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Find similar grantsManaged Electric Vehicle Charging Technologies is sponsored by NYSERDA. Supports development and deployment of smart charging solutions for electric vehicles to optimize grid performance and reduce emissions.
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Electric Vehicle (EV) Managed Charging (PON 5963) Your browser does not support iFrames Electric Vehicle (EV) Managed Charging (PON 5963) This solicitation is closed BEFORE YOU BID: NYSERDA requires contractors producing content intended to be published to the World Wide Web to adhere to NYSERDA's Accessibility Policy.
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jpg, . png, etc.), web pages (. html, .
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According to the current listing, eligibility includes: Open to technology developers, researchers, and consultants working on managed EV charging solutions. Confirm the full requirements in the official notice before applying.
Managed Electric Vehicle Charging Technologies is funded by NYSERDA. Verify program details on the funder's official page before applying.
Start from the official opportunity page linked in this listing — it carries the sponsor's submission instructions.
Integrated Production and Product Development for Next-Generation Lithium-based Batteries for Mobility (BATT4EU and Made in Europe Partnerships) is sponsored by European Commission — Horizon Europe. Expected Outcome: Proposals are expected to contribute to all following points: The projects must fulfil the performance targets, at the cell and system level, corresponding to the specific targeted application, to be specified in the proposal. Appropriate KPI must be defined for the energy density (volumetric and gravimetric), Power density and C-rate, number of cycles and cost defined under operational conditions. Boost EU competitiveness in next-generation battery technologies for mobility applications. Develop pilot manufacturing capability for next generation lithium-based batteries. Strengthen the EU battery value chain, including new manufacturing equipment, automation, and scalable production processes. Advance the understanding of next-generation battery interfaces at an industrial scale, ensuring manufacturability, durability, and cost-effectiveness. In the case of aviation, the battery requirements should be compatible at minimum with EASA CS.23 (level 4), CS.27 and preferably with CS.25 categories. Scope: This topic will support the scaling-up of next generation (i.e., beyond generation 3) lithium-based batteries (e.g., semi and all-solid state, generation5) from cell prototypes (TRL 4-5) to demonstration of scalable production and demonstration of cell integration into module/pack level. The projects will cover pilot production, process automation, system integration and demonstration, advanced cell design, and supply chain development to ensure that Europe remains at the forefront of battery innovation. The projects must address the needs of a single specific and strategically relevant transport mode, and the targeted mode must be clearly indicated in the proposal. The following transport modes are in scope: Automotive; Aviation; Rail; Waterborne. The projects are expected to cover all of the following production targets: Upscaling of components production Technologies: Optimisation and pilot-scale integration methods of anode and cathode materials compatible with next generation electrolytes Development of Cell Concepts, Manufacturing Equipment and Machinery Development of flexible and high-throughput processing methods for large-scale cell production (e.g., laser patterning, vacuum sintering, and advanced calendaring). Development of next-generation production machinery, tailored for next generation lithium-ion cell manufacturing (e.g., solid electrolyte deposition tools, high-precision stacking machines). Design and demonstration of module and packs into vehicles/relevant environment Develop module/pack design and relevant sensors and Battery Management Systems (BMS), optimised for supporting the system, for seamless cell-to-system integration, regulatory compliance, and specific end-user application requirements. Perform comprehensive validation, including performance, durability, and safety testing under realistic operational conditions, addressing thermal management, mechanical stress, vibration resistance, and electrical performance at relevant scales. The Commission initiative for Safe and Sustainable by Design [1] (SSbD) sets a framework for assessing the safety and sustainability of chemicals and materials which should be considered as a reference for project proposals. Whenever the expected exploitation of project results entails developing, creating, manufacturing and marketing a product or process, or in creating and providing a service, the plan for the exploitation and dissemination of results must include a strategy for such exploitation. The exploitation plans are expected to include preliminary plans for scalability, commercialisation, and deployment (feasibility study, business plan) indicating the possible funding sources to be potentially used (in particular the Innovation Fund). Proposals could consider the involvement of the European Commission's Joint Research Centre (JRC) [2] whose contribution could consist of performing experimental or desk-top research on battery performance or safety. Programme areas: Horizon Europe (HORIZON), Global Challenges and European Industrial Competitiveness, Climate, Energy and Mobility, Energy Supply, Energy Storage
The Genesis Mission: Transforming Science and Energy with AI (DE-FOA-0003612) is sponsored by U.S. Department of Energy (DOE) Office of Science, Office of Critical Minerals and Energy Innovation, Office of Environmental Management, Office of Nuclear Energy, Office of Electricity, and Hydrocarbons and Geothermal Office. This opportunity supports mission-aligned projects and measurable outcomes.