Adaptive Compensation Loop Control Method for Dynamic Range Wireless Power Transfer in Endoscopic Capsules Applications

作者

  • Hao Zhang 1 School of Electronic and Optical Engineering Nanjing University of Science and Technology, Nanjing, 210094, China, 2 Department of Electrical and Computer Engineering National University of Singapore, Singapore, 117583, Singapore
  • Zheng Zhon Department of Electrical and Computer Engineering National University of Singapore, Singapore, 117583, Singapore
  • Wen Wu School of Electronic and Optical Engineering Nanjing University of Science and Technology, Nanjing, 210094, China

关键词:

Adaptive compensation loop, dynamic range, enhanced nMOSFET, MPPC, resistor feedback network, WEC, WPT

摘要

In this paper, an adaptive compensation loop control method is presented for dynamic range wireless power transfer (WPT) based wireless endoscopic capsules (WEC) applications. Rather than a fixed external resistor feedback network utilized in the DC-DC converter with maximum power point control (MPPC) capability, an enhanced nMOSFET based adaptive compensation loop is introduced to extract maximum power transfer from the RF-DC rectifier within overall operational power range of the WEC system. Simulation in ADS and measurement among three rectifiers with an LDO, a fixed external resistor feedback network and an adaptive compensation loop control are performed respectively to achieve a steady 3.3V on a resistive load of 100 omega, which validates that the proposed adaptive compensation loop control method realizes an extended dynamic power range with a lower limit of 21.5dBm to realize a minimum 100mW load DC power delivery for the IPT enabled WEC system.

##plugins.generic.usageStats.downloads##

##plugins.generic.usageStats.noStats##

参考

G. Tortora, F. Mulana, G. Ciuti, P. Dario, and A. Menciassi, “Inductive-based wireless power recharging system for an innovative endoscopic capsule,” Energies, vol. 8, no. 9, pp. 10315-10334, 2015.

J. Zhiwei, Y. Guozheng, W. Zhiwu, and L. Hua, “Efficiency optimization of wireless power transmission systems for active capsule endoscopes,” Physiol. Meas., vol. 32, no. 10, p. 1561, 2011.

T. A. Circuit, “Spx 3819 Electrical Characteristics,” no. 510, 2008.

Linear Technology, “LTC3129: 15V, 200mA Synchronous Buck-Boost DC/DC Converter with 1.3µA Quiescent Current,” pp. 1-30, 2013.

T.-W. Yoo and K. Chang, “Theoretical and experimental development of 10 and 35 GHz rectennas,” IEEE Trans. Microw. Theory Tech., vol. 40, no. 6, pp. 1259-1266, 1992.

E. Falkenstein, M. Roberg, and Z. Popovic, “Lowpower wireless power delivery,” IEEE Trans. Microw. Theory Tech., vol. 60, no. 7, pp. 2277- 2286, 2012.

Datasheet of Si2342DS: N-Channel 8V (D-S) MOSFET, Vishay Siliconix.

H. Zhang, Z. Zhong, and W. Wu, “Extracting maximum efficiency of wireless power transfer in endoscopic capsule applications,” in Applied Computational Electromagnetics Society Symposium (ACES), 2017 International, pp. 1-2, 2017.

##submission.downloads##

已出版

2021-07-25

栏目

General Submission