Project Image Pool

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Terms of use: The pictures on this site originate from the projects in the frame of the programmes City of Tomorrow, Building of Tomorrow and the IEA Research Cooperation. They may be used credited for non-commercial purposes under the Creative Commons License Attribution-NonCommercial (CC BY-NC).

Test cell for gas diffusion electrodes as a bridging tool between basic and applied research in the field of PEFC.

Illustration of a test cell in the laboratory.

Concept of surfactant-doped polyaniline coating for gas diffusion layers

PTFE-free hydrophobisation and improved electrical conductivity: Surface-active species consisting of non-polar, negatively charged terminal groups and apolar residues attach themselves to the positively charged PANI framework, which ensures electrical conductivity.

Distribution of the ion current density in the membrane of the aged cell, expressed as a percentage compared to the initial state. This provides a detailed insight into the current distribution within the cell.

False colour image of the ion current density across the flow field of the cell.

Graphical representation of the assessment across a range of different storage technologies

Comparison of various parameters (storage capacity, TRL, efficiency, cost, safety and commercial availability) for the storage technologies under consideration. These include liquid hydrogen, compressed hydrogen, organic hydrogen carriers, metal hydrides, ammonia, but also redox flow and lithium-based battery systems, pumped storage and chemical looping hydrogen (HyLoop).

Overview IETS Task 21 Phase 3

The IETS Task 21 at a glance: A clear presentation of its development from its initiation in 2020 to Phase 3, including the activities of Subtasks 1 to 5.

New CCU/CCS value chains

Project-based analysis of new CCU and CCS value chains using a canvas.

Visibility and Obervability of distribution grid assets and grid status

One challenge for the use of decentralized flexibility is the current lack of visibility of the systems and the lack of observability in the distribution grid, as well as the lack of real-time information on the topology of the distribution grid itself. These problems make it difficult to verify the actual need for flexibility as well as to validate or measure the flexibility provided.

Data exchange between different stakeholders as a challenge

The energy system data and the data exchange between transmission and distribution system operators, as well as suppliers and aggregators, are currently only sufficient to a limited extent to enable an appropriate provision of flexibility services.

Overview of the ÜVB-VNB project landscape

Overview of the ÜVB-VNB project landscape which provides an overview of the international projects (2014-2024) which were evaluated and used for the report. Also indicated are the projects' respective focus areas

Example of a LinkedIn post for a survey

Example of a LinkedIn post for a survey which was conducted during the initial phase of the project

Speakers at the ISGAN WG6 workshop on flexibility for resilience and stakeholder interaction

Speakers at the ISGAN WG6 workshop on flexibility for resilience and stakeholder interaction, Irina Oleinikova , Martha Symko-Davies, Antonio IIliceto, Barbara Herndler, Mihai Calin

Paradigm shift in the power system

The paradigm shift in the power system and the new challenges for transmission and distribution system operators are presented.

SIRFN-AIT Workshops "Grid-forming converters - testing and validation challenges" - March 2024

International SIRFN experts and participants of the SIRFN-AIT Workshops "Grid-forming converters - testing and validation challenges" visiting the laboratory showcase at the AIT MicroGrid Labor in March 2024.

Validation environment for the SVP EN 50549-10 test scripts at AIT

Illustration of the test setup at AIT that was used to validate the test scripts that were developed within the SIRFN. The setup consists of a real-time simulation system that is connected to the controller board of the AIT Smart grid Converter.

Organisation of the SIRFN network and technical topics in the project period 2021-2023

Overview of the organisation of the SIRFN network: The work programme for Annex 5 approved by the ISGAN Executive Committee (ExCo), the decision-making body within ISGAN, is divided into two sections, one dealing with the dissemination and exchange of knowledge and the other with the implementation of concrete projects for the further development of the research infrastructure.

Background and Motivation for TSO-DSO interaction

The figure indicates the drivers, benefits, and opportunities and challenges for the interaction of distribution and transmission networks.

SIRFN focus area Advanced Laboratory Testing Methods

Within this SIRFN focus area, advanced methods for laboratory testing of components and electrical power systems are complemented by novel simulation technologies such as Power Hardware-in-the-Loop (PHIL), Controller Hardware-in-the-Loop (CHIL) and co-simulation, whose practical experience is however limited and not yet widespread. The SIRFN partner laboratories use their world-class research infrastructure to share expertise and jointly evaluate these new techniques, with the aim of establishing future test procedures within the framework of international standards, and provide recommendations for the optimal application of these techniques in laboratory environments.

SIRFN Focus Area Power System Testing

Within the framework of the SIRFN focus area "Power System Testing", leading international laboratories are pooling their activities with the aim of developing strategies for testing system aspects of digitalised, renewable energy-based, cyber-physical power systems.

SIRFN Partnerships and Stakeholders

As a global network, SIRFN also works intensively with partners from other relevant networks. These networks include research and development, industry and, in particular, the field of standardisation.

Socio-technical dimensions of smart grid transitions

Annex 7 deals with the socio-technical dimensions of the smart grid transition, in particular with researching institutional and governance-related aspects and barriers in order to advance the implementation of smart grids. The focus here is on the institutional change associated with the introduction of smart grids. The annex focuses on framework conditions such as regulation and guidelines, but also informal forms of social organization that are characterized by culture, usage habits, as well as psychological and social aspects of energy use and investment in renewable energy technologies. In this way, the annex is to be seen as complementary to existing annexes within ISGAN, and enters into an inter- and transdisciplinary dialogue with them.