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CORDIS

Air-Brayton cycle concentrated solar power future plants via redox oxides-based structured thermochemical heat exchangers/thermal boosters

CORDIS fournit des liens vers les livrables publics et les publications des projets HORIZON.

Les liens vers les livrables et les publications des projets du 7e PC, ainsi que les liens vers certains types de résultats spécifiques tels que les jeux de données et les logiciels, sont récupérés dynamiquement sur OpenAIRE .

Livrables

Report on environmental-friendly materials selection (s’ouvre dans une nouvelle fenêtre)

Environmental-friendly materials materials solutions roadmaps encompassing extraction and manufacture of the raw materials used to make the different parts of a future scaled-up system and on their recyclability potential and delivering a catalogue of good practices. Comparison of the TCS concept to be developed to alternative ones, to ensure that possible impacts on the environment stemming from all implementation phases will be minimised. Referred to Task 7.1.

Dissemination and exploitation plan (s’ouvre dans une nouvelle fenêtre)

Report with all exploitation actions that will proceed in parallel and interact with the dissemination activities; both strategies will be examined as a single entity and will be reported within two common deliverables Measures regarding the possibility of patenting the major outcomes and the exploitation (licensing/royalty agreements) of the produced results, monitoring of plans, progress and generation of exploitable results. Referred to Task 8.2.

Thermochemical properties variation with temperature. (s’ouvre dans une nouvelle fenêtre)

Results of investigations of powders' defect chemistry, structural changes, oxygen uptake/release and lattice expansion as a function of doping and operating temperature under long-term cyclic redox operation. Referred to Task 2.3.

Properties of structured ceramic model specimens as a function of temperature. (s’ouvre dans une nouvelle fenêtre)

Report with measured properties of developed small-scale specimens of porous foams, 3-D printed specimens and honeycombs to optimize manufacturing conditions for production of structures with optimal heat transfer and thermomechanical stability characteristics. Referred to Tasks 3.1 and 3.2.

First version of revised project management plan. (s’ouvre dans une nouvelle fenêtre)

First version of revised project management plan with Gantt chart and Work Breakdown Structure according to project’s current progress. Referred to Task 1.2.

Powder redox-relevant properties variation with temperature and pressure. (s’ouvre dans une nouvelle fenêtre)

Results of lab-studies on powders of synthesized materials investigating oxygen release/uptake and reaction enthalpies as a function of metal cations composition within a broad temperature and pressure window. Comparison of properties between pristine materials and materials after cyclic testing. Referred to Tasks 2.2 and 2.3.

Project management plan with Gantt chart and Work Breakdown Structure (s’ouvre dans une nouvelle fenêtre)

Detailed Project Management Plan with a Gantt chart and a Work Breakdown Structure WBS including a schedule per task responsible partner related subtasks related deliverables and dependencies on other tasks 1st version submitted in M3 Referred to Task 12

First version of simulation results of redox structures thermochemical expansion (s’ouvre dans une nouvelle fenêtre)

First version of simulation results of redox structures thermochemical expansioncalculated through thermomechanical simulations and stress analysis to evaluate and quantify the chemical/thermal contributions of the chemical reactions on dimensional changes of the ceramic objects and the critical chemical and thermal stresses as a function of oxide compositions, employing as input real key characteristics of the porous objects provided by the manufacturing partners or measured experimentally. Referred to Task 4.2.

Structured objects geometries and design of dual-bed unit for integrated TCS /thermal booster operation (s’ouvre dans une nouvelle fenêtre)

Conceptual design of the beds (geometry, dimensions, etc.) updated to define the global geometry, dimensions and ceramic block configurations, to assess the best ceramic block configuration for minimum pressure drop and optimized flow distribution through the beds and identify if any part of the unit has to rely on purely sensible heat storage. The outcome will be a complete, dual-bed design with integrated hybrid sensible-TCS. Referred to Task 4.3.

First version of chemical/transport processes simulation results in redox structures. (s’ouvre dans une nouvelle fenêtre)

First version of chemical/transport processes simulation results in redox structures. based on mathematical models describing solar thermal-aided thermochemical reactions inside solid oxide structured reactors, modified with inputs from experiments, to provide more realistic outcome. Referred to Task 4.1.

Optimized redox powders scaled-up powder synthesis/processing protocols. (s’ouvre dans une nouvelle fenêtre)

“Standardized” large-scale powder synthesis protocol including all required steps (pre-processing, mixing, sintering, post-processing) elaborated. via extensive products' characterisation to ensure that the produced batches have reproducible properties, tuned to the requirements of the shaping/forming processes. Referred to Task 5.1.

Computationally-screened shortlisted redox compositions for further research (s’ouvre dans une nouvelle fenêtre)

First shortlist of redox oxide compositions of interest as identified through computational and thermodynamic properties' modeling and calculation of thermodynamic parameters of interest with the aid of commercial and in-house developed codes and software packages. Referred to Task 2.1.

Quality management plan (s’ouvre dans une nouvelle fenêtre)

Quality Management Plan to serve as a guide for internal use stating the main procedures and rules on project management implemented for quality assurance of the project and describing the provisions and guidelines adopted by the partners in order to ensure the control of the quality of the project results Referred to Task 12

Second version of revised project management plan (s’ouvre dans une nouvelle fenêtre)

Second version of revised project management plan with Gantt chart and Work Breakdown Structure according to project’s current progress. Referred to Task 1.2.

Data Management Plan (s’ouvre dans une nouvelle fenêtre)

Data Management Plan distinguishing data as private, publishable and Open Access, and defining the main criteria adopted to distinguish among them. Referred to Task 8.2.

Project’s website and electronic communications network (s’ouvre dans une nouvelle fenêtre)

Launch of project’s website, protected acronym, electronic communications network and social media account. Referred to Task 8.1.

Publications

Porous monolithic perovskite structures for high-temperature thermochemical heat storage in Concentrated Solar Power (CSP) plants and renewable electrification of industrial processes (s’ouvre dans une nouvelle fenêtre)

Auteurs: C. Agrafiotis, M. Pein, A. Eltayeb, L. deOliveira, L. Klaas, A.K. Singh, M. Roeb, C. Sattler
Publié dans: SolarPaces Conference, 2024, ISSN 2751-9899
Éditeur: TIB Open Publishing
DOI: 10.5281/ZENODO.17652728

Calcium Manganite Based Materials for Thermochemical Energy Storage in High Temperature Solar Thermal Plants: Materials Screening (s’ouvre dans une nouvelle fenêtre)

Auteurs: Chrysa Pagkoura; Georgia Kastrinaki; George Karagiannakis
Publié dans: SolarPACES Conference Proceedings, 2024, ISSN 2751-9899
Éditeur: TIB Open Publishing
DOI: 10.5281/ZENODO.17653159

Numerical study of a copper oxide-based thermochemical heat storage system (s’ouvre dans une nouvelle fenêtre)

Auteurs: Zhen Cao, Bas Joris de Leeuw, Tianchao Xie, Abhishek K. Singh
Publié dans: Case Studies in Thermal Engineering, Numéro 63, 2025, ISSN 2214-157X
Éditeur: Elsevier BV
DOI: 10.5281/ZENODO.17653254

Thermochemical oxygen pumping with perovskite reticulated porous ceramics for enhanced reduction of ceria in thermochemical fuel production (s’ouvre dans une nouvelle fenêtre)

Auteurs: M. Pein, J. Keller, C. Agrafiotis, A. Eltayeb, L. Klaas, M. Roeb, C. Sattler
Publié dans: Advanced Energy Materials,, Numéro 14(19), 2304454, 2024, ISSN 1614-6840
Éditeur: Wiley
DOI: 10.1002/aenm.202304454

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