CD-MEMS, National Institute for Astrophysics, optics and Electronics, INAOE, Puebla 72840, Mexico.
Optics Research Center, CIO A. C., León 37150, Mexico.
Sensors (Basel). 2020 Mar 10;20(5):1525. doi: 10.3390/s20051525.
In this paper, an alternative strategy for the design of a bidirectional inductive power transfer (IPT) module, intended for the continuous monitoring of cardiac pressure, is presented. This new integrated implantable medical device (IMD) was designed including a precise ventricular pressure sensor, where the available implanting room is restricted to a 1.8 × 1.8 cm area. This work considers a robust magnetic coupling between an external reading coil and the implantable module: a three-dimensional inductor and a touch mode capacitive pressure sensor (TMCPS) set. In this approach, the coupling modules were modelled as RCL circuits tuned at a 13.56 MHz frequency. The analytical design was validated by means of Comsol Multiphysics, CoventorWare, and ANSYS HFSS software tools. A power transmission efficiency (PTE) of 94% was achieved through a 3.5 cm-thick biological tissue, based on high magnitudes for the inductance (L) and quality factor (Q) components. A specific absorption rate (SAR) of less than 1.6 W/Kg was attained, which suggests that this IPT system can be implemented in a safe way, according to IEEE C95.1 safety guidelines. The set of inductor and capacitor integrated arrays were designed over a very thin polyimide film, where the 3D coil was 18 mm in diameter and approximately 50% reduced in size, considering any conventional counterpart. Finally, this new approach for the IMD was under development using low-cost thin film manufacturing technologies for flexible electronics. Meanwhile, as an alternative test, this novel system was fabricated using a discrete printed circuit board (PCB) approach, where preliminary electromagnetic characterization demonstrates the viability of this bidirectional IPT design.
本文提出了一种用于连续监测心脏压力的双向感应式功率传输 (IPT) 模块的设计替代方案。这个新的集成植入式医疗设备 (IMD) 设计包括一个精确的心室压力传感器,可用的植入空间限制在 1.8×1.8 厘米的区域内。这项工作考虑了外部读取线圈和植入模块之间的强大磁耦合:一个三维感应器和一个触摸模式电容压力传感器 (TMCPS) 套件。在这种方法中,耦合模块被建模为调谐到 13.56 MHz 频率的 RCL 电路。通过 Comsol Multiphysics、CoventorWare 和 ANSYS HFSS 软件工具对分析设计进行了验证。通过 3.5 厘米厚的生物组织实现了 94%的功率传输效率 (PTE),这得益于电感 (L) 和品质因数 (Q) 分量的高数值。特定吸收率 (SAR) 低于 1.6 W/Kg,这表明根据 IEEE C95.1 安全指南,这个 IPT 系统可以以安全的方式实现。感应器和电容器集成阵列的设计是在非常薄的聚酰亚胺薄膜上进行的,其中 3D 线圈的直径为 18 毫米,尺寸减小了约 50%,与任何传统线圈相比都是如此。最后,这种新的 IMD 方法正在使用低成本的薄膜制造技术进行开发,用于柔性电子。同时,作为替代测试,这个新系统是使用离散印刷电路板 (PCB) 方法制造的,初步的电磁特性表明这种双向 IPT 设计是可行的。