can combine and analyze multi-purpose design parameters for thermal, electrical and optical performances and manufacturing for engineers and consumers.
机译:在过去几年中,能源已被确定为最重要的问题之一。尽管能源生产和新能源至关重要,但生产,运输和利用中的能源效率也同样重要。这些节能技术中的一种可以将建筑物中的能耗从20%降低到5%以下。近年来,随着发光二极管(LED)的效率比传统的白炽灯提高了7–10倍,新的照明技术得到了发展。因此,LED照明系统已迅速取代了传统的耗能照明产品,例如白炽灯和最近对环境有害的荧光灯。 LED可能产生大量的流明,但它们是类似于计算机芯片的固态技术,因此必须在一定的芯片结温下保持凉爽。对高光输出LED系统的需求导致显着的发热速率,因此更高的热通量会导致SSL照明系统中LED芯片上的结温升高。此外,结温的变化强烈影响可靠性,寿命,光输出和光质量。由于它们的简单性,可靠性,低成本和静音运行,无源空气冷却系统是LED灯的首选。基于被动金属的散热器是典型的LED灯的主要冷却组件,可同时用于LED和驱动器电子设备。通常通过主要对流机制和部分辐射将热量从散热片表面散发到周围的空气中。但是,在标准化灯的限制下,需要较大的表面积和重量。因此,优化LED系统中的散热器至关重要。对于设计人员和研究人员来说,开发优值指标(FOM)非常重要,因为它可以找到最优化的解决方案,以解决尺寸,重量,成本和性能等关键指标。在当前的研究中,研究了各种商用A线LED灯的热,电和光学实验结果,并根据性能,尺寸和重量提出了许多FOM。拟议的FOM旨在通过结合许多性能指标来评估不同方面。结果表明,可以组合和分析用于热,电和光学性能以及工程师和消费者的制造的多用途设计参数。

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