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Energy Daily · 2026-09-04

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  • DOE microgrid program strategy and system-level roadmap:Microgrid Program Strategy The strategic vision of the DOE OE Microgrid program is that microgrids will become essential building blocks of the future electric grid, leveraging all sources of affordable, reliable, and secure energy。
  • DOE Microgrid Systems program, portfolio and news:Microgrid Systems The Office of Electricity (OE) supports critical grid systems research to strengthen grid reliability and resilience, help mitigate grid disturbances, and take full advantage of all sources of affordable, reliable and secure energy, to accelerate our evolution into a more dependable future-ready grid。

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DOE Microgrid Systems program, portfolio and news

Microgrid Systems The Office of Electricity (OE) supports critical grid systems research to strengthen grid reliability and resilience, help mitigate grid disturbances, and take full advantage of all sources of affordable, reliable and secure energy, to accelerate our evolution into a more dependable future-ready grid. Increasing power demand, aging grid infrastructure, increasing frequencies of higher impact natural disasters, rising physical and cyber security attacks, and long lead times facing system upgrades, threaten the reliability, resilience, security and affordability of the nation’s grid. Power outages are becoming more common across the U.S., largely due to an increase in extreme weather events, and other causes such as transient instability associated with large dynamic load connections. Power outages obviously pose serious threats, especially in remote, electrically isolated communities, and in cases where they cut people off from critical services that impact their health and well-being. Grid systems, such as microgrids or networks of microgrids, provide strategic energy solutions via localized power systems that can operate in grid-connected modes, providing reliability services during normal and abnormal grid conditions, or in islanded modes, powering remote communities or commercial/industrial operations. An illustration of a sample microgrid showing diverse energy generation and battery energy storage. Sandia National Lab Microgrid Systems Research & Development (MSRD) Program DOE envisions that microgrids will become essential building blocks of the future electric grid, leveraging all sources of affordable, reliable, and secure energy. The mission of the program is thus to accelerate beneficial microgrid innovations that improve the reliability, resilience, security, and affordability of the U.S. electricity delivery system — advancing U.S. energy independence and dominance. A microgrid system represents a group of interconnected loads and local energy resources within clearly defined electrical boundaries that acts as a single controllable entity with respect to the grid. This technical definition essentially articulates three core attributes of microgrids: (1) they are controllable with respect to the grid, able to seamlessly transition between interacting with the main utility grid (“grid connected”) and operating independently (“islanded”) during power outages or emergencies; (2) they can leverage all localized sources of affordable, reliable and secure energy resources to meet local demand, while also providing grid support; and (3) they can function intelligently, using advanced controllers to orchestrate the balancing of local energy resources and demand, supporting grid interconnection requirements while optimizing power delivery to end-users. Microgrids are deployed across key sectors to bolster reliability and resilience during grid outages. As generation-agnostic systems, they enhance grid adaptability by integrating local energy resources. This localized generation reduces transmission losses and defers costly upgrades, driving down consumer costs and maximizing overall affordability. They also accelerate grid connection for large-load utility customers. However, adoption is limited by high upfront costs, complex design, and regulatory barriers. Furthermore, massive new loads like data centers require end-to-end innovation. Microgrids address this by spanning both domains; specifically, their front-of-the-meter applications directly support grid stability, while behind-the-meter controls intelligently optimize user power delivery in coordination with the broader utility grid. The program will advance practical solutions to overcome these challenges, directly improving grid reliability, resilience, security, and affordability. These strategic investments will transition microgrids from isolated backup systems into dynamic, interconnected energy ecosystems that provide critical stability to the wider electricity grid. Core Program Focus Areas The program will focus on developing and validating tools, methods, technologies, and solution resources across the following four core focus areas to achieve its mission: * Microgrid System Planning and Design This area focuses on developing next-generation software and hardware platforms for advanced feasibility, technical, and techno-economic analyses, validating prototypes, and supporting high-fidelity planning and design studies for advanced microgrid system development or deployment. * Secure Microgrid Operations This area involves creating advanced algorithms and protocols, responsibly leveraging AI/ML, to significantly improve real-time microgrid operation, protection, monitoring, automation, and control, enhancing grid reliability, resilience, security, and affordability. * Microgrid System Architectures This area aims to produce common configurations or standardized architectural frameworks that facilitate the cost-effective implementation of advanced, interoperable microgrid systems and technologies across various electric power grid and industry applications. * Accelerated Technology Adoption This area supports developing technical standards, best practices, and other information resources to foster industry conditions conducive to broader adoption of advanced microgrid technologies. Program activities will map to at least one of these focus areas. Learn about our program strategy at: Microgrid Program Strategy Additional Resources Over the years, the Microgrid program has supported major projects and initiatives, involving inter-office and/or cross agency collaboration, with reported outcomes aligning with top Administration priorities, where being responsive to current and evolving industry stakeholder needs. Below is a selection of key historical program resource references, including congressional reports and final project/initiative deliverables. Congressional Reports * FY 2025 Report To come soon Project and Initiatives Reports * Citadels Project The Citadels Final Report is the final project report for the Grid Modernization Laboratory Consortium (GMLC) Citadels project. The primary goal of this GMLC project was to increase the operational flexibility of power systems by engaging microgrids distributed using consensus algorithms * Energy Assurance Critical Infrastructure (EACI) Project, 2022 Energy Assurance Critical Infrastructure (EACI) Project, 2022: PNNL developed a method for the EACI project to provide conceptual-level stability predictions for islanded microgrids. * Artemis Lunar Microgrids Initiative Artemis Lunar Microgrids Initiative, 2022: In a collaboration to design a resilient microgrid for a lunar base camp, DOE’s Sandia National Laboratories and NASA engineers worked together to develop the system controllers. They designed the controllers for the mining and habitation microgrids while creating a connecting system to study joint power flow, securing overall microgrid resilience through flexible routing and strategic oversizing. News * Up to $3.5M Available to Strengthen Microgrids in Remote Regions May 12, 2026 * Applications Open for New Microgrid Support Services May 20, 2026 * U.S. Department of Energy Announces $8M for Microgrid Innovation June 2, 2025 * U.S. Department of Energy Launches Community Microgrid Assistance Partnership October 1, 2024 Blogs *+ Electricity Energy Additions and the Unique Role of Microgrids Learn More about Energy Additions and the Unique Role of Microgrids June 3, 2026 Why Microgrids are Essential Building Blocks in Future U.S. Electric Grid Learn More about Why Microgrids are Essential Building Blocks in Future U.S. Electric Grid Microgrids and Retail Electricity Costs: Practical Ways Microgrids Help Reduce Retail Costs Learn More about Microgrids and Retail Electricity Costs: Practical Ways Microgrids Help Reduce Retail Costs Microgrids, Large Electric Loads & Grid Support: How to Leverage Microgrids to Support Utilities and Large Load Customers Learn More about Microgrids, Large Electric Loads & Grid Support: How to Leverage Microgrids to Support Utilities and Large Load Customers + Nuclear How Microgrids Can Scale Value-Proposition of Nuclear Reactor-Based Generation Learn More about How Microgrids Can Scale Value-Proposition of Nuclear Reactor-Based Generation + Strengthening Grid Reliability and Security Power in the Storm: Capturing the Value of Microgrids Resilience Learn More about Power in the Storm: Capturing the Value of Microgrids Resilience June 2, 2026 + Tribal Energy Access + Energy Security New Microgrid Program to Help Underserved and Indigenous Communities Learn More about New Microgrid Program to Help Underserved and Indigenous Communities October 4, 2024 * OE Funds Microgrid Innovation to Fortify Remote Energy Systems Learn More about OE Funds Microgrid Innovation to Fortify Remote Energy Systems July 30, 2025 * Campus Microgrids with Modular Reactors Reduce Emissions Learn More about Campus Microgrids with Modular Reactors Reduce Emissions January 13, 2025 + Storage Microgrids Help Electrify Ports, Increase Reliability July 18, 2024

来源:Microgrid primary evidence发布时间:2026-09-04 08:45影响范围:US
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DOE microgrid program strategy and system-level roadmap

Microgrid Program Strategy The strategic vision of the DOE OE Microgrid program is that microgrids will become essential building blocks of the future electric grid, leveraging all sources of affordable, reliable, and secure energy. The program mission is to accelerate beneficial microgrid innovations that improve the reliability, resilience, security and affordability of the U.S. electricity delivery system—advancing U.S. energy independence and dominance. Over time, program investments will enable microgrids to evolve from isolated emergency power sources into dynamic, interconnected energy ecosystems that enhance grid resilience and provide critical stability to the broader electricity delivery system . To implement this vision and mission, the program strategy includes goals across the following three broad domains, also illustrated in Figure 1 below: 1. Infrastructure, Operations, and Control: Contains research, development and demonstration (RD&D) goals associated with the operational aspects of microgrid technologies, including microgrid monitoring, control, optimization, communication, and protection. 2. Multi-Domain Analysis and Decision-Making Tools: Contains RD&D goals associated with the design, planning, and analysis aspects of microgrid technologies, including tools, computational methods and models, and corresponding simulation approaches. 3. Engagement and Institutional Frameworks: Contains goals associated with market, regulatory, and institutional barriers to microgrid system adoption. Figure 1: The program strategy is multi-layered and multi-dimensioned, where each layer represents unique expected outcomes. The program goals span all three domains, as depicted above. The Microgrid Systems RD&D program addresses architectural challenges across these three domains, focusing on both scale and complexity. It examines system scale, progressing from single microgrids to networked and then to networks of networked systems. Additionally, it tackles architectural complexity, such as controls and computing, by transitioning from centralized to distributed paradigms. These broad domains serve as the foundational structure for the core program focus areas and associated activities, all of which support overarching program goals centered about advancing grid resilience, reliability, security, and affordable energy abundance. The overarching program goals are presented below. * Provide Resilient Support to Local Loads Develop advanced microgrid systems with standardized, adaptive controls, automation, and protection to enhance energy resilience for local loads under all operating conditions. This ensures grid survivability and continuous high-quality electricity service to support local loads—residential, communal, commercial, industrial, and/or defense loads—amidst dynamic operating grid conditions and disturbances. * Support Reliable and Secure Grid Operations Develop robust, co-designed microgrid control and communication systems that enhance microgrid-to-grid interactivity and seamless coordination, supporting both core and ancillary grid operational needs, while withstanding adversarial attacks—thus fostering reliable and secure grid operations. This will also include development of self-sufficient (including self-healing) systems that integrate and optimize diverse energy sources for local use, responding adaptively to dynamic grid operational requirement * Enable Energy Abundance through Energy Additions Advance affordable energy abundance by enabling regulatory, business and market design innovations that support energy additions through accelerated microgrid deployment—where microgrids serve as strategic grid assets, delivering timely and firm energy solutions that enable expedited load interconnection ahead of and complementarily to long-lead infrastructural upgrades. Strategic Program Portfolio of Activities Research, Development, Demonstration and Deployment Activities The program strategy identifies and will deliver impactful outcomes across key R&D areas, including areas grandfathered in from a prior strategy development and implementation cycle. These activity areas are covered across nine strategy documents, the first of which presents the overarching program vision, objectives, and targets. Each strategy document was developed by a team of national laboratory and university members and then reviewed by an industry advisory panel. Below is the list of program strategy plan documents, followed by goal alignment. * R&D Strategy Plan Documents Strategy Document Title Performers/Partners Introduction—Overall Program Vision, Objectives and Targets SNR, SNL, PNNL T&D Co-simulation of Microgrid Impacts and Benefits ANL, LANL, LLNL Building Blocks for Microgrids NLR, ORNL, PNNL, SRNL, Virginia Tech Microgrids as a Building Block for Future Grids LLNL, NLR, ORNL, SNL Advanced Microgrid Control and Protection INL, LLNL, ORNL, SNL Integrated Models and Tools for Microgrid Planning and Designs with Operations ANL, LANL, LLNL, ORNL Small Nuclear Reactors in Future Microgrids ANL, INL, LLNL, SRNL, SNL Artificial Intelligence and Machine Learning for Microgrid Applications ANL, LLNL, INL, SNL, PNNL, ORNL, NLR, SNL, SRNL Enabling Regulatory and Business Models for Broad Microgrid Deployment LBNL, LLNL, NLR, SNL, ORNL * Program Goals Aligned With R&D Strategy Plans The table below shows the alignment of the programs strategy plan documents with the program goals outlined earlier. Program Goals Strategy Plan Alignment Advance Resilience: Provide Resilient Support to Local Loads + Strategy Document 5 – Advanced Microgrid Control and Protection + Strategy Document 6– Integrated Models and Tools for Microgrid Planning and Designs with Operations + Strategy Document 2 – Transmission and Distribution (T&D) Co-simulation of Microgrid Impacts and Benefits + Strategy Document 3 – Building Blocks for Microgrids Advance Reliability and Security: Support Reliable and Secure Grid Operations + Strategy Document 4 – Microgrids as a Building Block for Future Grids + Strategy Document 5 – Advanced Microgrid Control and Protection + Strategy Document 7 – Small Nuclear Reactors in Future Microgridshttps://energy.gov/documents/microgrids-rd-strategic-plan-topic-8-ai-and-machine-learning + Strategy Document 8 – Artificial Intelligence and Machine Learning for Microgrid Applications + Strategy Document 4– Microgrids as Building Blocks Advance Affordable Energy Abundance: Enable Energy Abundance through Energy Additions + Strategy Document 6–Integrated Models and Tools for Microgrid Planning and Designs with Operations + Strategy Document 7 – Small Nuclear Reactors in Future Microgrids + Strategy Document 9 – Enabling Regulatory and Business Models for Broad Microgrid Adoption Technical Assistance (TA) Activities The Office of Electricity developed the Community Microgrid Assistance Partnership (C-MAP) program to extend technical support and funding to communities seeking to build a microgrid or optimize their existing microgrid systems. C-MAP brings together organizations and energy sector actors that are working to understand, improve, and implement advanced microgrid technology in historically underserved and Indigenous communities in remote areas, facilitating a new forum for innovation and collaboration. Strategic Program Benefits Over the years, the Microgrid program has funded multiple developments—including methods, tools, testing platforms, software, and other hardware/software-integrated products—that have made it to market as well as into commercial products, enabling enhanced and innovative solutions to both existing and emerging industry challenges. The table below highlights some of these developments, including their respective value propositions, application use cases, and how they may be accessed by interested parties. * Microgrid Program Products (Selection) Resource Description Public Release/Access Value Proposition Industry Applications Contacts Design of networked microgrids, contingency grid planning. Power Models ONM helps varied users optimize distribution power networks, featuring networked microgrids and dynamic microgrid formation. Open-source toolkit with user manual and tutorials. Users of this toolkit leverage networked microgrids to improve day-to-day operations, stabilize the grid, and enhance grid reliability and resilience, minimizing impacts faced by end-consumers in extreme events. David Forbes (LANL), Murali Baggu (NLR) Users: Utilities, cooperatives, Grid management software providers, microgrid designers. Port grid electrification planning. The Maritime Port Electrification Handbook explains the technologies and key considerations for deploying microgrids and electrification solutions at maritime ports. A practical free accessible framework outlining microgrid benefits and challenges and step-by-step implementation. Ports and other stakeholders decrease their regulatory burden and gain insight into microgrid solutions that provide backup power or offer economic advantages. Francis Tuffner (PNNL) Users: Stakeholders of maritime ports, state and federal agencies. Microgrid policy and regulation programs. The Microgrid Policy and Regulatory Framework is a guide for State Energy Offices and Public Utility Commissions developing state microgrid policy, programs, or regulation. An online framework for navigating evolving microgrid deployment scenarios. This go-to resource can decrease regulatory burden and help state decision-makers understand their roles and implement scalable strategies for grid reliability and affordability. Miguel Heleno (LBNL) Users: State Energy Offices, Public Utility Commissions, regulatory authorities. Optimizing the capital Investment for rural electric cooperatives. LPNORM is a tool that electric distribution system planners use to evaluate how distribution feeders with microgrids respond to extreme events and prioritize the most cost-effective system upgrades. Integrated into the free accessible Open Modeling Framework tool to optimize system design. Rural electric cooperatives can optimize capital investment to advance growth, reliability, and affordability of the grid. David Forbes (LANL) Users: Utilities, cooperatives, microgrid designers. Utility distribution system expansion, Valuation of local energy assets and microgrids in distribution planning. REPAIR is a tool for grid expansion planning that incorporates microgrids and co-optimizes local energy generation and infrastructure upgrades to improve distribution system reliability. Open-source software for grid and microgrid planners. REPAIR supports resilient grid development by allowing electric utilities to make informed and transparent cost versus risk decisions for grid infrastructure planning and growth. Miguel Heleno (LBNL) Users: Utilities, microgrid designers, large load customers. Microgrid design and planning. Tim McJunkin, Ning Kang The Small Nuclear Reactor Module helps users add nuclear power into microgrid planning, including safety, feasibility, and cost analysis. A capability within Xendee commercial microgrid optimization platform, also available through some DOE national laboratories. Users can explore feasible options for adding small reactors to microgrids, particularly in areas that call for energy dominance such as data centers, manufacturing, and mining. Users: Nuclear and power industries, microgrid designers, large loads stakeholders (data centers). (INL) Combined Heat and Power grid applications. Tim McJunkin, Ning Kang The Multigrade Industrial Heat Module helps users add high-grade heat or industrial-scale applications into microgrid planning. A capability within Xendee commercial microgrid optimization platform, also available through some DOE national laboratories. This model advances nuclear reactor technologies for powering industry loads in optimal way. Users: Electric and thermal industry, microgrid designers, large load stakeholders (data centers). (INL) Testing new grid technologies A digital twin is a physics-based replica of a microgrid, such as the one developed by the Office of Electricity for Cordova, Alaska Custom digital twin that matches the assets, operating conditions, and the behavior of a real-world microgrid. Realistic emulations allow microgrid planners to vet new technologies or designs in the safety of the digital space before rolling them out to customers, thereby lowering deployment costs, supporting affordability, and exploring opportunities to stabilize the grid. Murali Baggu (NLR) Users: Original Equipment Manufacturers utilities and cooperatives, regional grid entities, microgrid designers. Microgrid design, sizing, and evaluation. John P Eddy The Microgrid Design Toolkit supports feasibility studies by modeling, analyzing, and optimizing microgrid design. Open source microgrid design software tool with user tutorials. This toolkit helps optimize, stabilize, and grow the grid by speeding up the design and evaluation process, reducing technical complexity, financial risk, and deployment time for resilient, stand-alone systems Users: Utilities and cooperatives, state and local government, research and academia, microgrid investors and designers, large loads stakeholders (data centers). (SNL) Optimal sizing and placement of local energy assets Nicholas DeForest, DER-CAM optimizes the portfolio, sizing, placement, and dispatch of local energy assets while factoring for additional value streams such as load shifting and participation in energy markets. Open-source decision-support software tool that can be used for microgrids design including local energy assets. When weighing investment decisions, energy managers use this tool to optimize resources, stabilize operations, and support the growth of the grid by selecting the right mix of assets that meet local conditions and reliability needs at the lowest cost, supporting affordability. Users: Utilities and cooperatives, power industry, microgrid investors and designers, large load stakeholders (data centers). (LBL) Learn More Microgrid Systems News * Up to $3.5M Available to Strengthen Microgrids in Remote Regions May 12, 2026 * Applications Open for New Microgrid Support Services May 20, 2026 * U.S. Department of Energy Announces $8M for Microgrid Innovation June 2, 2025 * U.S. Department of Energy Launches Community Microgrid Assistance Partnership October 1, 2024 Blogs *+ Electricity Energy Additions and the Unique Role of Microgrids Learn More about Energy Additions and the Unique Role of Microgrids June 3, 2026 Why Microgrids are Essential Building Blocks in Future U.S. Electric Grid Learn More about Why Microgrids are Essential Building Blocks in Future U.S. Electric Grid Microgrids and Retail Electricity Costs: Practical Ways Microgrids Help Reduce Retail Costs Learn More about Microgrids and Retail Electricity Costs: Practical Ways Microgrids Help Reduce Retail Costs Microgrids, Large Electric Loads & Grid Support: How to Leverage Microgrids to Support Utilities and Large Load Customers Learn More about Microgrids, Large Electric Loads & Grid Support: How to Leverage Microgrids to Support Utilities and Large Load Customers + Nuclear How Microgrids Can Scale Value-Proposition of Nuclear Reactor-Based Generation Learn More about How Microgrids Can Scale Value-Proposition of Nuclear Reactor-Based Generation + Strengthening Grid Reliability and Security Power in the Storm: Capturing the Value of Microgrids Resilience Learn More about Power in the Storm: Capturing the Value of Microgrids Resilience June 2, 2026 + Tribal Energy Access + Energy Security New Microgrid Program to Help Underserved and Indigenous Communities Learn More about New Microgrid Program to Help Underserved and Indigenous Communities October 4, 2024 * Campus Microgrids with Modular Reactors Reduce Emissions Learn More about Campus Microgrids with Modular Reactors Reduce Emissions January 13, 2025 * OE Funds Microgrid Innovation to Fortify Remote Energy Systems Learn More about OE Funds Microgrid Innovation to Fortify Remote Energy Systems July 30, 2025 + Storage Microgrids Help Electrify Ports, Increase Reliability July 18, 2024

来源:Microgrid primary evidence发布时间:2026-09-04 08:34影响范围:US
E1policy微电网证据