Grid-interactive data centers for sustainable and resilient energy systems: Evolution, trends, and future directions

Data centers (DCs) are becoming some of the most energy-intensive and grid-influential infrastructures in modern power systems, driven by the explosive growth of artificial intelligence (AI) workloads, cloud computing, and data-intensive digital services. Conventional facilities were designed primarily for reliable computing service delivery, but high-density AI workloads and fast load transients now demand more flexible and controllable energy-computing integration. Grid-interactive data centers (GDCs) provide a pathway for this transition by coordinating computational workloads, energy storage, renewable generation, cooling infrastructure, and grid-facing control functions. However, existing studies continue to address energy management, workload flexibility, demand response, power quality, dynamic load modeling, and ancillary-service participation as largely disjoint research streams. To address this fragmentation, this review provides a systems-level synthesis of next-generation GDCs for sustainable and resilient energy systems. It traces the evolution from conventional and energy-aware data centers to AI-optimized DCs and next-generation GDCs. The review identifies key enabling technologies, including grid-forming interfaces, flexible workload scheduling, distributed energy storage systems, AI-based control, digital twins, and cybersecurity, and introduces a six-layer GDC architecture that integrates physical infrastructure, energy systems, communication and control, intelligence and co-optimization, grid interfaces, and stakeholder-market interaction. The review further examines operational management strategies, grid integration challenges, sustainability metrics, and deployment barriers, and highlights digital-twin-based operation, coordinated smart inverters, and fast multi-timescale optimization frameworks as critical research directions for future GDC deployment.

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Publication Details

Journal
Applied Energy
Published
2026-09-17
DOI
https://doi.org/10.1016/j.apenergy.2026.128842
Primary Topic
Integrated Energy Systems Optimization
Type
article
Field-Weighted Citation Impact
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article

Grid-interactive data centers for sustainable and resilient energy systems: Evolution, trends, and future directions

Hamidreza Shafei, Subrata K. Sarker, Li Li, Sheikh Mohammad Aiyan et al.
Applied Energy
Integrated Energy Systems Optimization
article

Grid-interactive data centers for sustainable and resilient energy systems: Evolution, trends, and future directions

Hamidreza Shafei, Subrata K. Sarker, Li Li, Sheikh Mohammad Aiyan, Siam Billah, Mahmud H. Shihab, Sheikh L. Rahman, Khadija K. Oyshe
article en

Abstract

Data centers (DCs) are becoming some of the most energy-intensive and grid-influential infrastructures in modern power systems, driven by the explosive growth of artificial intelligence (AI) workloads, cloud computing, and data-intensive digital services. Conventional facilities were designed primarily for reliable computing service delivery, but high-density AI workloads and fast load transients now demand more flexible and controllable energy-computing integration. Grid-interactive data centers (GDCs) provide a pathway for this transition by coordinating computational workloads, energy storage, renewable generation, cooling infrastructure, and grid-facing control functions. However, existing studies continue to address energy management, workload flexibility, demand response, power quality, dynamic load modeling, and ancillary-service participation as largely disjoint research streams. To address this fragmentation, this review provides a systems-level synthesis of next-generation GDCs for sustainable and resilient energy systems. It traces the evolution from conventional and energy-aware data centers to AI-optimized DCs and next-generation GDCs. The review identifies key enabling technologies, including grid-forming interfaces, flexible workload scheduling, distributed energy storage systems, AI-based control, digital twins, and cybersecurity, and introduces a six-layer GDC architecture that integrates physical infrastructure, energy systems, communication and control, intelligence and co-optimization, grid interfaces, and stakeholder-market interaction. The review further examines operational management strategies, grid integration challenges, sustainability metrics, and deployment barriers, and highlights digital-twin-based operation, coordinated smart inverters, and fast multi-timescale optimization frameworks as critical research directions for future GDC deployment.

Applied EnergyVol. 427
University of Technology Sydney (AU), Rajshahi University of Engineering and Technology (BD)
Openalex Percentile: Top 20%
Integrated Energy Systems Optimization
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