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Electrical Time Constant of Cell.

Authors :
Kim, Sun I.
Suh, Tae Suk
Magjarevic, R.
Nagel, J. H.
Furuya, Norio
Kanai, H.
Sakamoto, K.
Kanai, N.
Source :
World Congress on Medical Physics & Biomedical Engineering 2006; 2007, p2677-2681, 5p
Publication Year :
2007

Abstract

The physical properties of tissues are of practical interest in medical engineering and various fields of medicine. In this study, the electrical time constants of living cells, especially erythrocytes, are discussed. β dispersion is often called as structural relaxation caused by cellular structure of tissues. The time constant of β dispersion is affected by the shape of cells, the membrane thickness of cells, the conductivity of intracellular fluid and the orientation of the cells. Therefore, we can get a lot of information such as intra- and extracellular volumes from β dispersion phenomenon. The electrical properties of blood can be analytically calculated by Fricke's equation under some assumptions. The most important assumption is that the shape of erythrocyte in blood approximated to the confocal ellipsoidal spheroid. This model has a single time constant, although the time constant of a real erythrocyte with constant membrane thickness must be distributed. As a result, the difference exists between the admittance locus analytically calculated from Fricke's model and the experimental results obtained from blood. In this study, comparison of the results analytically calculated by Fricke's equation and the results numerically calculated by boundary element method for the model with the constant membrane thickness were compared. From these results, the error of Fricke's results can be estimated. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISBNs :
9783540368397
Database :
Complementary Index
Journal :
World Congress on Medical Physics & Biomedical Engineering 2006
Publication Type :
Book
Accession number :
33178749
Full Text :
https://doi.org/10.1007/978-3-540-36841-0_676