
HELPE
6 Projects, page 1 of 2
Open Access Mandate for Publications and Research data assignment_turned_in Project2019 - 2022Partners:EPFL, WINDCITY SRL, UTC-N, IDE, POLITO +10 partnersEPFL,WINDCITY SRL,UTC-N,IDE,POLITO,HELPE,ZH,ENERGY@WORK,CERTH,ETREL,SERVELECT,ELECTRIC CORBY CIC,CSEM,MTT,University of BristolFunder: European Commission Project Code: 815301Overall Budget: 4,990,000 EURFunder Contribution: 4,990,000 EURToday, there are still several R&D barriers, and user-acceptance-related challenges that hinder the smooth integration and proliferation of multiple Renewable Energy Technologies (RETs) in buildings. In response to that, RE-COGNITION proposes a holistic, end-to-end RETs Integration Framework towards energy positive buildings with a focus on small and medium-sized buildings in Europe. Through the envisaged Automated Cognitive Energy Management Engine (ACEME), RE will be utilized more efficiently paired with appropriate storage technologies and innovative energy systems to meet the electricity and heating/cooling demand of the buildings. The framework is designed to enable the integration of multiple, heterogeneous, energy generating systems covering the spectrum of available building-scale RES (solar (PV, thermal/ cooling), wind, bio-energy (renewable biofuel through micro-CHP) and geothermal) and demonstrating future-proof extensibility. To this end, the project entails R&D at the level of single technologies and their interconnection with novel energy systems (like heat-pumps harnessing geothermal energy, absorption chillers) leveraging current IoT and smart-grid standardization outcomes. Along with measurable improvements on each technology’s efficiency, performance, desired characteristics and cost-effectiveness, RE-COGNITION ensures optimal integration of RETs in buildings, as well as (inter)operation and matching between building RE supply and energy demand. Its stakeholder-centred approach aligns both the process and its outcomes with the needs and expectations of (end-)users by providing tools that facilitate large-scale deployment of building-scale RETs. For 36 months 15 partners from 7 EU countries will provide technology know-how, lab facilities & 5 validation sites and will work towards meeting EU’s expectations for reduced dependence on fossil fuels and cost-effectiveness compared to conventional energy generation and management solutions in buildings.
more_vert Open Access Mandate for Publications and Research data assignment_turned_in Project2019 - 2023Partners:MITSIOLIDIS - MITSOPOULOS - BOZATZIDIS TZIAKAS SA, ELLINIKA PETRELAIA MONOPROSOPIANONYMI ETAIREIA DIYLISISEFODIASMOU KAI POLISEONPETRELAIOEIDON KAI PETROCHIMIKON, CARTIF, LUREDERRA, DCS COMPUTING GMBH +13 partnersMITSIOLIDIS - MITSOPOULOS - BOZATZIDIS TZIAKAS SA,ELLINIKA PETRELAIA MONOPROSOPIANONYMI ETAIREIA DIYLISISEFODIASMOU KAI POLISEONPETRELAIOEIDON KAI PETROCHIMIKON,CARTIF,LUREDERRA,DCS COMPUTING GMBH,CERTH,HELPE,TU/e,ISLAMIC AZAD UNIVERSITY,USTL,Idener (Spain),National Centre of Scientific Research Demokritos,CNRS,Hybrid Catalysis (Netherlands),KNEIA SL,3D-CAT BV,VITO,TECNANFunder: European Commission Project Code: 814548Overall Budget: 6,764,020 EURFunder Contribution: 6,764,020 EURThe goal of the project ZEOCAT-3D is the development of a new bi-functional (two types of active centers) structured catalysts, achieving for the first time a tetramodal pore size distribution (micro-, meso1-, meso2-, macro-porous) and high dispersion of metal active sites for the conversion of methane, coming from different sources as natural gas and biogas, into high value chemicals such as aromatics (benzene, naphthalene, among others) via methane dehydroaromatization (MDA). The main drawbacks associated with this process are: Low methane conversion, low selectivity towards the desired products and the quickly deactivation due to carbon deposition onto catalyst. These problems will be overcome by the use of hierarchical zeolites structures synthetized by 3D-printing and loaded with doped molybdenum nano-oxides. The methodology of the project will go from laboratory to pilot scale demonstration in a real environment. Catalyst design and operation conditions will be optimized for different methane feedstock at lab-scale and then upscaling and construction of a final prototype will be carried out. The optimisation of these catalytic processes will bring enormous advantages for increasing the exploitation of natural gas and biogas, since ZEOCAT-3D is very well in accordance with the programme topic NMBP-24, regarding development industrial process to obtain high value chemicals at the same time that the dependence from the current fossil fuel is reduced.
more_vert Open Access Mandate for Publications and Research data assignment_turned_in Project2022 - 2026Partners:ILIOS SYMVOULEFTIKI E.E., THE CZECH HEMP CLUSTER, University of Hohenheim, CRES, GuaTecs +21 partnersILIOS SYMVOULEFTIKI E.E.,THE CZECH HEMP CLUSTER,University of Hohenheim,CRES,GuaTecs,UCLM,Nokian Tyres (Finland),AUA,HELPE,ETA,WU,University of Catania,UNIBO,European Carbon Farmers,CIEMAT,Institute of Field and Vegetable Crops,ITAP,Novamont (Italy),RE-CORD,Hellenic Petroleum (Greece),CHIMAR (HELLAS) AE,VALBOPAN-FIBRAS DE MADEIRA SA,WR,CREA,SOLTUB,NOVAFunder: European Commission Project Code: 101082070Overall Budget: 7,839,780 EURFunder Contribution: 6,999,100 EURMIDAS aims to develop, evaluate and optimize sustainable low-ILUC feedstock by developing selected industrial crops and cropping systems on European marginal agricultural land in a climate-resilient and biodiversity-friendly way to support feasible bio-based value chains. Mapping of the actual and future marginal lands that may be certified as low-ILUC, including current and future expectations on soil erosion and water stress as well as biodiversity challenges and potentials, ecosystem services, and guidelines for enhancing co-benefits will improve understanding of the available marginal land for “low-ILUC” biomass production. Selected industrial crops, already adapted to marginal lands, will be optimized through modern biotechnology tools - particularly for water-use efficiency - and through tailored agronomic practices towards improved resource efficiency. Case studies of innovative farming systems (intercropping, agroforestry) established on marginal land at farm level will improve harvesting solutions, biodiversity data and guidelines while relevant actors (farming community, bio-based industry & academia) will be engaged through Regional Advisory Groups. From the produced biomass innovative bio-based products (biochemicals, composites, and elastomers) will be developed, following the biorefinery and the circular use concept. Potential biomass-to-product(s) pathways will be identified, leading to value chain/ web concepts that will be assessed for sustainability and will produce a multi-criteria tool for the design of sustainable bio-based value webs while enhancing regional biodiversity. Finally business plans to foster circularity at farm level by engaging the farming community, industrial actors and academia through the projects’ Case Studies will be developed. Moreover, through international cooperation (Brazil, Canada) on crops, cropping systems and bio based products MIDAS allows best practices exchange and contributes to win-win scenarios development.
more_vert assignment_turned_in Project2014 - 2018Partners:HyGear B.V., CERTH, HELPE, DLR, CIEMATHyGear B.V.,CERTH,HELPE,DLR,CIEMATFunder: European Commission Project Code: 325361more_vert assignment_turned_in ProjectPartners:Πανεπιστήμιο Πατρών, Πολυτεχνική Σχολή, Τμήμα Ηλεκτρολόγων Μηχανικών και Τεχνολογίας Υπολογιστών, EUROCONSULTANTS S.A., AUGER TORQUE EUROPE LTD, University of Łódź, ADVANTIC +5 partnersΠανεπιστήμιο Πατρών, Πολυτεχνική Σχολή, Τμήμα Ηλεκτρολόγων Μηχανικών και Τεχνολογίας Υπολογιστών,EUROCONSULTANTS S.A.,AUGER TORQUE EUROPE LTD,University of Łódź,ADVANTIC,EUF-CE,BCU,LSI SOFTWARE SPOLKA AKCYJNA,University of Alcalá,HELPEFunder: European Commission Project Code: 588220-EPP-1-2017-1-LU-EPPKA2-KAFunder Contribution: 997,529 EUR<< Background >>The European PhD Hub (PhD Hub) contributes to the innovation potential of doctoral training by opening research to new avenues of collaboration among European academic and non-academic partners. The PhD Hub platform operates as a single online resource for business-driven research. It connects early-stage researchers, researchers and practitioners at the local and European level and acts as a means to match the research interests of both academia and industry.<< Objectives >>The PhD Hub offers higher education institutions the opportunity to structure innovation and research cooperation in their doctoral training and research activities with non-academic partners via the creation of local hubs. It contributes to reinforce the knowledge square and pro-actively supports the creation of new international University-Business cooperation models. Both elements are key to ensuring the contribution of higher education institutions to the EU’s innovation capacity.<< Implementation >>The PhD Hub is composed of local hubs – groups of higher education institutions and business partners. These local hubs are connected on the PhD Hub platform (phdhub.eu) at the European level to match research interests, network with peers and recruit best talents for their research activities. A range of guidelines and strategies, events and its platform, the PhD Hub support interdisciplinary, intersectoral and international research involving Early-Stage Researchers and industry partners<< Results >>The PhD Hub project's main results are: - An online platform aggregating doctoral open positions, cooperation calls and a professional network- Quality cooperation frameworks including university-business and international cooperation guidelines, local hub strategies and flagship events (Hack, EIF)- Further guides (Users' manual, Codebook, etc.), products (Knowledge graph, Social Media kit, etc) and value-added content such as in-depth articles on the PhD Hub blog, PhD useful tips and FAQs.
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