DocumentCode
1553824
Title
Power absorption and temperature elevations induced in the human head by a dual-band monopole-helix antenna phone
Author
Bernardi, Paolo ; Cavagnaro, Marta ; Pisa, Stefano ; Piuzzi, Emanuele
Author_Institution
Dept. of Electron. Eng., Univ. "La Sapienza" of Rome, Italy
Volume
49
Issue
12
fYear
2001
fDate
12/1/2001 12:00:00 AM
Firstpage
2539
Lastpage
2546
Abstract
A numerically efficient way to evaluate specific absorption rate (SAR) deposition and temperature elevation inside the head of a user of a cellular phone equipped with a dual-band monopole-helix antenna is proposed. The considered antenna operates at both frequencies (900 and 1800 MHz) employed in global system for mobile communication. The results obtained show that, for a given radiated power, although the maximum SAR value as averaged over 1 g in the brain is higher at 900 MHz than at 1800 MHz, the maximum temperature increase in the brain is higher at 1800 MHz. However, taking into account that the average power levels radiated at the two operating frequencies are different (250 mW at 900 MHz and 125 mW at 1800 MHz), higher temperature elevations are obtained at 900 MHz. In this last case, the temperature increases are of the order of 0.2°C in the ear, and less than 0.1°C in the external brain region close to the phone. When the heating effect due to the contact of the ear and cheek with the phone is also taken into account, it is found that the predominant heating effect in the ear, able to cause temperature increases as high as 1.5°C, is the one due to the phone contact, while SAR deposition plays a significant role only in the heating of the external brain region
Keywords
biological effects of fields; biothermics; brain; cellular radio; dosimetry; finite difference time-domain analysis; 125 mW; 1800 MHz; 250 mW; 900 MHz; FDTD methods; bioheat equation; cellular phone; dosimetry; dual-band monopole-helix antenna; electromagnetic heating; external brain region; far-field radiating properties; finite-difference implementation; graded-mesh approach; human head; land mobile radio; power absorption; specific absorption rate deposition; temperature elevation; Cellular phones; Dual band; Ear; Frequency; GSM; Heating; Humans; Mobile antennas; Specific absorption rate; Temperature;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/22.971647
Filename
971647
Link To Document