H2020Individual fellowship2019–2021

RAMBEA · Realistic Assessment of Historical Masonry Bridges under Extreme Environmental Actions

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2019-07-03 → 2021-11-30
EU contribution
€224,934
Participants
1
Scheme
MSCA-IF-EF-ST

Lines connect the coordinator with its partners.

Results in brief

Realistic Assessment of Historical Masonry Bridges under Extreme Environmental Actions

Masonry arch bridges form a substantial part of existing bridges and play a critical role within the European transportation system. Moreover, historical masonry bridges belong to the architectural heritage and represent a tangible experience of past construction technologies that should be safeguarded. Many of these structures are located in seismic prone regions and/or in areas subjected to floods and hydrogeological instability aggravated by climate change. Thus besides increasing traffic loading, they can be subjected to extreme environmental actions which may potentially lead to bridge failure causing severe disruptions and major economic and cultural losses. In this regard, realistic structural assessment under extreme loading conditions is a current challenge for the structural engineering community which may prevent future failures by identifying structures in critical conditions, prone of suffering extensive damage from extreme events, and in need of strengthening. In general, the response of masonry bridges is very complex as it is determined by the interaction between different structural and non-structural parts. However, current modelling strategies are formulated following limit analysis principle or simplified 2D finite element descriptions which disregard the masonry anisotropy and the potential activation of spatial, global or local, failure mechanisms of the bridge. Finite element mesoscale approaches enabling an explicit representation of masonry bond, where mortar joints and masonry units are modelled separately, can provide accurate predictions of realistic masonry bridges under different loading conditions representing complex cracking patterns, including transverse cracks due to differential settlements induced by pier scour or earthquakes. However, as this advanced strategy requires superior computational resources and specialist users, it is not suitable for practical assessments. The RAMBEA project has developed an innovative methodology for realistic analyses of historical masonry bridges under extreme environmental actions. It is based upon a two-scale FE description of masonry components of the bridge combined with contact elements to connect masonry arch and external walls to the continuum backfill domain. The developed modelling strategy allows a reliable description of the anisotropic micro-structure of masonry, considering the cohesive and frictional characteristics of the masonry joints, including the degradation of strength and stiffness under cyclic loading. The model enables realistic predictions of complex, three-dimensional cracking patterns while allowing for computational efficiency. Moreover, the RAMBEA project has developed a practical and robust calibration procedure based upon the mesoscale mechanical properties of bricks and masonry joints which can be easily obtained by non-destructive in-situ tests, suitable to be used for historical constructions and cultural heritage assets. The developed methodology has been applied to real case studies, where the numerical predictions provided by the novel efficient strategy have been compared against available experimental data or the numerical results obtained employing high-fidelity mesoscale descriptions of the analysed bridge structures. The main outcome of RAMBEA is thus an efficient and accurate numerical approach for the structural assessment of historical masonry bridges subjected to complex loading conditions corresponding to extreme natural events.

Data: CORDIS, © European Union

Project objective

The RAMBEA project will develop a novel computational strategy for accurate and efficient simulations of historical masonry bridges subject to extreme environmental actions, including loadings induced by earthquakes and flooding. The aim is to provide a comprehensive tool for realistic assessment with the potential of transforming current practice related to strengthening of critical assets, contributing to an increased resilience of the built environment and the preservation of important elements of the architectural heritage, thus responding to the safety and socio-economic needs highlighted in Horizon 2020.Old masonry bridges still play a critical role within the European transportation system. Moreover, they belong to the architectural heritage representing a valuable expression of past construction technology. Many of these structures are located in seismic regions and in areas subject to floods and hydrogeological instability which have been aggravated by climate change. Thus they can be exposed to extreme environmental actions which may potentially lead to bridge failure causing significant economic damage and the loss of structures with cultural and historical value. Currently, the response of masonry bridges under extreme loading is evaluated using simplified models due to the lack of efficient detailed models. However, these approaches do not allow for the complex 3D behaviour potentially leading to unrealistic and unsafe predictions. The main challenge of this project is the development of a more advanced strategy, based on a novel numerical description allowing for the 3D interaction between the different bridge components under extreme loading. More specifically, I will develop an efficient 3D finite element representation with macro-elements for the masonry parts of the bridge, an accurate description for the physical interface between masonry and backfill and an effective model calibration strategy utilising the results of non-destructive tests.

Original text from CORDIS.

Participants

  • IMPERIAL COLLEGE OF SCIENCE TECHNOLOGY AND MEDICINE · LondonCoordinatorUnited Kingdom

Links

Data: CORDIS, © European Union