Title :
Design and analysis of an antenna for batteryless transcranial direct current stimulation devices
Author :
Hosain, Md Kamal ; Kouzani, Abbas Z. ; Jaberzadeh, Shapour
Author_Institution :
Sch. of Eng., Deakin Univ., Waurn Ponds, VIC, Australia
Abstract :
The purpose of this study is to design a low-cost planar Archimedean dipole antenna for batteryless transcranial direct current stimulation devices. The antenna parameters including resonance frequency, radiation efficiency, radiation pattern, and gain are simulated using finite difference time domain based electromagnetic simulation software XFdtd. The proposed antenna is simulated with low-cost FR4 PCB substrate of thickness of 1.6 mm. The antenna is designed with half wavelength of resonant frequency and fed with a matching line. The target frequency band is the industrial, scientific and medical (ISM) band of 915 MHz which is in the simulated band width of 31 MHz (903-934MHz). Moreover, since the bio-effect of specific absorption rate by radio frequency electromagnetic wave for power harvesting is an important concern, we try to find out the safety limit. Thus a quantitative analysis of distributions of electric field and power absorption in anatomical human head model by the far field radio frequency energy received by our designed antenna has been presented.
Keywords :
bioelectric phenomena; biological effects of microwaves; biomedical equipment; brain; dipole antennas; finite difference time-domain analysis; patient treatment; physiological models; planar antennas; XFdtd; anatomical human head model; antenna parameter; bandwidth 31 MHz; bandwidth 903 MHz to 934 MHz; bandwidth 915 MHz; batteryless transcranial direct current stimulation devices; bioeffect; electric field distribution; far field radio frequency energy; finite difference time domain based electromagnetic simulation software; industrial band; low-cost FR4 PCB substrate; low-cost planar Archimedean dipole antenna; matching line; medical band; power absorption; power harvesting; quantitative analysis; radiation efficiency; radiation gain; radiation pattern; radio frequency electromagnetic wave; resonance frequency; resonant frequency; safety limit; scientific band; size 1.6 mm; specific absorption rate; target frequency band; Antenna radiation patterns; Dielectrics; Dipole antennas; Electric fields; Gain; Spirals;
Conference_Titel :
Ultra-Wideband (ICUWB), 2013 IEEE International Conference on
Conference_Location :
Sydney, NSW
DOI :
10.1109/ICUWB.2013.6663817