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Design and implementation of portabl...
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Al-Ali, Abdulwadood A.
Design and implementation of portable impedance analyzers
Record Type:
Electronic resources : Monograph/item
Title/Author:
Design and implementation of portable impedance analyzersby Abdulwadood A. Al-Ali, Brent J. Maundy, Ahmed S. Elwakil.
Author:
Al-Ali, Abdulwadood A.
other author:
Maundy, Brent J.
Published:
Cham :Springer International Publishing :2019.
Description:
xvii, 90 p. :ill. (some col.), digital ;24 cm.
Contained By:
Springer eBooks
Subject:
Impedance spectroscopy.
Online resource:
https://doi.org/10.1007/978-3-030-11784-9
ISBN:
9783030117849$q(electronic bk.)
Design and implementation of portable impedance analyzers
Al-Ali, Abdulwadood A.
Design and implementation of portable impedance analyzers
[electronic resource] /by Abdulwadood A. Al-Ali, Brent J. Maundy, Ahmed S. Elwakil. - Cham :Springer International Publishing :2019. - xvii, 90 p. :ill. (some col.), digital ;24 cm.
Chapter 1. Bio-impedance measurement and applications -- Chapter 2. Direct impedance measurement design techniques -- Chapter 3. In-direct impedance measurement design techniques -- Chapter 4. Implementation examples -- Chapter 5. Conclusion.
The increasing interest in the bio-impedance analysis in various fields has increased the demand for portable and low-cost impedance analyzers that can be used in the field. Simplifying the hardware is crucial to maintaining low-cost and portability, but this is not an easy task due to the need for accurate phase and magnitude measurements. This book discusses different portable impedance analyzers design techniques. Additionally, complete designs using two different approaches are reported. The first approach utilizes a commercially available single chip solution while the second one is based on a new measurement technique that eliminates the need to measure the phase by using a software algorithm to extract it from the magnitude information. Applications to the measurement of fruit bio-impedance are emphasized and compared with measurements from professional stand-alone impedance analyzers. Offers a review of the most common portable bio-impedance analyzer designs Provides a detailed implementation and design procedure for two different portable bio-impedance analyzers Describes some interesting bio-impedance applications in agriculture and food quality monitoring along with experimental results obtained using the proposed designs.
ISBN: 9783030117849$q(electronic bk.)
Standard No.: 10.1007/978-3-030-11784-9doiSubjects--Topical Terms:
455660
Impedance spectroscopy.
LC Class. No.: QD116.I57 / A435 2019
Dewey Class. No.: 543.4
Design and implementation of portable impedance analyzers
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Chapter 1. Bio-impedance measurement and applications -- Chapter 2. Direct impedance measurement design techniques -- Chapter 3. In-direct impedance measurement design techniques -- Chapter 4. Implementation examples -- Chapter 5. Conclusion.
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The increasing interest in the bio-impedance analysis in various fields has increased the demand for portable and low-cost impedance analyzers that can be used in the field. Simplifying the hardware is crucial to maintaining low-cost and portability, but this is not an easy task due to the need for accurate phase and magnitude measurements. This book discusses different portable impedance analyzers design techniques. Additionally, complete designs using two different approaches are reported. The first approach utilizes a commercially available single chip solution while the second one is based on a new measurement technique that eliminates the need to measure the phase by using a software algorithm to extract it from the magnitude information. Applications to the measurement of fruit bio-impedance are emphasized and compared with measurements from professional stand-alone impedance analyzers. Offers a review of the most common portable bio-impedance analyzer designs Provides a detailed implementation and design procedure for two different portable bio-impedance analyzers Describes some interesting bio-impedance applications in agriculture and food quality monitoring along with experimental results obtained using the proposed designs.
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Engineering (Springer-11647)
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EB QD116.I57 A316 2019 2019
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