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Geometrical Design of a Scalable Overlapping Planar Spiral Coil Array to Generate a Homogeneous Magnetic Field

机译:可扩展重叠平面螺旋线圈阵列产生均匀磁场的几何设计

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We present a design methodology for an overlapping hexagonal planar spiral coil (hex-PSC) array, optimized for creation of a homogenous magnetic field for wireless power transmission to randomly moving objects. The modular hex-PSC array has been implemented in the form of three parallel conductive layers, for which an iterative optimization procedure defines the PSC geometries. Since the overlapping hex-PSCs in different layers have different characteristics, the worst case coil-coupling condition should be designed to provide the maximum power transfer efficiency (PTE) in order to minimize the spatial received power fluctuations. In the worst case, the transmitter (Tx) hex-PSC is overlapped by six PSCs and surrounded by six other adjacent PSCs. Using a receiver (Rx) coil, 20 mm in radius, at the coupling distance of 78 mm and maximum lateral misalignment of 49.1 mm ( $1/surd 3$ of the PSC radius) we can receive power at a PTE of 19.6% from the worst case PSC. Furthermore, we have studied the effects of Rx coil tilting and concluded that the PTE degrades significantly when $theta>60^{circ}$ . Solutions are: 1) activating two adjacent overlapping hex-PSCs simultaneously with out-of-phase excitations to create horizontal magnetic flux and 2) inclusion of a small energy storage element in the Rx module to maintain power in the worst case scenarios. In order to verify the proposed design methodology, we have developed the EnerCage system, which aims to power up biological instruments attached to or implanted in freely behaving small animal subjects' bodies in long-term electrophysiology experiments within large experimental arenas.
机译:我们提出了一种重叠六边形平面螺旋线圈(hex-PSC)阵列的设计方法,该阵列已优化用于创建均匀磁场,以将无线电力传输到随机移动的物体。模块化hex-PSC阵列已以三个平行导电层的形式实现,为此,需要通过迭代优化过程定义PSC几何形状。由于不同层中重叠的hex-PSC具有不同的特性,因此应将最坏情况的线圈耦合条件设计为提供最大功率传输效率(PTE),以最大程度地减小空间接收功率波动。在最坏的情况下,发送器(Tx)hex-PSC被六个PSC重叠,并被其他六个相邻PSC包围。使用半径为20毫米的接收器(Rx)线圈,耦合距离为78毫米,最大横向错位为49.1毫米( $ 1 / surd 3 $ < PSC半径的/ tex> ),我们可以从最坏情况的PSC获得19.6%的PTE功率。此外,我们研究了Rx线圈倾斜的影响,并得出结论,当 $ theta> 60 ^ {circ} $ 时,PTE会显着降低。公式>。解决方案是:1)在异相激励的同时激活两个相邻的重叠十六进制PSC,以产生水平磁通量; 2)在Rx模块中包含一个小型储能元件,以在最坏的情况下保持功率。为了验证所提出的设计方法,我们开发了EnerCage系统,该系统的目的是在大型实验领域内的长期电生理实验中,为附着或植入行为自如的小动物主体的生物仪器加电。

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