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SoftCharge: Software Defined Multi-Device Wireless Charging Over Large Surfaces

机译:软充电:软件定义了大曲面的多设备无线充电

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This paper proposes a method for converting a large existing surface into a programmable wireless charger, capable of distributing energy efficiently at multiple locations on demand and charge different types of devices. The key innovation here is to combine magnetic resonance-based energy transfer with the so called concept of 'energy hopping' across wireless inter-connected coils, where the magnetic fields are carefully shaped on the fly. The overall framework, called SoftCharge, has three components: (i) energy tiles (ETs), which are individual programmable coil units that can be attached underneath an existing table with AC mains supply only to the master tile, (ii) energy shaping algorithm executed by the master tile, that shapes the flow of energy over tiles through real-time impedance adjustment combined with selective power blocking, creating optimal energy paths to specific tiles where a device needs to be charged, and (iii) a resonance sensing architecture design and method executed in each given tile that detects the type of device to be charged and its location without any direct feedback. We build a prototype of energy tiles and provide experimental results on SoftCharge charging multiple COTS devices like mobile phones, laptops, tablets, and drones, resulting in a maximum charging rate of 23 W up-to 20 cm over a larger surface.
机译:本文提出了一种将大型现有表面转换成可编程无线充电器的方法,能够在按需的多个位置在多个位置分发能量并充电不同类型的设备。这里的关键创新是将基于磁共振的能量转移与无线连接线圈的所谓“能量跳跃”的能量转移相结合,其中磁场在飞行中小心地形状。称为SoftCharge的整体框架有三个组件:(i)能量瓦片(ETS),它们是单独的可编程线圈单元,可在现有表中附接,仅具有AC主电源的现有表,(ii)能量整形算法由主图块执行,通过实际阻抗调整与选择性电阻调整结合使用实时阻抗调整来塑造能量流,从而为特定瓦片创建最佳能量路径,其中需要收取设备,并(iii)谐振感测架构设计在每个给定的图块中执行的方法,可检测要充电的设备类型及其位置而无需任何直接反馈。我们构建了能量瓷砖的原型,并为软充电提供了实验结果,对移动电话,笔记本电脑,平板电脑和无人机等多个COTS装置进行了充电,从而在较大的表面上产生23 W至20厘米的最大充电率。

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