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DOE OSTI · 2575473

Enabling Secure and Resilient XFC: A Software/Hardware-Security Co-Design Approach

Abstract

Extremely fast charging (XFC) has the potential to reduce the charging time of battery electric vehicles (BEV) to be equivalent to the filling time of internal combustion engine vehicles (ICEV), thus eliminating one of the few advantages ICEV still poses for light- and heavy-duty vehicles. Enabling XFC will, however, require coordination and cooperation between the grid, charging stations, and the vehicles themselves, which leads to an inevitable increase in the attack surface for all systems combined. In securing the overall system, we must not only embrace traditional cybersecurity, which is chiefly concerned with communications and the operation of digital systems, but also cyber-physical systems security as the proper operation of XFC is critically dependent on systems’ abilities to know about (sense) and interact with (actuate) the physical world. The project team consists of academic and industry researchers with backgrounds in cybersecurity, cyber-physical systems security, learning in adversarial environments, transportation security, grid security and resilience, wireless power transfer, converter design, and battery management systems.

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BibTeXRIS

Gerdes, Ryan [Virginia Polytechnic Inst. and State Univ. (Virginia Tech), Blacksburg, VA (United States)]. 2025-07-31. Enabling Secure and Resilient XFC: A Software/Hardware-Security Co-Design Approach. https://doi.org/10.2172/2575473

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