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A New Wireless Power Transmission (WPT) System for Powering Wireless Sensor Networks (WSNs) in Cavity-Based Equipment

机译:用于基于腔的设备中的无线传感器网络(WSN)供电的新型无线功率传输(WPT)系统

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We introduce a new cavity-based wireless power transmission (WPT) system that could be applied to any cavity-based equipment regardless of its shape and size. The proposed scheme provides uniform and selective powering modes. In either powering mode, the field is isotropic, which removes the WPT-restrictions on placement and orientation of the energy harvester. The design process has three main steps, randomness creation, frequency selection, and waveform generation. We validate the proposed scheme in a lab lyophiliser's (freeze-drier) chamber. First, we create a random electromagnetic environment using mechanical stirring. Then, we evaluate this randomness in terms of the average to minimum power ratio. To select an appropriate frequency for the WPT system, we consider randomness and power uniformity. To maintain randomness, we extract the lowest usable frequency of the chamber using a Goodness of Fit test; this is found to be 6 GHz. As for the power uniformity, we plot the standard deviation (STD) of a large sample of the received powers at different locations. This plot is used to select the frequency based on an arbitrary uniformity level in terms of STD. At 6 GHz a 2.5 dB standard deviation is calculated. To enable the selective powering mode, we propose the electromagnetic time reversal (EMTR) technique. We show that EMTR can, theoretically, focus 97% of the energy on 0.5λ-diameter area in an ideally random environment.
机译:我们引入了一种新的基于腔的无线电力传输(WPT)系统,该系统可以应用于任何基于腔的设备,而无论其形状和大小如何。所提出的方案提供了统一和选择性的供电模式。在任一供电模式下,磁场都是各向同性的,这消除了WPT对能量收集器的放置和方向的限制。设计过程包括三个主要步骤,即随机性创建,频率选择和波形生成。我们在实验室的冻干机(冷冻干燥机)室内验证了所提出的方案。首先,我们使用机械搅拌来创建随机的电磁环境。然后,我们根据平均功率与最小功率之比来评估这种随机性。为了为WPT系统选择合适的频率,我们考虑了随机性和功率均匀性。为了保持随机性,我们使用拟合优度测试提取了最低的腔室可用频率。发现是6 GHz。至于功率均匀性,我们绘制了在不同位置的大量接收功率样本的标准偏差(STD)。该图用于根据STD的任意均匀度选择频率。在6 GHz处,计算出2.5 dB标准偏差。为了启用选择性供电模式,我们提出了电磁时间反转(EMTR)技术。我们证明,在理想的随机环境中,EMTR理论上可以将97%的能量集中在0.5λ直径的区域上。

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