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April 1, 2026Smart Energy1 citationsOpen Access

Cross-Atlantic research agenda for scalable grid architectures and distributed flexibility

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MAMads AlmassalkhiHMHenrik MadsenYDYury Dvorkin

Key Points

  • The study aims to address the architectural challenges in coordinating distributed energy resources to enhance grid flexibility and reliability.
  • Proposed a layered cyber-physical systems architecture for coordination.
  • Developed minimal interoperability interfaces for device and system connection.
  • Utilized case studies from U.S. and Danish contexts to validate the architecture and interfaces.
  • Analyzed empirical evidence from smart energy pilot projects and operational deployments.
  • Demonstrated predictable grid-aware flexibility while maintaining device autonomy.
  • Showed that minimal interoperability interfaces facilitate better coordination.
  • Evidence supports the effectiveness of hierarchical control in enhancing reliability.
  • Found that proposed architecture allows for scalable and flexible clean energy systems.

Abstract

Electric power systems are rapidly evolving into deeply digital, cyber–physical infrastructures in which large fleets of distributed energy resources must be coordinated as system-level flexibility across multiple spatial and temporal scales. Despite growing distributed energy resource deployment, existing grid and market architectures lack scalable, interoperable mechanisms to reliably translate device-level flexibility into grid-aware services, creating risks to reliability, affordability, and resilience at high penetration. We propose that scalable and reliable coordination of distributed energy resource-based flexibility in future power systems is fundamentally an architectural problem that can be addressed through laminar cyber–physical design using minimal, standardized interoperability interfaces that link device autonomy with system-level objectives. To assess this claim, we present and discuss a layered cyber–physical systems architecture and explicate its implementation through standards-based interfaces, Flexibility Functions, hierarchical control, and case studies spanning U.S. and Danish regulatory, market, and operational contexts. Empirical evidence from New York’s Grid of the Future proceedings, Danish Smart Energy Operating System pilots, and operational aggregator deployments demonstrates that such architecture enables predictable, grid-aware flexibility while preserving device autonomy, interoperability, reliability, and quality of service. These results support a cross-Atlantic research agenda centered on joint testbeds, harmonized interoperability mechanisms, and coordinated policy experiments to accelerate the deployment of resilient, scalable, and flexible clean energy systems. • Layered cyber–physical architecture enables scalable flexibility coordination. • Minimal interoperability interfaces link devices, aggregators, and operators. • Pilots in Denmark and the United States demonstrate flexibility architectures. • Hierarchical control and digital twins improve coordination reliability. • Transatlantic research agenda for shared testbeds and harmonized interfaces.

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Cite This Study

Almassalkhi et al. (2026) studied this question.

synapsesocial.com/papers/69cd7b275652765b073a8ec9https://doi.org/10.1016/j.segy.2026.100236
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