
FUNDACION TECNOLOGICA ADVANTX
FUNDACION TECNOLOGICA ADVANTX
18 Projects, page 1 of 4
Open Access Mandate for Publications and Research data assignment_turned_in Project2021 - 2025Partners:Chemtrix, UG, LEITAT, UBU, UNIVERSITY OF MICHIGAN THE REGENTS OF THE UNIVERSITY OF MICHIGAN +5 partnersChemtrix,UG,LEITAT,UBU,UNIVERSITY OF MICHIGAN THE REGENTS OF THE UNIVERSITY OF MICHIGAN,FUNDACION PRIVADA INSITUTO CATALAN DE INVESTIGACIO,FUNDACION TECNOLOGICA ADVANTX,STRATAGEM ENERGY LTD,PKU,SOCAR AR-GEFunder: European Commission Project Code: 101022202Overall Budget: 4,312,290 EURFunder Contribution: 3,844,430 EURNEFERTITI will develop an innovative highly efficient photocatalytic system enabling a simultaneous conversion of CO2 and H2O into solar fuels (ethanol and alcohols with longer chain such as (iso)propanol) and thus provide a breakthrough alternative to transform CO2 into valuable products for energy and transport. NEFERTITI aims to integrate novel heterogeneous catalysts (Covalent organic frameworks and metal oxides combined with metallic nanoparticles) and luminescent solar concentrators into two Photocatalytic flow reactors sourced by sunlight energy. The reaction mechanisms for the photocatalytic CO2/H2O conversion and C-C bond formation will be defined and optimised. As this has never been done before, NEFERTITI will develop a completely new way of producing such compounds in a continuous manner having a significant impact on the scientific understating of this technology. Modelling of C-C bond formation from activated intermediates will then determinate the reaction pathways, barriers and selectivity for C-C, C-O and C-H bonds. By increasing the sunlight conversion efficiency and improving light-harvesting and charge separation, NEFERTITI will overcome the remaining technological challenges, improve the competitiveness of the photocatalytic technologies and enable a carbon-neutral production of solar fuels in a single-step process as an alternative to traditional multi-step processes. Novel photocatalytic materials, optical and chemical light-harvesting components and flow reactors will be designed, developed and integrated in a system reaching a TRL4 at the end of the project. Economic and sustainability assessment throughout the entire life cycle will consider socio-economic and environmental impacts, as well as workers’ health & safety to maximize productivity and resource efficiency and minimize the risks. The consortium is composed of an experienced multidisciplinary team from EU, China and USA, supported by an international Advisory Board.
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For further information contact us at helpdesk@openaire.euOpen Access Mandate for Publications and Research data assignment_turned_in Project2025 - 2029Partners:LOGOPLASTE ILAB, FUNDACION TECNOLOGICA ADVANTX, UNIPD, CERTH, KNEIA SL +5 partnersLOGOPLASTE ILAB,FUNDACION TECNOLOGICA ADVANTX,UNIPD,CERTH,KNEIA SL,Novamont (Italy),ICAP-SIRA CHEMICALS AND POLYMERS SPA,CSA,AU,EUROPEAN BIOPLASTICS EVFunder: European Commission Project Code: 101215161Overall Budget: 3,493,570 EURFunder Contribution: 3,493,570 EURBIO4COAT aims to validate at TRL 5 the use of 3 biobased building blocks (1,4-bioBDO, lcDCA, and biomethane) from Novamont’s biorefinery for producing safe and sustainable biobased coating solutions. Two value chains are planned: (1) Novamont will supply first-of-their kind polyester-polyols from 1,4-bioBDO and lcDCA for conversion into polyurethanes by FUNDITEC, to be used to create 1K PUD and 2K PUR in 7 prototypes under the guidance of ICAP-SIRA; (2) Aarhus University will purify biomethane for use by CEMECON in creating DLC coatings via CVD for high-temperature plastic processing tools, validated by LOGOPLASTE. Performance will be tested in terms of surface protection, printability, and controlled release under demanding conditions, with added recyclability, compostability, and no bioaccumulation, across 8 sectors (plastics, hygiene, textiles, agriculture, horticulture, furniture, energy, and construction). CERTH will implement a comprehensive SSbD methodology, guiding the development of biobased coatings with reduce (-20%) GHG emissions, allowing multiple EoL scenarios, and minimizing bioaccumulation risks. Upscaling insights(aligned with the CBE-JU TERRIFIC project), feasibility analyses, and business models will be supported by the University of Padua. KNEIA’s dissemination, exploitation, and communication efforts will maximize the visibility and impact of project outcomes. The analysis and engagement of stakeholder and the clustering activities will be performed at 2 levels: along the overall value chain by KNEIA, and with a focus on technical actors by EUBP which will establish 2 technical working groups with other EU-funded projects. Key impacts are expected in long-term progress in bio-based materials science and engineering, cost savings for industries by 30%, increased biodiversity and environmental health due to reduced pollution and sustainable resource use, expansion of the market for bio-based coatings, and enhanced competitiveness of EU SMEs
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For further information contact us at helpdesk@openaire.euOpen Access Mandate for Publications assignment_turned_in Project2017 - 2021Partners:FUNDACION TECNOLOGICA ADVANTX, ITAINNOVA, SKM AERONAUTICS, FOUNDATION FOR RESEARCH AND TECHNOLOGYHELLAS, Plastipolis +5 partnersFUNDACION TECNOLOGICA ADVANTX,ITAINNOVA,SKM AERONAUTICS,FOUNDATION FOR RESEARCH AND TECHNOLOGYHELLAS,Plastipolis,Inspiralia,OPTIMAL OPTIK OPTIKAI KFT,ORP STAMPI SRL,University of Hannover,ML ENGRAVING SRLFunder: European Commission Project Code: 768705Overall Budget: 5,133,870 EURFunder Contribution: 5,133,870 EURPolymeric seals are essential components in almost every industrial and mechanical process enabling the effective containment and movement of liquids and gases under extremes of environment. Friction is intrinsically related to seal performance. High friction accelerates wear of the seal leading to leakage and/or premature failure, and increases the energy consumption of industrial processes. Surface (micro-) texturing is a proven technique for reducing friction across lubricated rigid materials such as metal and ceramic materials. Within recent years this technique has been applied and demonstrated for polymeric and elastomeric materials at laboratory level. The project will develop and demonstrate a novel methodology for the design and high volume manufacture of surface textured polymeric components tailored to the (friction) environment within which the component operates, achieving a friction reduction of >20% at a cost premium of <10%. The novel methodology combines: •advanced modelling software for the identification of surface texture patterns that lead to significant friction reduction for target rubber and plastic seals and applications •software for the design of mould tools that enable the reliable transfer of texture patterns onto the seal surface •novel automated laser system for the application of hierarchical laser induced micro- texture patterns to the mould tool surface •best practice for moulding and de-moulding using surface textured moulds •inline optical inspection for surface texture pattern quality control The project will establish three pilot lines for demonstration of: 1) mould tool design and manufacture; and the design and manufacture of 2) rotary seals for engine applications; and 3) reciprocating seals for industrial processes.
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For further information contact us at helpdesk@openaire.euOpen Access Mandate for Publications and Research data assignment_turned_in Project2023 - 2027Partners:INRAE, FUNDACION TECNOLOGICA ADVANTX, SINTEF AS, UvA, TECNOPACKAGING +7 partnersINRAE,FUNDACION TECNOLOGICA ADVANTX,SINTEF AS,UvA,TECNOPACKAGING,AVANTIUM CHEMICALS & ENERGY AVANTIUM CHEMICAL,ACCIONA AGUA SA,TEKNOLOGIAN TUTKIMUSKESKUS VTT OY,University of Ferrara,WALKI OY,AQUALUNG CARBON CAPTURE AS,nova-Institut GmbHFunder: European Commission Project Code: 101112455Overall Budget: 7,138,170 EURFunder Contribution: 4,999,970 EURThe HICCUPS project proposes a resource efficient solution to convert biogenic CO2 emissions from wastewater treatment plants into bio-based plastics for packaging. At the heart of the HICCUPS concept lie innovative technologies for the capture, conversion to monomers and polymerization of CO2 to produce PLGA. These polymers with excellent water & gas barrier properties are fully biodegradable and 100% made from renewable feedstock which makes them a promising candidate for the replacement of fossil polyethylene. To demonstrate the potential of PLGA, packaging materials will be produced from PLGA film coated paper and molded plastic. Examples of these types of packaging are paper cups, take out boxes and sealed plastic trays for perishable food from the supermarket. The HICCUPS technology results in a GHG reduction based on CO2 utilization, replacement of fossil feedstock and by industrial electrification. In the HICCUPS project, the complete value chain from biogenic CO2 to polymer end use will be demonstrated, including downstream processing and end of life studies. Recycling and (marine) biodegradability tests will show this sustainable plastic will not accumulate in nature. To maximize impact of the HICCUPS technology, digital modelling, life-cycle assessments and a full business case analysis are initiated in the early stage of the project to provide targets for technology development. Besides the reduction of GHG emissions, HICCUPS will have societal impact by creating awareness through interaction with policy makers and civil society and the creation of new jobs in innovative fields. By targeting an industry as essential as wastewater treatment, HICCUPS aims to create a concept that can impact society and contribute to climate change mitigation, assessed by an integrated monitoring system of the carbon removal potential, on a big scale and serves as a crucial first step in upscaling this new solution to a flagship-scale commercial plant.
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For further information contact us at helpdesk@openaire.euOpen Access Mandate for Publications and Research data assignment_turned_in Project2016 - 2019Partners:BCB, FUNDACION TECNOLOGICA ADVANTX, MPG, Technion – Israel Institute of Technology, LEITAT +6 partnersBCB,FUNDACION TECNOLOGICA ADVANTX,MPG,Technion – Israel Institute of Technology,LEITAT,OBELIS,KIM,Inspiralia,ALBANIAN UNIVERSITY - UNIVERSITAS FABREFACTA OPTIME,FRS,Sofia UniversityFunder: European Commission Project Code: 732794Overall Budget: 3,998,650 EURFunder Contribution: 3,998,650 EURThe Vision of HypoSens is to develop a widely accepted,non-invasive and crucial prognostic tool for breast cancer progression in early stages to help clinicians and specially oncologists to decide about prompt therapy approaches to patients and improve quality of life and expectancy. Our breakthrough research will focus on the development, pre-clinical and clinical validation, and industrial demonstration of a unique all optical cancer prognostic system that will determine presence of cancer cells in the breast lymph nodes and characterize them, which correlates with presence of metastasis and bad prognosis. HypoSens prognostic system will consist of a non-invasive Near-infrared imaging device able to register signals through scattering media enabled by the implementation of wavefront shaping,that will process data collected by injected tumour-targeted body antibody functionalised nano-particles containing porphyrin sensors that will determine local oxygen concentration and local temperature distribution in the cancer cells.The HypoSens imaging system is strategically designed to offer a non-invasive alternative to the Sentinel Lymph Node Biopsy,the current surgical procedure for breast cancer staging. With an approximate cost of 60,000€ per device unit and additional 5,000€ per patient, the device is an affordable, accurate, easy to use prognostic solution for clinicians towards more accurate and fast diagnostics and personalised treatment options.The initial target of the project is metastatic breast cancer, with potential later involvement in other cancer markets, e.g. vulval, renal, colorectal, gastric etc (via the use of different tumor-targeting moiety).With an estimated 1.7 million new cases each year, breast cancer is the most common cancer among women worldwide.Its low cost will enable a wide and fast take-up by clinicians and hospitals leading to an important reduction of the economic and societal burden related to the diagnosis and treatment of cancer.
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