Smart Charging and Vehicle-to-Grid Integration of Electric Vehicles: Technical Insights, Cybersecurity Risks, and Mobility-OrientedControl Strategies
Abstract
1. Introduction
Review Methodology and Selection Framework
2. Technical Foundations of Vehicle-to-Grid Systems
3. Charging Infrastructure and Grid-Integration Framework for V2G
3.1. Charging Modes and Infrastructure Hierarchy
3.2. On-Board and Off-Board Charger Architectures
3.3. Charging-Connector Families and V2G-Capable Standards
3.4. Grid-Integration and Power Quality Standards
3.5. AC/DC Converter Topologies for V2G
4. Communication Systems and Interoperability Standards
4.1. Communication Requirements for V2G Networks
Scalability, Communication Latency, and Real-Time Control Stability
4.2. Interoperability Protocols and Application-Layer Communication
4.3. Cybersecurity Exposure in V2G and Cyber-Physical Ecosystems
4.4. Security Mechanisms and Emerging Research Challenges
5. Grid Aware Mobility Optimization and VGI Services
5.1. Adaptive Charging Coordination in VGI Environments
5.2. Integrated Routing and Energy Scheduling for VGI
5.3. Shared and Autonomous Mobility with VGI Integration
5.4. Dynamic Pricing Strategies for VGI Systems
6. Challenges
6.1. Hardware, Infrastructure, and Grid-Integration Challenges
6.2. Communication, Cybersecurity, and Interoperability Challenges
6.3. Mobility-Aware Control, Markets, and Scalability Challenges
7. Discussion: Deployment-Oriented Implications for V2G and VGI
8. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Modeling Technique | Key Variables | Strengths for V2G Analysis | Limitations and Practical Challenges |
|---|---|---|---|
| Empirical Cycle-Life Models [68] | DOD, cycle count, temperature | Fast integration into scheduling and techno-economic studies | Limited extrapolation and transient accuracy |
| Semi-Empirical Aging Models [69] | SOC window, current rate, temperature | Captures dominant aging trends with moderate complexity | Chemistry-specific calibration required |
| Electrochemical-Based Models [70] | Lithium inventory, SEI growth, impedance | High physical fidelity for detailed lifetime analysis | Computationally intensive |
| Data-Driven Models (ML-Based) [71,72] | Operational history, voltage, current, temperature | Handles nonlinear aging and fleet-level monitoring | Data-hungry and limited interpretability |
| Hybrid Degradation Models [73,74] | Empirical + electrochemical indicators | Improved accuracy with physical insight | Higher implementation complexity |
| Charger Type | Power Range | Associated Standards | Communication Method | V2G Capability | Technical Remarks |
|---|---|---|---|---|---|
| AC Charging | 2–22 kW | SAE J1772, IEC 61851 | Analog control-pilot signaling | Not supported | Lacks digital communication and controlled reverse power flow, limiting suitability for practical V2G operation. |
| DC Fast Charging | 50–350 kW | CCS (Combo 1/2), GB/T 20234 (DC) | Digital EV–EVSE communication | Potential | Bidirectional operation is technically feasible, but large-scale V2G deployment requires enhanced protection coordination and rapid set-point response. |
| High-Power DC Charging | Up to 900 kW | CHAdeMO, ChaoJi (CHAdeMO 3.0) | Digital communication with active power control | Fully supported | CHAdeMO offers fully standardized V2G functionality, and ChaoJi enhances this framework by enabling ultra-high-power operation while preserving backward compatibility. |
| Megawatt-Class DC Charging | >1 MW | Megawatt Charging System (MCS) | ISO 15118-20 based digital communication | Supported (V2X-ready) | Designed for heavy-duty electric vehicles, enabling bidirectional energy exchange for buses, trucks, and industrial mobility applications. |
| Standards Body | Standard | Scope and Technical Focus |
|---|---|---|
| Society of Automotive Engineers (SAE) | SAE J1772 | Defines connector interfaces, voltage and current ratings, and charging levels for AC and DC electric vehicle supply equipment. |
| SAE J2847 | Specifies communication message sets enabling coordinated interaction among EVs and grid-management systems. | |
| SAE J2293 | Describes system architecture, power requirements, and functional communication aspects for conductive and inductive EV charging. | |
| SAE J1773 | Establishes technical requirements for inductive (wireless) charging systems used in electric vehicles. | |
| Institute of Electrical and Electronics Engineers (IEEE) | IEEE 1547 | Specifies technical criteria for safe and reliable interconnection of distributed energy resources with electric power systems. |
| IEEE 519-1992 | Recommends harmonic distortion limits to maintain acceptable power quality in electrical networks. | |
| IEEE 1366-2012 | Defines reliability indices and evaluation methods for electric power distribution systems. | |
| IEEE 1159-1995 | Provides standardized techniques for monitoring, measuring, and classifying power-quality disturbances. | |
| IEEE 1100-1999 | Offers guidance on grounding and power-conditioning practices for sensitive electronic equipment. | |
| P1547/P2100.1 | Addresses interoperability, grid-connection practices, and emerging standardization needs for distributed energy and charging systems. | |
| National Electric Code (NEC) | NEC 625, NEC 626 | Establishes installation and safety requirements for conductive and inductive electric vehicle charging infrastructure. |
| International Electrotechnical Commission (IEC) | IEC 62196 | Defines mechanical and electrical specifications for EV charging connectors, plugs, and socket outlets. |
| IEC 61851 | Specifies general operational, control, and protection requirements for conductive EV charging systems. | |
| IEC 61000-2/3/4 | Sets electromagnetic compatibility limits covering harmonics, flicker, and conducted disturbances in power systems. | |
| IEC 61980 | Addresses wireless power-transfer systems for electric vehicle charging applications. | |
| Underwriters Laboratories (UL) | UL 2594, UL 1741 | Specifies safety requirements for EV supply equipment, inverters, converters, and grid-connected power-electronic devices. |
| UL 2231, UL 2202, UL 2251 | Defines protection and safety criteria for EV charging circuits and associated equipment. |
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Naseem, H.; Goswami, P.; Choi, K.; Iqbal, A.; Hakami, H. Smart Charging and Vehicle-to-Grid Integration of Electric Vehicles: Technical Insights, Cybersecurity Risks, and Mobility-OrientedControl Strategies. Appl. Sci. 2026, 16, 1748. https://doi.org/10.3390/app16041748
Naseem H, Goswami P, Choi K, Iqbal A, Hakami H. Smart Charging and Vehicle-to-Grid Integration of Electric Vehicles: Technical Insights, Cybersecurity Risks, and Mobility-OrientedControl Strategies. Applied Sciences. 2026; 16(4):1748. https://doi.org/10.3390/app16041748
Chicago/Turabian StyleNaseem, Hamid, Pratik Goswami, Kwonhue Choi, Adeel Iqbal, and Hadi Hakami. 2026. "Smart Charging and Vehicle-to-Grid Integration of Electric Vehicles: Technical Insights, Cybersecurity Risks, and Mobility-OrientedControl Strategies" Applied Sciences 16, no. 4: 1748. https://doi.org/10.3390/app16041748
APA StyleNaseem, H., Goswami, P., Choi, K., Iqbal, A., & Hakami, H. (2026). Smart Charging and Vehicle-to-Grid Integration of Electric Vehicles: Technical Insights, Cybersecurity Risks, and Mobility-OrientedControl Strategies. Applied Sciences, 16(4), 1748. https://doi.org/10.3390/app16041748

