SUSHGEN · Sustainable Hydrogen Generation
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2009-12-01 → 2013-11-30
- Финансиране от ЕС
- 1 736 940 €
- Участници
- 8
- Схема
- MC-ITN
Линиите свързват координатора с партньорите.
Накратко на български
Нови материали за мембрани и електрокатализатори се тестват за производство на водород чрез електролиза на вода при високи температури. Това помага за намаляване на енергийния разход и създаване на въглеродно неутрално гориво от възобновяеми източници.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Sustainable Hydrogen Generation
SUSHGEN—Sustainable Hydrogen Generation Marie Curie Actions—Networks for Initial Training (ITN) FP7-PEOPLE-ITN-2008 Coordinator: University of Newcastle, UK., Professor Keith Scott (website: http://research.ncl.ac.uk/sushgen) Summary Polymer Electrolyte Membrane Water Electrolysis (PEMWE) has gained increasing interest over the last decade and represents a viable alternative for production of very pure hydrogen and oxygen from renewable energy sources, making them carbon neutral. However, the main drawback with water electrolysis is a considerable energy consumption, which can be partly resolved by increasing the operating temperature of the system. To achieve progress in the electrolyser field, this project investigated new materials for the membranes and the electrocatalysts that form the electrolyser cell. Membranes based on PBI derivatives and new pyridine-containing aromatic polyethers (TPS) have been produced that have the required conductivity above 150 °C. Also double functionality proton conducting membranes incorporating both phosphonic and sulfonic acid have been developed for operation at up to 120 oC. Composite membranes of with the short side chain perfluorosulfonic acid ionomer, Aquivion have been produced. Thin film proton conducting composite membranes have been produced of all of the above membrane systems. Evaluation of acid-doped PBI based membranes has been performed but performance is not as good as required for PEMWE. Composite membranes based on solid acids have been prepared and characterised. Composite Aquivion composite membranes have high conductivity and good performance under water electrolysis conditions at temperatures up to140 °C. Anode electrocatalyst materials, for oxygen evolution, made from Ru/Ir operating at high temperatures were investigated. The catalysts were prepared by precipitation of the hydroxides from aqueous solution of the corresponding chlorides, followed by heat treatment to form the oxides. Ruthenium oxide catalysts were shown not to be stable under cell operating conditions at high temperatures. IrO2 catalyst has been fabricated and tested in solutions of CsH2PO4 H2SO4, H3PO4, TFMSA and data indicates that such iridium oxide catalyst should be stable under electrolysis operation at high temperatures. To enhance catalyst stability different supporting materials were investigated. One-dimensional nanomaterials of nanofibre oxide electrocatalyst supports were fabricated. Nanofibre doped titanium oxide, and nanofibre and nanotubular doped ruthenium oxide supported on tin oxide have been prepared by electrospinning, and characterised for their structural, surface and electrical properties. Alternative cathode electrocatalysts to Pt catalyst such as Co3O4, Zr&Y&Ce, Ti+Zr&Ce&Y have been fabricated and characterised. The use of niobium doped titania substrates as supports for cathode catalyst was also investigated as an alternative to carbon nano-powders. Thin film electrodes, based on iridium oxides and ruthenium oxides, have been fabricated onto PEMs, using acid-doped PBI, Aquivion PFSA, sPBI-OO and other polymer membranes. Tests of the thin film electrodes in electrolysers have been performed, with very good results indicating the promise of the electrolyser technology at the lower range of intermediate temperatures. Investigations of cell performance and stability behaviour during the electrolysis of water (at high pressure) and steam have provided promising results at temperatures up to 140 °C. Using sulfonated polybenzimidazole, an in-house prepared IrO2 anode, and a commercial Pt/C cathode for example, the cell voltages at 1 and 2 A/cm2 were 1.64 and 1.75 V respectively, at 120 °C (3 bara). A PEM water electrolysis test unit (Tmax. = 80-250 °C and Pmax. = 8-50 bars, respectively) and test cell (16 cm2 geometric area) has been built for membrane electrode assembly evaluation. High temperature steam electrolyser for temperatures up to 300 oC has been tested to evaluate MEAs based on composite membranes based on solid acids. Performance of the cell was modest and voltages need to be reduced through electrode layer optimisation. The SUSHGEN ITN consists of 7 partners from six EU member states. Ten researchers underwent training in the ITN SUSHGEN. The SUSHGEN consortium organised three workshops, one summer school, one spring school and were involved in the 2nd CARISMA international conference (on progress in MEA materials for medium and high temperature polymer electrolyte fuel cells) which were attended by both SUSHGEN ESRs and ERs and external participants. The last event focused on High Temperature Electrolysers and was a joint dissemination event with the EU project Electrohypem.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Water arguably is the only true renewable source of hydrogen fuel. However extraction of the hydrogen requires significant energy input; either thermal, electrical or light. By utilizing a renewable electrical energy source, water electrolysis offers a practical route to sustainable hydrogen production. The coupling of electrolysis with renewable electrical energy (e.g. from wind) enables the full available energy to be stored as fuel (hydrogen) when there is low electrical energy demand. In addition water electrolysis offers a convenient method of localised hydrogen supply which overcomes problems and issues of its distribution. The use of a proton exchange membrane (PEM) or solid polymer electrolyte (SPE) in water electrolysis enables hydrogen production from pure (demineralised) water and electricity. PEM water electrolysis systems offer advantages over traditional technologies; greater energy efficiency, higher production rates (per unit electrode area), and more compact design. A restricting aspect of water electrolysis is the relatively high cost of the electrical energy. This programme is targeted at reducing this electrical energy requirement and reducing electrolyser cost by researching new materials for electrodes and membranes in PEM electrolysers that function at higher temperatures; thereby reducing thermodynamic energy requirements and accelerating electrode kinetics. Thus the aim of this research is to form a collaborative training programme that focuses on hydrogen production from water using advanced, medium temperature proton exchange membrane electrolysers. By operating cells at higher temperatures the free energy of the cell reaction falls and thus lower standard potentials are required. In addition, moving to the higher temperatures can enable reduction in Pt catalyst use and/or use of non-Pt catalysts for electrodes. In these ways we can reduce the capital and operating costs of PEM hydrogen electrolysers. Although high temperature elec
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITY OF NEWCASTLE UPON TYNE · Newcastle Upon TyneКоординаторОбединеното кралство
- ADVANCED ENERGY TECHNOLOGIES AE EREUNAS & ANAPTYXIS YLIKON & PROIONTONANANEOSIMON PIGON ENERGEIAS & SYNAFON SYMVOULEFTIKON Y PIRESION · AthinaГърция
- CENTRE FOR PROCESS INNOVATION LIMITED LBG · Redcar ClevelandОбединеното кралство
- CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisФранция
- FUNDACION CIDETEC · San SebastianИспания
- IDRYMA TECHNOLOGIAS KAI EREVNAS · IRAKLEIOГърция
- INSTITUTE OF ELECTROCHEMISTRY AND ENERGY SYSTEMS · SofiaБългария
- NORGES TEKNISK-NATURVITENSKAPELIGE UNIVERSITET NTNU · TrondheimНорвегия
Връзки
Данни: CORDIS, © Европейски съюз
