DocumentCode :
1521342
Title :
Electric fields in the human body resulting from 60-Hz contact currents
Author :
Dawson, Trevor W. ; Caputa, Krys ; Stuchly, Maria A. ; Kavet, R.
Author_Institution :
Dept. of Electr. & Comput. Eng., Victoria Univ., BC, Canada
Volume :
48
Issue :
9
fYear :
2001
Firstpage :
1020
Lastpage :
1026
Abstract :
Contact currents occur when a person touches conductive surfaces at different potentials and completes a path for current flow through the body. Such currents provide an additional coupling mechanism to that, due to the direct field effect between the human body and low-frequency external fields. The scalar potential finite difference method, with minor modifications, is applied to assess current density and electric field within excitable tissue and bone marrow due to contact current. An anatomically correct adult model is used, as well as a proportionally downsized child model. Three pathways of contact current are modeled: hand to opposite hand and both feet, hand to hand only, and hand to both feet. Because of its larger size relative to the child, the adult model has lower electric field and current-density values in tissues/unit of contact current. For a contact current of 1 mA [the occupational reference level set by the International Commission on Non-ionizing Protection (ICNIRP)], the current density in brain does not exceed the basic restriction of 10 mA/m 2. The restriction Is exceeded slightly in the spine, and by a factor of more than 2 in the heart. For a contact current of 0.5 mA (ICNIRP general public reference level), the basic restriction of 2 mA/m 2 is exceeded several-fold in the spine and heart. Several microamperes of contact current produces tens of mV/m within the child´s lower arm bone marrow.
Keywords :
bioelectric phenomena; current density; electric fields; health hazards; physiological models; 0.5 mA; 60 Hz; 60-Hz contact currents; International Commission on Non-ionizing Protection; anatomically correct adult model; bone marrow; current flow path; excitable tissue; feet; hand; heart; human body electric fields; occupational reference level; power lines; proportionally downsized child model; spine; Biological system modeling; Bones; Current density; Finite difference methods; Guidelines; Heart; Home appliances; Humans; Power transmission lines; Protection; Adult; Child, Preschool; Computer Simulation; Electric Conductivity; Electricity; Humans; Magnetic Resonance Imaging; Mathematical Computing; Models, Anatomic; Organ Specificity; Radiometry; Sensitivity and Specificity;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.942592
Filename :
942592
Link To Document :
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