DocumentCode :
1338592
Title :
A 3-D Hybrid Finite Element Model to Characterize the Electrical Behavior of Cutaneous Tissues
Author :
Hartinger, Alzbeta E. ; Guardo, Robert ; Kokta, Victor ; Gagnon, Hervé
Author_Institution :
Inst. de Genie Biomed., Ecole Polytech. de Montreal, Montreal, QC, Canada
Volume :
57
Issue :
4
fYear :
2010
fDate :
4/1/2010 12:00:00 AM
Firstpage :
780
Lastpage :
789
Abstract :
Finite element modeling of the skin is useful to study the electrical properties of cutaneous tissues and gain a better understanding of the current distribution within the skin. Such an epithelial finite element model comprises extremely thin structures like cellular membranes, nuclear membranes, and the extracellular fluid. Meshing such narrow spaces considerably increases the number of elements leading to longer computing time. This also greatly reduces the number of epithelial cells that can be assembled before reaching computing limitations. To avoid the problem of meshing extremely narrow spaces while unnecessarily increasing the number of elements, we present a new hybrid modeling approach to develop a 3-D finite element model of the skin. This skin model comprises all skin layers, different lesion types, and a complete electrode model. It is used to analyze the complex electrical behavior of normal and malignant skin tissues. The current distribution within this model is also simulated to assess the depth of field achievable by an electrical impedance tomography system at different operating frequencies.
Keywords :
bioelectric phenomena; biomembranes; cancer; cellular biophysics; electric impedance imaging; finite element analysis; patient diagnosis; skin; 3D hybrid finite element model; cellular membranes; complete electrode model; current distribution; cutaneous tissues; electrical impedance tomography system; electrical properties; epithelial cells; extracellular fluid; lesion types; meshing; nuclear membranes; skin cancer; Biomedical instrumentation; electrical impeda-nce tomography; finite element method (FEM) model; skin cancer; Cellular Structures; Electric Impedance; Epidermis; Finite Element Analysis; Histocytochemistry; Humans; Image Processing, Computer-Assisted; Melanoma; Models, Biological; Skin Neoplasms; Skin Physiological Phenomena; Tomography;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2009.2036371
Filename :
5339173
Link To Document :
بازگشت