DocumentCode :
1051916
Title :
Binaural hearing in the presence of a low frequency magnetic field
Author :
Dajani, Hilmi R. ; Kunov, Hans
Author_Institution :
Inst. of Biomed. Eng., Toronto Univ., Ont., Canada
Volume :
41
Issue :
1
fYear :
1994
Firstpage :
12
Lastpage :
16
Abstract :
The authors propose the binaural auditory system as a candidate neural system that may be disrupted by exposure to relatively weak LF magnetic fields. Extracellular currents, induced by time-varying magnetic fields, may change the timing of action potentials in the auditory nerve, thereby disrupting sound localization when interaural time differences are very small. Three subjects were exposed to a 1,000 Hz magnetic field - with a maximum rate of change of 2.3 T/s at the location of the cochlea - while presenting two identical 1,000 Hz tones randomly delayed to the left or right ear by less than 10 μs. The subjects were asked whether the signal was perceived to be displaced to the left or right side of midline. After a total of over 20,000 trials, conducted at different phase angles between the field signal and the tones, there was no clear evidence for a consistent change in performance when the magnetic field was present. This, however, does not rule out an effect at other combinations of magnetic and acoustic frequencies.
Keywords :
biological effects of fields; biomagnetism; hearing; 1000 Hz; action potentials timing; binaural hearing; cochlea; extracellular currents; left ear; neural system disruption; phase angle; randomly delayed tones; relatively weak LF magnetic fields; right ear; small interaural time differences; sound localization disruption; time-varying magnetic fields; Auditory system; Biomedical engineering; Current density; Delay; Design for experiments; Extracellular; Frequency; Humans; Magnetic fields; Timing; Adult; Hearing; Humans; Magnetics; Male; Middle Aged;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.277266
Filename :
277266
Link To Document :
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