Maze-Based Scalable Wireless Power Transmission Experimental Arena for Freely Moving Small Animals Applications

Saeideh Pahlavan;Shahin Jafarabadi-Ashtiani;S. Abdollah Mirbozorgi
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Abstract

This paper presents an innovative T/Y-maze-based wireless power transmission (WPT) system designed to monitor spatial reference memory and learning behavior in freely moving rats. The system facilitates uninterrupted optical/electrical stimulation and neural recording experiments through the integration of wireless headstages or implants in T/Y maze setups. Utilizing an array of resonators covering the entire underneath of the mazes, the wireless platform ensures scalability with various configurations. The array is designed to ensure a natural localization mechanism to localize the Tx power toward the location of the Rx coil. The system is analyzed and modeled using ANSYS HFSS software to optimize design. The primary goal was to achieve uniform wireless power delivery throughout the mazes through a comparative study of different transmitter (Tx) array configurations, such as float, series, and parallel resonators. The calculated Specific Absorption Rate (SAR) in rat tissue model equals 1.7 W/kg at the power carrier frequency of 13.56 MHz. A prototype of the proposed maze-based WPT design, featuring 8 Tx resonators, a Tx coil and power amplifier, and a headstage power harvesting unit, is successfully implemented and its performance characterized for all three resonator configurations. The implemented T-maze-based WPT system has a total length of 128 cm. In the overlapping Tx resonators configuration, a homogeneity of 94% is achieved for the measured power transfer efficiency at over 30%, while continuously delivering over 60 mW for series configuration.
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面向自由移动小动物应用的基于迷宫的可扩展无线电力传输实验场
本文提出了一种基于T/ y迷宫的无线能量传输系统,用于监测自由运动大鼠的空间参考记忆和学习行为。该系统通过在T/Y迷宫设置中集成无线头台或植入物,促进了不间断的光/电刺激和神经记录实验。利用一组覆盖整个迷宫底部的谐振器,无线平台确保了各种配置的可扩展性。该阵列旨在确保自然定位机制,使Tx功率向Rx线圈的位置定位。利用ANSYS HFSS软件对系统进行分析和建模,优化设计。主要目标是通过对不同发射器(Tx)阵列配置(如浮子、串联和并联谐振器)的比较研究,在整个迷宫中实现均匀的无线电力输送。在功率载波频率为13.56 MHz时,计算得到大鼠组织模型的比吸收率(SAR)为1.7 W/kg。提出的基于迷宫的WPT设计原型,具有8个Tx谐振器,一个Tx线圈和功率放大器,以及一个前置功率收集单元,已成功实现,并在所有三种谐振器配置下对其性能进行了表征。所实现的基于t型迷宫的WPT系统总长度为128厘米。在重叠Tx谐振器配置中,均匀性达到94%,测量功率传输效率超过30%,同时连续输出超过60 mW的串联配置。
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