TY - JOUR
T1 - Eddy loss analysis and parameter optimization of the WPT system in seawater
AU - Zhang, Ke Han
AU - Zhu, Zheng Biao
AU - Du, Luo Na
AU - Song, Bao Wei
N1 - Publisher Copyright:
© 2018 KIPE.
PY - 2018/5
Y1 - 2018/5
N2 - Magnetic resonance wireless power transfer (WPT) in the marine environment can be utilized in many applications. However, energy loss in seawater through eddy loss (EL) is another consideration other than WPT in air. Therefore, the effect of system parameters on electric field intensity (EFI) needs to be measured and ELs calculated to optimize such a system. In this paper, the usually complicated analytical expression of EFI is simplified to the product of frequency, current, coil turns, and a coefficient to analyze the eddy current loss (ECL). Moreover, as the calculation of ECL through volume integral is time-consuming, the equivalent eddy loss impedance (EELI) is proposed to help designers determine the optimum parameters quickly. Then, a power distribution model in seawater is conceived based on the introduction of EELI. An optimization flow chart is also proposed according to this power distribution model, from which a prototype system is developed which can deliver 100 W at 90% efficiency with a gap of 30 mm and a frequency of 107.1 kHz.
AB - Magnetic resonance wireless power transfer (WPT) in the marine environment can be utilized in many applications. However, energy loss in seawater through eddy loss (EL) is another consideration other than WPT in air. Therefore, the effect of system parameters on electric field intensity (EFI) needs to be measured and ELs calculated to optimize such a system. In this paper, the usually complicated analytical expression of EFI is simplified to the product of frequency, current, coil turns, and a coefficient to analyze the eddy current loss (ECL). Moreover, as the calculation of ECL through volume integral is time-consuming, the equivalent eddy loss impedance (EELI) is proposed to help designers determine the optimum parameters quickly. Then, a power distribution model in seawater is conceived based on the introduction of EELI. An optimization flow chart is also proposed according to this power distribution model, from which a prototype system is developed which can deliver 100 W at 90% efficiency with a gap of 30 mm and a frequency of 107.1 kHz.
KW - Eddy loss
KW - Equivalent eddy loss impedance
KW - Power distribution model
UR - http://www.scopus.com/inward/record.url?scp=85047485938&partnerID=8YFLogxK
U2 - 10.6113/JPE.2018.18.3.778
DO - 10.6113/JPE.2018.18.3.778
M3 - 文章
AN - SCOPUS:85047485938
SN - 1598-2092
VL - 18
SP - 778
EP - 788
JO - Journal of Power Electronics
JF - Journal of Power Electronics
IS - 3
ER -