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Improving the design of the asymmetrical half-bridge converter without electrolytic capacitor for low-outputvoltage ac-dc LED drivers

机译:用于低输出电压AC-DC LED驱动器的电解电容器而改善不对称半桥转换器的设计

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Due to their high reliability and luminous efficacy, HB-LEDs are being widely used in lighting applications and, therefore, their power supplies are required to have also high reliability and efficiency. A very common approach for achieving this in ac-dc applications is using a two-stage topology. The Power Factor Corrector Boost converter operating in Boundary Conduction Mode is a very common converter used as first stage. It is normally designed without electrolytic capacitors, improving reliability but also increasing the low-frequency ripple of its output voltage. The Asymmetrical Half-Bridge (AHB) is a perfect option for the second stage as it has very high efficiency, it operates at constant switching frequency and its output filter is small (i.e., it can be also easily implemented without electrolytic capacitors). Moreover, the AHB is an excellent candidate for Self-Driven Synchronous Rectification (SD-SR) as its transformer does not have significant dead times. Another important issue regarding the AHB is that its closed loop controller cannot be very fast and it cannot easily cancel the previously-mentioned low-frequency ripple. In this paper, a feed-forward technique, specifically designed to overcome this problem, is presented. The experimental results obtained with a 60-W topology show that efficiency of the AHB may be very high (94.5%) while the inherent control problems related to the AHB can be overcome by the proposed feed-forward technique
机译:由于它们的高的可靠性和发光效率,高亮度发光二极管被广泛地应用于照明应用,因此,它们的电源需要具有高也可靠性和效率。在AC-DC应用中实现这是一个非常常见的方法是采用两级拓扑。在边界导通模式功率因数校正升压转换器的运行是被用作第一阶段中很常见的转换器。它通常设计成没有电解电容,提高了可靠性,而且增加其输出电压的低频纹波。所述不对称半桥(AHB)是第二阶段的理想选择,因为它具有非常高的效率,它工作在恒定的开关频率,其输出滤波器是小的(即,它也可以很容易地无电解电容器实现)。此外,AHB是自驱动同步整流(SD-SR)的优秀候选者作为其变压器没有显著死区时间。关于AHB的另一个重要问题是,它的闭环控制器不能非常快,它不能轻易取消前面提到的低频纹波。在本文中,一个前馈技术,专门设计来克服这个问题,提出了。实验结果,具有60-W拓扑显示求得的AHB的效率可能非常高(94.5%),而相关的AHB固有控制问题可以被克服通过所提出的前馈技术

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