DocumentCode :
3095619
Title :
Investigation of wireless power transfer in through-wall applications
Author :
Young-Sik Seo ; Hughes, Zachariah ; Hoang, M. ; Isom, D. ; Minh Nguyen ; Rao, Smitha ; Chiao, J.-C.
Author_Institution :
Univ. of Texas at Arlington, Arlington, TX, USA
fYear :
2012
fDate :
4-7 Dec. 2012
Firstpage :
403
Lastpage :
405
Abstract :
In this work, we proposed a through-wall wireless power transfer system and investigated effects of various wall materials. The power transfer system was based on inductive coupling of metal coils at 1.3-MHz resonance. Softwood lumber, concrete brick and drywall with insulation filling were tested at two different thicknesses. Two sets of coils, each set consisting of two coils with identical dimensions, having radii of 5 and 15 cm were utilized. Each experiment was conducted with sequential tuning in receiver circuit, operating frequency and in transmitter circuit to reach maximum output power or maximum power transfer efficiency. The output power and transfer efficiency as well as their changes were obtained before and after tuning for different media and thicknesses. It is concluded that the power attenuation with spacing distance dominates the output power and transfer efficiency, while tuning could counteract the parasitic effects in the material and recover the power lost in deviation from resonance. The power attenuation with distance requires design considerations in coil dimensions. With larger coils, more power can be collected through thicker walls and the system tolerates more variation in wall thickness. Tests on randomly chosen walls in our laboratory building were conducted to validate the system performance.
Keywords :
coils; inductive power transmission; insulation; coil dimensions; concrete brick; drywall; frequency 1.3 MHz; inductive coupling; insulation filling; maximum power transfer efficiency; metal coils; parasitic effects; power attenuation; power lost; radius 15 cm; radius 5 cm; receiver circuit; sequential tuning; softwood lumber; spacing distance; through-wall wireless power transfer system; transmitter circuit; wall materials; wall thickness; Capacitance; Coils; Materials; Power generation; Transmitters; Tuning; Wireless communication; Inductive coupling; power efficiency and transfer; wireless power transfer;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Microwave Conference Proceedings (APMC), 2012 Asia-Pacific
Conference_Location :
Kaohsiung
Print_ISBN :
978-1-4577-1330-9
Electronic_ISBN :
978-1-4577-1331-6
Type :
conf
DOI :
10.1109/APMC.2012.6421612
Filename :
6421612
Link To Document :
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