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BATTERY 2030 SIGNED

BATTERY 2030+ At the heart of a connected green society

Total Cost €

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EC-Contrib. €

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Partnership

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 BATTERY 2030 project word cloud

Explore the words cloud of the BATTERY 2030 project. It provides you a very rough idea of what is the project "BATTERY 2030" about.

synthesis    combination    actions    recycling    completely    plan    wps    connected    footprint    disciplinary    combining    cross    characterization    environmental    chemistries    monitored    play    road    roadmap    corrective    act    efforts    paradigm    density    artificial    shift    commitments    fetproact    sectorial    performance    secure    leaders    calculations    learning    designed    digitalized    technologies    atomic    2030    17    energy    batteries    collected    time    rapid    battery    establishment    construction    era    smart    disruptive    risks    strategic    sensors    safe    chains    eba    dependence    team    trl    2019    materials    eco    charging    raw    critical    milestones    supply    structures    mentioned    machine    durable    densities    data    big    degradation    cells    join    power    04    cornerstone    skills    intelligence    reducing    calls    functional    mining    theory    action    official    adopting    create    stakeholder    sustainable    discover   

Project "BATTERY 2030" data sheet

The following table provides information about the project.

Coordinator
UPPSALA UNIVERSITET 

Organization address
address: VON KRAEMERS ALLE 4
city: UPPSALA
postcode: 751 05
website: www.uu.se

contact info
title: n.a.
name: n.a.
surname: n.a.
function: n.a.
email: n.a.
telephone: n.a.
fax: n.a.

 Coordinator Country Sweden [SE]
 Total cost 499˙456 €
 EC max contribution 499˙456 € (100%)
 Programme 1. H2020-EU.1.2.2. (FET Proactive)
 Code Call H2020-FETPROACT-2019-01
 Funding Scheme CSA
 Starting year 2019
 Duration (year-month-day) from 2019-03-01   to  2020-02-29

 Partnership

Take a look of project's partnership.

# participants  country  role  EC contrib. [€] 
1    UPPSALA UNIVERSITET SE (UPPSALA) coordinator 57˙650.00
2    ENERGY MATERIALS INDUSTRIAL RESEARCH INITIATIVE AISBL BE (BRUXELLES) participant 61˙750.00
3    ABSISKEY FR (ANGERS) participant 46˙000.00
4    FRAUNHOFER GESELLSCHAFT ZUR FOERDERUNG DER ANGEWANDTEN FORSCHUNG E.V. DE (MUNCHEN) participant 40˙807.00
5    EUROPEAN ASSOCIATION FOR STORAGE OF ENERGY BE (BRUXELLES) participant 40˙401.00
6    KARLSRUHER INSTITUT FUER TECHNOLOGIE DE (KARLSRUHE) participant 33˙250.00
7    VRIJE UNIVERSITEIT BRUSSEL BE (BRUSSEL) participant 28˙750.00
8    COMMISSARIAT A L ENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES FR (PARIS 15) participant 25˙998.00
9    CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS FR (PARIS) participant 25˙000.00
10    SINTEF AS NO (TRONDHEIM) participant 23˙750.00
11    KEMIJSKI INSTITUT SI (LJUBLJANA) participant 22˙525.00
12    DANMARKS TEKNISKE UNIVERSITET DK (KGS LYNGBY) participant 20˙610.00
13    RECHARGE BE (BRUXELLES) participant 17˙250.00
14    FUNDACION CIDETEC ES (SAN SEBASTIAN) participant 14˙500.00
15    POLITECNICO DI TORINO IT (TORINO) participant 14˙125.00
16    FORSCHUNGSZENTRUM JULICH GMBH DE (JULICH) participant 14˙088.00
17    WESTFAELISCHE WILHELMS-UNIVERSITAET MUENSTER DE (MUENSTER) participant 13˙000.00

Map

 Project objective

Batteries will play an essential role in many years to come if the batteries of the future can provide reliable and safe energy at low cost, while reducing our dependence on critical raw materials and adopting sustainable value chains from mining to recycling. The emerging digitalized and connected era calls for a paradigm shift in the way we discover, design and create batteries. High-performance materials and structures must be designed from the atomic level up, using advanced approaches like density functional theory calculations in combination with machine learning and Artificial Intelligence to analyse big data collected from characterization, synthesis and testing. Sustainable chemistries must be integrated into battery cells, and critical degradation processes must be monitored by novel sensors embedded in smart batteries to take adequate corrective measures in real time. All this will lead to batteries combining high energy and power densities and thus enabling rapid charging, while at the same time being highly safe and durable, and with a low environmental footprint. The BATTERY 2030 initiative will be based on a multi-disciplinary and cross-sectorial approach to bring in all the necessary skills for developing future European battery roadmap while addressing a wide range of strategic applications. To achieve this goal, a team of 17 partners, leaders in their fields, from 9 EU member states will join efforts. Three specific objectives have been defined: 1) BATTERY 2030 roadmap establishment 2) Propose R&D actions and 3) Secure official stakeholder commitments. Related WPs, tasks, milestones and risks are considered to achieve these objectives. Beyond FETPROACT-04-2019 project, BATTERY 2030 initiative, will act as a cornerstone in the construction of a long-term research road on batteries, as the long-term initiative mentioned in the EBA strategic action plan. This new initiative will supply the European battery eco-system with completely new disruptive technologies (Low TRL).

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The information about "BATTERY 2030" are provided by the European Opendata Portal: CORDIS opendata.

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