Wireless Power Transfer for Medical Microsystems by Tianjia Sun, Xiang Xie, Zhihua Wang (auth.)
By Tianjia Sun, Xiang Xie, Zhihua Wang (auth.)
This publication offers an in-depth creation to the most recent applied sciences for designing instant energy move platforms for scientific functions. The authors current a scientific category of a few of the kinds of instant strength move, with a spotlight on inductive strength coupling. Readers will learn how to conquer many demanding situations confronted within the layout a wirelessly powered implant, akin to strength move potency, strength balance, and the scale of energy antennas and circuits. This e-book focuses solely on clinical purposes of the know-how and a batteryless tablet endoscopy procedure and different, genuine wirelessly powered platforms are used as examples of the concepts described.
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Extra info for Wireless Power Transfer for Medical Microsystems
They are the power antennas, the power converters, and the power management circuits. Next, we give a brief introduction to the three components. The three components correspond to Chaps. 3, 4, and 5 respectively. 2 Component Type I: Power Antennas The power antennas are widely adopted in the wireless power transmitters, receivers, and middle power relays. As shown in the Fig. 5, the power antenna in the transmitter excite near-field magnetic field in space. It converts electrical power in circuit to magnetic power in space.
ISSCC (pp. 178–188). 20. Lee, S. , et al. (2010). An inductively powered scalable 32-channel wireless neural recording system-on-a-chip for neuroscience applications. IEEE Transactions on Biomedical Circuits and Systems, 4(6), 360–371. 21. , & et al. (2006). 35 lm FeRAM technology. ISSCC (pp. 1201–1210). References 39 22. , & Geng, Z. (2011). Wireless charger prototype based on strong coupled magnetic resonance. EMEIT (pp. 2252–2254). 23. , & Ning, Z. (2011). Design of transcutaneous coupling wireless charger.
Both the general public and the uncontrolled mean where there is the exposure of individuals who have no knowledge or control of their exposure. Accordingly, the maximum permissible expose in the occupational and controlled environments are much higher than the general public and the uncontrolled environments. 1. According to the definitions of the ‘‘occupational’’ or the ‘‘controlled’’ environments, we suggest the maximum permissible exposure caused by the wireless power transfer for biomedical purposes could be larger than the current 34 2 Systematic Designs IEEE Uncontrolled Environment 2e-1T Magnetic Flux Density (T) 10-1 IEEE Controlled Environment ICNIRP Guidelines for Occupational Environment 10-2 10-3 2e-4T Typical Freq.