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A Magnetic-Balanced Inductive Link for the Simultaneous Uplink Data and Power Telemetry

机译:磁平衡感应链路,用于同时进行上行链路数据和功率遥测

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When using the conventional two-coil inductive link for the simultaneous wireless power and data transmissions in implantable biomedical sensor devices, the strong power carrier could overwhelm the uplink data signal and even saturate the external uplink receiver. To address this problem, we propose a new magnetic-balanced inductive link for our implantable glaucoma treatment device. In this inductive link, an extra coil is specially added for the uplink receiving. The strong power carrier interference is minimized to approach zero by balanced canceling of the magnetic field of the external power coil. The implant coil is shared by the wireless power harvesting and the uplink data transmitting. Two carriers (i.e., 2-MHz power carrier and 500-kHz uplink carrier) are used for the wireless power transmission and the uplink data transmission separately. In the experiments, the prototype of this link achieves as high as 65.72 dB improvement of the signal-to-interference ratio (SIR) compared with the conventional two-coil inductive link. Benefiting from the significant improvement of SIR, the implant transmitter costs only 0.2 mW of power carrying 50 kbps of binary phase shift keying data and gets a bit error rate of 1 × 10 ? 7 , even though the coupling coefficient is as low as 0.005. At the same time, 5 mW is delivered to the load with maximum power transfer efficiency of 58.8%. This magnetic-balanced inductive link is useful for small-sized biomedical sensor devices, which require transmitting data and power simultaneously under ultra-weak coupling.
机译:当使用常规的两线圈感应链路同时在植入式生物医学传感器设备中进行无线电力和数据传输时,强大的载流子可能会使上行链路数据信号不堪重负,甚至会使外部上行链路接收器饱和。为了解决这个问题,我们为植入式青光眼治疗设备提出了一种新型的磁平衡感应链接。在该感应链路中,专门为上行链路接收添加了一个额外的线圈。通过平衡抵消外部电源线圈的磁场,可以将强电载波干扰降到接近零。植入线圈由无线功率收集和上行链路数据传输共享。两个载波(即2MHz载波和500kHz上行链路载波)分别用于无线电力传输和上行链路数据传输。在实验中,与传统的两线圈感应链路相比,该链路的原型实现了高达65.72 dB的信噪比(SIR)改进。受益于SIR的显着改善,植入式发射器仅花费0.2 mW的功率即可传输50 kbps的二进制相移键控数据,并且误码率为1×10?如图7所示,即使耦合系数低至0.005。同时,向负载提供5 mW的功率,最大功率传输效率为58.8%。这种磁性平衡的感应链路可用于小型生物医学传感器设备,这些设备需要在超弱耦合下同时传输数据和功率。

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