S-RePaIR · Smart Restoration with Particle Infused Repointing
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2021-09-01 → 2023-08-31
- EU contribution
- €212,934
- Participants
- 1
- Scheme
- MSCA-IF
Lines connect the coordinator with its partners.
Results in brief
Smart Restoration with Particle Infused Repointing
The S-RePaIR action explores the use of smart materials based on traditional building techniques as multifunctional intervention agents in historic masonry structures. Masonry structures of all typologies are commonly encountered worldwide and constitute a large percentage of the architectural heritage inventory, particularly in urban environments. Due to the inherent brittleness of the materials used in traditional masonry architecture, and following the effects of aging, historic masonry suffers from accumulation of damage in the form of cracks and loss of durability. Modern urban development, which includes tunnelling and an increase in ambient vibration due to traffic, is a continuous source of strain on historic masonry buildings. Preventive maintenance through structural intervention can help protect architectural heritage structures and extend the service life of existing infrastructure. The use of traditional materials is preferred from a conservation engineering standpoint as it maximises aesthetic, chemical and mechanical compatibility between the in-situ and intervention materials. Especially in the case of historic masonry, this translates to the use of lime-based mortars for repointing, rendering or reconstruction. However, lime-based mortars are characterised by low strength and an extended hardening period before for strength development. Complementing preventive maintenance, structural health monitoring (SHM) is a valuable tool for detecting damage and extraordinary structural deformation in existing structures. Early warning on these effects can help optimise the timing of preventive maintenance, leading to reduced overall intervention costs and reduction of the detrimental effects of damage. However, off-the-shelf sensors for SHM are costly, often suffer from lack of durability and are only able to provide an indirect measurement of damage onset and propagation. The practical and technological requirements of both preventive maintenance and SHM for protecting historic masonry structures can be satisfied through the use of smart multifunctional materials, namely intervention materials applied for the structural repair and maintenance of structures while also possessing self-sensing capabilities for deformation and damage. Smartness in cementitious materials, such as mortars, can be achieved through enhancement of their piezoresistive properties by means of dispersion of conductive nano- and micro-scale fillers in the material. These fillers include carbon nanotubes, graphite and carbon microfibres, all of which are characterised by different properties and different effects in the materials they are dispersed in. The primary objective of the project is the development of a smart intervention mortar based on natural hydraulic lime to be used as a repointing agent in historic masonry structures. This is accomplished through the extensive comparison of the mechanical, physical, durability and electromechanical properties of lime-based mortars doped with different types of conductive fillers at different concentrations.
Data: CORDIS, © European Union
Project objective
The objective of the proposed project is the development of a damage sensing material for application in structures of architectural heritage. This material comprises lime mortar infused with conductive carbon nano-particles, applicable for repair and strengthening of historic masonry buildings through repointing of mortar joints.The proposed material is envisaged as possessing improved strength and ductility, which are critical in enhancing the durability of existing buildings. It relies on the electrical conductivity of the nano-particles for the detection of damage and the measurement of deformation in masonry structural elements.The project begins with the optimisation of a nano-particle infused lime mortar mix. Subsequently, the characterization of the enhancement of the mechanical properties of the material is performed. This is followed by the development of a quantitative damage and deformation measurement protocol. The project is concluded by the testing of the material in full scale structural members. Through the up-scaling of novel materials and self-sensing technology, it encompasses a lab to industry transition.In addition to being a cost-effective means of structural damage monitoring, the material is expected to moderately enhance the structural behaviour of masonry members, while adhering to the principles of intervention on historic structures. In light of the danger to the integrity and durability of historic buildings due to the peaking of induced earthquake and the increase of ground movement in European urban centres, the project is deemed timely and potentially deeply impactful.The project is expected to greatly enhance the researcher's prospects for an academic career, in addition to sharpening his technical and research grant proposal writing skills. Further, it is expected to provide, in the long term, an excellent contribution to research, innovation potential, industry and society.
Original text from CORDIS.
Participants
- UNIVERSITY OF LEEDS · LeedsCoordinatorUnited Kingdom
Links
- View on CORDIS
- DOI: 10.3030/101023384
- https://www.researchgate.net/project/MSCA-IF-Smart-Restoration-with-Particle-Infused-Repointing-S-RePaIR
Data: CORDIS, © European Union
