Circuit Parameters of a Receiver Coil Using a Wiegand Sensor for Wireless Power Transmission
We previously demonstrated an efficient method of wireless power transmission using a Wiegand sensor for the application in implantable medical devices. The Wiegand sensor has an advantage in inducing sharp pulse voltage independent of the drive frequency. A down-sized receiver coil for wireless pow...
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2019-06-01
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doaj-c7f241cdb4994396be006bb76393bbae2020-11-24T21:15:54ZengMDPI AGSensors1424-82202019-06-011912271010.3390/s19122710s19122710Circuit Parameters of a Receiver Coil Using a Wiegand Sensor for Wireless Power TransmissionKatsuki Takahashi0Tsutomu Yamada1Yasushi Takemura2Electrical and Computer Engineering, Yokohama National University, Yokohama 240-8501, JapanElectrical and Computer Engineering, Yokohama National University, Yokohama 240-8501, JapanElectrical and Computer Engineering, Yokohama National University, Yokohama 240-8501, JapanWe previously demonstrated an efficient method of wireless power transmission using a Wiegand sensor for the application in implantable medical devices. The Wiegand sensor has an advantage in inducing sharp pulse voltage independent of the drive frequency. A down-sized receiver coil for wireless power transmission within blood vessels has been prepared, which enables medical treatment on any part of a human body. In order to develop practical applications of the Wiegand sensor as implantable medical devices, the circuit design is important. The circuit parameters in the circuit model of the Wiegand sensor must be clearly identified. However, a fast reversal of magnetization of the magnetic wire used in the Wiegand sensor, known as a large Barkhausen jump, and the induced nonlinear pulse signal make the inductance of the receiver coil time-dependent and inconsistent as conventionally considered in circuit analysis. In this study, the voltage and current responses of a wire-core coil are analyzed, and the time-dependent inductance is determined. The results showed that the inductance depends on the magnetization state of the wire, which can be negative during the fast reversal of magnetization.https://www.mdpi.com/1424-8220/19/12/2710wiegand sensormagnetization reversallarge Barkhausen jumpFeCoV wire |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Katsuki Takahashi Tsutomu Yamada Yasushi Takemura |
spellingShingle |
Katsuki Takahashi Tsutomu Yamada Yasushi Takemura Circuit Parameters of a Receiver Coil Using a Wiegand Sensor for Wireless Power Transmission Sensors wiegand sensor magnetization reversal large Barkhausen jump FeCoV wire |
author_facet |
Katsuki Takahashi Tsutomu Yamada Yasushi Takemura |
author_sort |
Katsuki Takahashi |
title |
Circuit Parameters of a Receiver Coil Using a Wiegand Sensor for Wireless Power Transmission |
title_short |
Circuit Parameters of a Receiver Coil Using a Wiegand Sensor for Wireless Power Transmission |
title_full |
Circuit Parameters of a Receiver Coil Using a Wiegand Sensor for Wireless Power Transmission |
title_fullStr |
Circuit Parameters of a Receiver Coil Using a Wiegand Sensor for Wireless Power Transmission |
title_full_unstemmed |
Circuit Parameters of a Receiver Coil Using a Wiegand Sensor for Wireless Power Transmission |
title_sort |
circuit parameters of a receiver coil using a wiegand sensor for wireless power transmission |
publisher |
MDPI AG |
series |
Sensors |
issn |
1424-8220 |
publishDate |
2019-06-01 |
description |
We previously demonstrated an efficient method of wireless power transmission using a Wiegand sensor for the application in implantable medical devices. The Wiegand sensor has an advantage in inducing sharp pulse voltage independent of the drive frequency. A down-sized receiver coil for wireless power transmission within blood vessels has been prepared, which enables medical treatment on any part of a human body. In order to develop practical applications of the Wiegand sensor as implantable medical devices, the circuit design is important. The circuit parameters in the circuit model of the Wiegand sensor must be clearly identified. However, a fast reversal of magnetization of the magnetic wire used in the Wiegand sensor, known as a large Barkhausen jump, and the induced nonlinear pulse signal make the inductance of the receiver coil time-dependent and inconsistent as conventionally considered in circuit analysis. In this study, the voltage and current responses of a wire-core coil are analyzed, and the time-dependent inductance is determined. The results showed that the inductance depends on the magnetization state of the wire, which can be negative during the fast reversal of magnetization. |
topic |
wiegand sensor magnetization reversal large Barkhausen jump FeCoV wire |
url |
https://www.mdpi.com/1424-8220/19/12/2710 |
work_keys_str_mv |
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