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Maximum power transfer tracking in a solar USB charger for smartphones

机译:用于智能手机的太阳能USB充电器中的最大功率传输跟踪

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Battery life of high-end smartphones and tablet PCs is becoming more and more important due to the gap between the rapid increase in power requirements of the electronic components and the slow increase in energy storage capacity of Li-ion batteries. Energy harvesting, on the other hand, is a promising technique that can prolong the battery life without compromising the users' experience with the devices and potentially without the necessity to have access to a wall AC outlet. Such energy harvesting products are available on the market today, but most of them are equipped with only a large battery pack, which exhibits poor capacity utilization during solar energy harvesting. In this paper, we propose and demonstrate that using a supercapacitor instead of a large capacity battery can be beneficial in terms of improving the charging efficiency, and thereby, significantly reducing the charging time. However, this is not a trivial task and gives rise to many problems associated with charging the supercapacitor via the USB charging port. We analyze the USB charging standard and commercial USB charger designs in smartphones to formulate an energy efficiency optimization problem and propose a dynamic programming-based online algorithm to solve the aforesaid problem. Experimental results show up to 34.5% of charging efficiency improvement compared with commercial solar charger designs.
机译:由于电子元件的功率需求的快速增长与锂离子电池储能容量的缓慢增长之间的差距,高端智能手机和平板电脑的电池寿命变得越来越重要。另一方面,能量收集是一种很有前途的技术,可以延长电池寿命,而不会影响用户对设备的使用体验,并且可能不需要使用壁式交流电源插座。这样的能量收集产品今天在市场上有售,但是它们大多数仅配备有大的电池组,在太阳能收集期间其容量利用率较差。在本文中,我们提出并证明,使用超级电容器代替大容量电池可以提高充电效率,从而显着减少充电时间。然而,这不是一件容易的事,并且引起了许多与通过USB充电端口对超级电容器充电有关的问题。我们分析了智能手机中的USB充电标准和商用USB充电器设计,提出了能效优化问题,并提出了一种基于动态编程的在线算法来解决上述问题。实验结果表明,与商用太阳能充电器设计相比,充电效率提高了34.5%。

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