DocumentCode :
76659
Title :
Magnetic Field Energy Harvesting Under Overhead Power Lines
Author :
Sheng Yuan ; Yi Huang ; Jiafeng Zhou ; Qian Xu ; Chaoyun Song ; Thompson, Pete
Author_Institution :
Dept. of Electr. Eng. & Electron., Univ. of Liverpool, Liverpool, UK
Volume :
30
Issue :
11
fYear :
2015
fDate :
Nov. 2015
Firstpage :
6191
Lastpage :
6202
Abstract :
Condition monitoring for overhead power lines is critical for power transmission networks to improve their reliability, detect potential problems in the early stage, and ensure the utilization of the transmitting full capacity. Energy harvesting can be an effective solution for autonomous self-powered wireless sensors. In this paper, a novel bow-tie-shaped coil is proposed, which is placed directly under overhead power lines to scavenge the magnetic field energy. Compared to the conventional method by mounting the energy harvester on the power lines, this approach provides more flexibility and space to power bigger sensors such as the weather station. As the harvesting coil cannot entirely enclose the power lines, the demagnetization factor that is closely related to the core geometry should be considered and optimized. Thus a new bow-tie-shape core is designed to produce a much lower demagnetization factor (hence more power) than that of the conventional solenoid. The selection of core material is studied and found that Mn-Zn ferrite is the most suitable core material because it greatly reduces the eddy current losses and also has high permeability. Experiment results show that the bow-tie coil could have a power density of 1.86 μW/cm3 when placed in a magnetic flux density of 7 μTrms. This value is 15 times greater than the reported results under the same condition. If a longer bow-tie coil with more turns is placed in a magnetic flux density of 11μTrms, the produced power density is 103.5 μW/cm3, which is comparable to a solar panel working during a cloudy day. Thus, the proposed solution is a very efficient and attractive method for harvesting the magnetic field energy for a range of monitoring applications.
Keywords :
demagnetisation; energy harvesting; ferrites; magnetic cores; magnetic fields; magnetic flux; magnetic permeability; manganese compounds; power overhead lines; solenoids; transmission networks; MnaZn(1-a)Fe2O4; autonomous self-powered wireless sensors; bow-tie-shape core; bow-tie-shaped coil; condition monitoring; core geometry; core material; demagnetization factor; eddy current losses; energy harvester; ferrite; harvesting coil; magnetic field energy harvesting; magnetic flux density; overhead power lines; permeability; power density; power transmission networks; solar panel; solenoid; weather station; Demagnetization; Magnetic cores; Magnetic fields; Magnetic flux density; Permeability; Resistance; Solenoids; Condition monitoring; Energy harvesting; condition monitoring; energy harvesting; inductive coil; overhead power line;
fLanguage :
English
Journal_Title :
Power Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8993
Type :
jour
DOI :
10.1109/TPEL.2015.2436702
Filename :
7112162
Link To Document :
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