Location via proxy:   [ UP ]  
[Report a bug]   [Manage cookies]                
skip to main content
10.1145/3035012.3035025acmotherconferencesArticle/Chapter ViewAbstractPublication PagesicbcbConference Proceedingsconference-collections
research-article

A new focusing excitation method based on magnetic induction tomography

Published: 06 January 2017 Publication History

Abstract

Magnetic induction tomography (MIT) is a new and non-invasive reconstruction method which reconstructs the conductivity distribution information within the target object by the eddy current signal. Due to the low conductivity for human, the eddy current field reflecting human conductivity is so weak. On the basis of analyzing magnetic field and excitation magnetic field, the conical spiral coil is proposed which can produce the focusing magnetic field. The measurement model with the target object whose parameters are near to the tissue is established for the focusing excitation coil. The primary field and the eddy current field produced within the target object are calculated and analyzed comparatively. The results show that the proposed focusing excitation coils that produces the excitation field and the eddy current field have the focusing effect, that is to say it can produce the focusing eddy current field, which provides an effect method for MIT from the eddy current source.

References

[1]
H Griffiths. Magnetic induction tomography{J}. Meas. Sci. Technol., 2001, 12(1): 1126--1131.
[2]
Lv Yi, Wang Xu, Yang Dan, Jin Jingjing. The new mearsuring method of eddy current signal of biological tissue in magnetic induction tomography.{J},Journal of Electronics & Information Technology,2011,33(9),2258--2262.
[3]
Eroglu, H.H., Ankara Turkey, and Eyuboglu, B.M. Induced current magnetic resonance electrical impedance tomography with z-gradient coil{C}. 2014 36th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC), 2014, 1143--1146.
[4]
Peter P. Tarjan, Richard Mcfee. Electrodeless measurements of the effective resistivity of the human torso and head by magnetic induction{J}, IEEE Trans Biomed Eng, 1968, 15(4), 266--278.
[5]
Al-Zeibak S, Saunders N H. A feasibility study of in vivo electromagnetic imaging{J}. Phy. Med. Biol., 1993, 38(1): 151--160.
[6]
Wuliang Yin, Anthony J. Peyton. Sensitivity formulation including velocity effects for electromagnetic induction system{J}. IEEE Transactions on Instrument and measurement, 2010, 46(5): 1172--1175.
[7]
S Watson, R J Williams, W Gough, H Griffiths. A magnetic induction tomography system for samples with conductivities below 10 S/m{J}. Meas. Sci. Technol., 2008, 19(4): 1--8.
[8]
H Scharfetter. Single-shot dual frequency excitation for magnetic induction tomography (MIT) at frequencies above 1 MHz{C}. International Conference on Electrical Bioimpedance., Gainesville: 2010.
[9]
S Sapetsky, V Cherepenin. A Korjenevsky et al. Development of the system for visualization of electric conductivity distribution in human brain and its activity by the magnetic induction tomography (MIT) method{C}. International Conference on Electrical Bioimpedance, 2010.
[10]
Li Shijun, Qin Mingxin, Dong Xiuzhen etc. Non contact induction of brain impedance electrical tomography system design {J}, Journal of China medical physics.
[11]
Wang Tao, Magnetic induction tomography basic research {D}, China Electrical Research Institute, 2006
[12]
He Wei, Luo Ciyong, Xu Zheng etc. Electrical impedance imaging principle {M}, Beijing: Science Press.2009
[13]
Luo Haijun, He Wei, Xu zheng etc. Study on single channel magnetic induction imaging technologybased on synchronous demodulation{J}, Instruments and Apparatuses Journal, 2012, 33(4), 899--904.
[14]
Teniou S., Meribout, M., and Al-Wahedi K. A Near-Infrared-Based Magnetic Induction Tomography Solution to Improve the Image Reconstruction Accuracy in Opaque Environments{J}. IEEE Transactions on Magnetics. 2013, 49(4), 1361--1366.
[15]
Qian Zhao, Guang Chen. Numerical approach for the sensitivity of a high-frequency magnetic induction tomography system based on boundary elements and perturbation method{J}. Meas, Sci. Technol0740. 2013(24): 1--9.
[16]
De Geeter N., Crevecoeur G., and Dupre, L. A Numerical Study on Conductivity Estimation of the Human Head in the Low Frequency Domain Using Induced Current MR Phase Imaging EIT With Multiple Gradients{J}, EEE Transactions on Magnetics, 2013, 49(9), 5004--5010.
[17]
Zulkarnay Zakaria, Ibrahim Balkhis, and Sazali Yaacob. Evaluation on the Sensitivity of Tri-Coil Sensor Jig for 3D Image Reconstruction in Magnetic Induction Tomography{C}. 2013 UK Sim 15th International Conference on Computer Modeling and Simulation, 2013: 768--773.
[18]
Xu Wang, Yang Xuan, and Dan Yang. A double frequency magnetic induction tomography system: Analysis and simulations{C}, 2013 Ninth International Conference on Natural Computation (ICNC), 2013, 1199--1203.
[19]
Jin Jianming.The electromagnetic field finite element method.{M}. Xi'an: Xi'an Electronic and Science University press.
[20]
Yuqing Wan, Michiro Neigishi, and R Todd Constable. A feasibility study of magnetic resonance driven electrical impedance tomography using a phantom{J}. Physiol. Meas. 2013, 34, 623--644.

Index Terms

  1. A new focusing excitation method based on magnetic induction tomography

    Recommendations

    Comments

    Information & Contributors

    Information

    Published In

    cover image ACM Other conferences
    ICBCB '17: Proceedings of the 5th International Conference on Bioinformatics and Computational Biology
    January 2017
    72 pages
    ISBN:9781450348270
    DOI:10.1145/3035012
    • Conference Chair:
    • David Zhang
    Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

    Publisher

    Association for Computing Machinery

    New York, NY, United States

    Publication History

    Published: 06 January 2017

    Permissions

    Request permissions for this article.

    Check for updates

    Author Tags

    1. conductivity
    2. eddy current signal
    3. excitation coil
    4. magnetic field focusing
    5. magnetic induction tomography (MIT)

    Qualifiers

    • Research-article

    Conference

    ICBCB '17

    Contributors

    Other Metrics

    Bibliometrics & Citations

    Bibliometrics

    Article Metrics

    • 0
      Total Citations
    • 72
      Total Downloads
    • Downloads (Last 12 months)5
    • Downloads (Last 6 weeks)0
    Reflects downloads up to 23 Sep 2024

    Other Metrics

    Citations

    View Options

    Get Access

    Login options

    View options

    PDF

    View or Download as a PDF file.

    PDF

    eReader

    View online with eReader.

    eReader

    Media

    Figures

    Other

    Tables

    Share

    Share

    Share this Publication link

    Share on social media