The starting point of the AD ASTRA project was to shed light on the degradation effects on field-tested samples. Through the post-operation analysis and characterization of a large number of samples coming from stacks operated in the field for periods ranging between 2000 up to 40000 hours (both in fuel cell and electrolysis mode), provided by both Sunfire and SolidPower (SolydEra), an inventory of failure effects has been established. Specific investigations, particularly addressing the effects perceived in the inlet, outlet and intermediate areas of the cell or interconnect, have been carried out to achieve a comprehensive operating history of these samples, aiming to define coherent correlations between the stressing of one or more operating parameters and the induced effects.
The core of the AD ASTRA project was the definition and validation of Accelerating Stress Test (AST) procedures for the main cell and stack components (fuel electrode, air electrode and interconnects). Relying on the accumulated information (from experiments, post-mortem analysis and modelling activities), a design of experiments (in 3 cycles) for accelerated tests of SOC have been established to systematically address, harness and accelerate the failure modes of the aforementioned SOC components through a testing approach consisting of both in-situ aggravated tests of cells/stacks and ex-situ artificial ageing of components. This experimental approach, based on well formulated targets and selected stressors, ensured the establishment of a quantitative relation between the real-life aging data and the AST aging data that replicate the calendar aged state, presented as acceleration factor (AF). As a final outcome of the project, related to this extensive experimental campaign, 12 AST protocols have been elaborated, including high temperature, high steam, high current density, high pressure, redox treatments and cycling operation as stressors. AST procedures will be available on the project website and public repositories for further use by the scientific community and will contribute to the standardisation of accelerated stress test procedures by International Electrotechnical Commission, Technical Commitee 105 in the next future.
Another key result achieved within the AD ASTRA project has been the design of mathematical transfer functions that can correlate applied operating conditions to degradation rate of SOC units. The design process of these functions was summarized into a general procedure that takes into account experimental evidence and model design through multiscale modelling approach, involving high-level, low-level, stochastic and statistical models. As final result, the transfer functions have been achieved by summarizing the degradation models information into performance models and conceiving the transfer functions design approach, ultimately leading to the possibility of predicting the Remaining Useful Lifetime (RUL).
The dissemination and exploitation of all the results achieved by the AD ASTRA project has led to a total number of 28 presentations at events and 27 papers published on peer-reviewed journals. Accessibility to the open access publications has been guaranteed via selected public repository, and datasets related to publications have been made available for download. A dedicated workshop was jointly organized between AD ASTRA and RUBY projects, and it was held in Lucerne as an official side event of the 15th European SOFC & SOE Forum, bridging together project partners, researchers and industries representatives.