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Analytical Modeling and Optimization of Small Solenoid Coils for Millimeter-Sized Biomedical Implants

机译:毫米大小的生物医学植入物的小螺线管的分析建模和优化

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摘要

The new trend towards minimally invasive millimeter-sized and free-floating distributed implants promises to enable emerging applications, such as chronic neural recording with minimal damage to the surrounding tissue. However, wireless power transmission (WPT) to these medical devices is quite challenging. The magnetic field produced by external transmitter (Tx) coils at the position of small implants can be considered homogeneous to separate the optimization of Tx and receiver (Rx) coils for efficient WPT. This paper focuses on the optimization of the solenoid-type Rx coils, which are suitable for this application. We have developed an analytical model of solenoid coils that includes the impact of tissue and coating around the coils, verified through simulations and measurements. Using the proposed model, under a given size restriction and a specific load, we find the optimal operating frequency and coil geometry to maximize a figure of merit (FoM) for the Rx that includes the loaded quality factor and its internal efficiency as well as a factor related to the coupling coefficient. For a millimeter-sized coil, the optimal operating frequency for the Rx and the number of turns are found to be 500 MHz and six, respectively, if the coil is closely wound using AWG36 copper wires. If the pitch is also optimized, then 700 MHz and four turns provide the best FoM for the solenoid Rx.
机译:微创毫米大小,自由浮动的分布式植入物的新趋势有望实现新兴应用,例如慢性神经记录,对周围组织的损害最小。然而,向这些医疗设备的无线电力传输(WPT)颇具挑战性。可以将小型植入物位置处的外部发射器(Tx)线圈产生的磁场视为均匀磁场,以便将Tx和接收器(Rx)线圈的优化分开,以实现有效的WPT。本文重点介绍适用于此应用的螺线管型Rx线圈的优化。我们已经开发出了电磁线圈的分析模型,该模型包括线圈周围组织和涂层的影响,并通过仿真和测量进行了验证。使用建议的模型,在给定的尺寸限制和特定的负载下,我们找到了最佳的工作频率和线圈几何形状,以使Rx的品质因数(FoM)最大化,其中包括负载的品质因数及其内部效率以及与耦合系数有关的系数。对于毫米尺寸的线圈,如果使用AWG36铜线紧密缠绕线圈,则Rx的最佳工作频率和匝数分别为500 MHz和6。如果螺距也得到优化,则700 MHz和四匝将为螺线管Rx提供最佳的FoM。

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