reduction of the electric field in between the coils of
more than 60% if compared to the regular system
without slab.
As a final comment to this section, it is important
to underline that shielding, both for increasing the
power transmission and to reduce exposure to
electromagnetic field is a fundamental issue and will
be one of the most important design topic in the near
future, when WPT systems will become commonly
available.
Different frequencies are subject to different
limits (see for instance the ICNIRP guidelines) and
require different approaches and different shielding
philosophies, ranging from ferromagnetic and
conductive shields to active coils and metamaterials.
5 CONCLUSIONS
The present contribution shows how the powerline
communication and wireless power transfer
technology can work together to achieve both data
and power transfer, with little modification to be done
on either systems (if considered as stand-alone).
Application to electric and hybrid vehicles is
straightforward, and will see in the near future strong
investments and research activity.
REFERENCES
Abul Masrur, M., & Cox, M. (2019). A Unique Military
Application of Wireless Power Transfer: Wireless
Charging Through a Vehicle Seat With Simplified
Design Considerations. IEEE Industrial Electronics
Magazine, 13 (4), 19 – 30.
Ahn, S., Chun, Y., Cho, D.-H., & Kim, J. (2011). Wireless
power transfer technology in on-line electric vehicle,
Journal of Korean Institute of Electromagnetics and
Science, 11 (3), 174 – 182.
Amrani, O. Barmada, S., Tucci, M., Raugi, M., &
Maryanka, Y. (2013). PLC Systems for Electric
Vehicles and Smart Grid Applications. IEEE
International Symposium on Power-Line
Communications and Its Applications.
Barmada, S., Gaggelli, A., Masini, P., Musolino, A., Rizzo,
R., Raugi, M., & Tucci, M. (2008) Design of a PLC
system onboard trains: Selection and analysis of the
PLC channel. IEEE International Symposium on
Power-Line Communications and Its Applications
(ISPLC).
Barmada, S., & Tucci, M. (2015) Optimization of a
Magnetically Coupled Resonators System for Power
Line Communication Integration”, IEEE Wireless
Power Transfer Conference (WPTC), pp. 1 -3.
Barmada, S., Dionigi, M., Tucci, M., & Mezzanotte, P.
(2017). Design and Experimental Characterization of a
Combined WPT - PLC System. Wireless Power
Transfer, Cambridge, 4 (2), 160 – 170.
Barmada, S., Dghais, W., Fontana, N., Raugi, M., & Tucci,
M. (2019). Design and Realization of a Multiple Access
Wireless Power Transfer System for Optimal Power
Line Communication Data Transfer. Energies, 12 (6),
988, 2019, 1 – 19.
Brizi, D., Fontana, N., Tucci, M., Barmada, S., &
Monorchio, A. (2020). A Spiral Resonators Passive
Array for Inductive Wireless Power Transfer
Applications with Low Exposure to Near Electric Field.
IEEE Transactions on Electromagnetic Compatibility,
62 (4) 1312 – 1322.
Campi, T. Cruciani, S. Maradei, F., & Feliziani, M. (2020).
Magnetic Field Mitigation by Multicoil Active
Shielding in Electric Vehicles Equipped With Wireless
Power Charging System, IEEE Transactions on
Electromagnetic Compatibility, 62 (4), 1398 – 1405.
Cruciani, S., Campi, T., Maradei, F., & Feliziani, M.
(2019). Active Shielding Design for Wireless Power
Transfer Systems. IEEE Transactions on
Electromagnetic Compatibility, 62 (6), 1953 – 1960.
Hee Lee, C., Jung, G., Al Hosani, K., Song, B., Dong-
Kwan, S., & DongHo, C. (2020). Wireless Power
Transfer System for an Autonomous Electric Vehicle
IEEE Wireless Power Transfer Conference (WPTC).
IEEE (2018). Approved Draft Standard for Broadband over
Power Line Networks: Medium Access Control and
Physical Layer Specifications Amendment:
Enhancement for Internet of Things applications, IEEE
P1901a/D3..
Joo, I.Y., & Choi, D.H. (2017). Optimal Household
Appliance Scheduling Considering Consumer's
Electricity Bill Target. IEEE Transactions on
Consumer Electronics, 1 (63) 19 – 27.
Kim, Y., Bae, & J. N., Kim, J. Y. (2011). Performance of
Power Line Communication Systems with Noise
Reduction Scheme for Smart Grid Applications. IEEE
Transactions on Consumer Electronics, 57 (1), 35 – 52.
Krasovsky, A., Vasyukov, S., & Miseyuk, O. (2020).
Electrical Model for Transmitting Control Signals over
Car Power Wiring. International Conference on
Industrial Engineering, Applications and
Manufacturing (ICIEAM).
Kurs, A., Karalis, A., Moffatt, R., Joannopoulos, J., Fisher,
P., & Soljacic, M. (2007). Wireless power transfer via
strongly coupled magnetic resonances Science, 317
(5834), 83-86.
Lallbeehary, N., Mazari, R., Degardin, V., Lienard, M. &
Trebosc, C. (2018). Blind Estimation of OFDM
Sampling Frequency Offset and Application to Power
Line Communication in Aircrafts, 4th International
Conference on Vehicle Technology and Intelligent
Transport Systems (VEHITS), pp. 357-362.
Landinger, T. F., Schwarzberger, G., Rose, M., Dollhaeubl,
S., Hofer, G., Talei, A. P., & Jossen, A. (2020). Power
Line Communications in Automotive Traction
Batteries: A Proof of Concept. IEEE International
VEHITS 2021 - 7th International Conference on Vehicle Technology and Intelligent Transport Systems
668