H2020Individual fellowship2022–2025

ConCatenaTion · Novel CONnection design and modelling idealisations utilising CATENAry acTION in the disproportionate collapse resistance mechanism of cold-formed steel panelised structures

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2022-03-09 → 2025-08-14
EU contribution
€196,591
Participants
1
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Novel CONnection design and modelling idealisations utilising CATENAry acTION in the disproportionate collapse resistance mechanism of cold-formed steel panelised structures

The problem: Cold-formed steel (CFS) panelised structures are an increasingly used offsite modern method of construction (MMC) with high strength-to-weight ratio, durability, speed of construction and reduced carbon footprint. Despite these advantages, their robustness under accidental loss of support is poorly understood. Recent developments enabling longer spans, lighter sections and open-plan layouts can reduce robustness and increase vulnerability. While substantial research exists on CFS element design and standard connections, there is limited understanding of structural interactions and resistance to disproportionate collapse under loss of support, particularly the ability to develop catenary action. The absence of reliable test data and guidance has led to conservative designs, excessive material use, limited industry confidence and restricted uptake of CFS MMC. Current European standards inadequately address their robust design, hindering safe and economic implementation. Why is it important for society: Housing need: The significant deficit in housing supply and the need for more responsible and efficient construction policies underscores the need for MMC in general, and CFS panelised systems in particular, to deliver rapid, resilient and cost-efficient housing solutions. This research supports the uptake of MMC, helping governments address societal needs and providing affordable dwellings, including social housing and emergency or disaster response structures. Environmental benefit: There is an obligatory requirement for more sustainable construction solutions to meet UN SDGs. CFS panelised structures are material-efficient, highly recycled, and adaptable, reducing embodied carbon emissions. Their wider adoption supports a greener economy, “low carbon, resource efficient and socially inclusive”, by delivering safer, more affordable and more sustainable buildings with reduced waste. Economic/industry benefit: Limited design guidance for CFS robustness leads to excessive material use, high design costs and low industry confidence. This research develops guidance, improving connection detailing, modelling and reducing waste, enabling safer, more efficient construction and wider MMC adoption. Overall objectives: The aim of the Concatenation project is to evaluate the behaviour of cold-formed panelised (CFS) structures under accidental loss of support and develop connection performance criteria to enable floor catenary action as a collapse resistance mechanism under accidental loading. This fellowship undertakes: - First-of-its-kind large-scale testing of industry-standard CFS connections under loss-of-support conditions to understand connection ductility, rotation and tensile behaviour. - Development of validated analytical and numerical models - Assessment and refinement of existing design guidelines in line with European standards - Simplified modelling recommendations to imrpove safety, efficiency and sustainability The output of this research improves safety and confidence in structural robustness of CFS structures, enhances resource efficiency, and increases the competitiveness of CFS MMC sector, which will ultimately reduce costs and support the safe uptake of CFS MMC in construction.

Data: CORDIS, © European Union

Project objective

Modern methods of construction (MMC), which are highly precise, improve safety and reduce waste due to their streamlined manufacturing and construction processes, are essential to address global deficits in residential accommodation supply, reduce homelessness and housing cost overburden, whilst targeting UN sustainable development goals 11 and 13 (sustainable cities and communities and climate action, respectively). Despite its benefits, MMC use is limited worldwide, with the lack of knowledge/guidelines on the interaction between structural components and connection system behaviour playing a major role. Built offsite, cold-formed steel (CFS) load-bearing panelised construction is a MMC that offers additional advantages over standard construction such as high recyclability, ease of construction and reduced structural weight, which all combine to reduce construction-related carbon emissions. However, little understanding exists on the robustness of such structures, exacerbated by lack of published testing and modelling data. This fellowship aims to develop a novel connection prototype to enable the utilisation of catenary action within the disproportionate collapse resistance mechanism in CSF MMC. This research will, for the first time, provide much-needed design guidance and structural idealisations for use in global structural models necessary for the robust design of CFS panelised structures against disproportionate collapse. Project aims will be achieved through 1) small and medium-scale structural testing, and 2) replication of structural behaviour using advanced numerical analysis to progress a comprehensive understanding of the complex interaction between components, enabling the development of new connection design criteria that includes catenary action. The project findings will be disseminated without prejudice (typically this is not the case in the field), leading to safer and more sustainable structures and higher uptake of CFS MMC in the industry.

Original text from CORDIS.

Participants

  • UNIVERSITY COLLEGE DUBLIN, NATIONAL UNIVERSITY OF IRELAND, DUBLIN · DublinCoordinatorIreland

Links

Data: CORDIS, © European Union