4.7 Article

Blockchain-Based Cyber-Physical Security for Electrical Vehicle Aided Smart Grid Ecosystem

Journal

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TITS.2021.3068092

Keywords

Security; Elliptic curve cryptography; Batteries; Ecosystems; Peer-to-peer computing; Authentication; Vehicle-to-grid; Blockchain; electric vehicles; energy security; Ethereum; smart contract; smart grid; privacy

Funding

  1. Natural Sciences and Engineering Research Council of Canada (NSERC)
  2. Tier 2 Canada Research Chair on the Next Generations of Wireless IoT Networks

Ask authors/readers for more resources

The integration of Information and Communication Technologies with power grids has led to the emergence of sophisticated Smart Grids (SGs), which require complex networking technologies. To address security and privacy concerns in SG ecosystems introduced by distributed energy sources like electric vehicles and renewable energy sources, a framework based on Software Defined Networking (SDN) and BlockChain (BC) is proposed. This framework leverages SDN to manage interactions between different SG subsystems and utilizes BC and smart contracts to ensure energy transaction security and data communication. The proposed mutual authentication protocol using Elliptic Curve Cryptography (ECC) and BC is secure against various attack vectors and cost-efficient.
The ever-growing trend of making the traditional power grids smarter than before has resulted in their gradual evolution to more sophisticated grids, referred to as Smart Grids (SGs) Cyber-Physical Systems with complex networking technologies. The integration of Information and Communication Technologies with power grids fosters seamless data sharing between different SG entities, which supports effective and smart governance in terms of demand response management, frequency support, and voltage stabilization. Nonetheless, this integration opens up several security and privacy concerns, namely, electricity theft, power loss, battery exhaustion, infrastructure mapping, etc. These issues become even more important with the addition of distributed energy sources, e.g. electric vehicles (EVs), battery energy storage systems, and renewable energy sources, into the SGs. We present a framework based on Software Defined Networking (SDN) and BlockChain (BC) to address two challenging issues of EV-aided SG ecosystems, namely, privacy assurance and power security. We leverage the capabilities of SDN to handle the complex interactions between different subsystems of the SG. Furthermore, we also employ BC and smart contracts' properties to secure energy transactions and data communications. We design a secure and efficient mutual authentication protocol based on Elliptic Curve Cryptography (ECC) and BC for privacy preservation during smart energy trading. We also proposed a BC-based smart contract for effective Demand Response Management (DRM) during bidirectional energy transfer between EVs and SG. Finally, we present experimental evaluations to validate the proposed framework's performance. The results obtained demonstrate the improved performance of the proposed scheme compared with current state-of-the-art approaches. The mutual authentication protocol designed is not only secure against major attack vectors (namely, session key security, message integrity, anonymity, forward secrecy, and so on), but it is also cost-efficient in terms of communication and computational costs. Additionally, the SC designed assures power security and maintains an adequate balance between demand and supply.

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