H2020Individual fellowship2016–2018

IRESCO · Innovative REtrofitting for Substandard COnstruction

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2016-09-01 → 2018-08-31
EU contribution
€195,455
Participants
1
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Innovative REtrofitting for Substandard COnstruction

Much of the existing building stock in Europe and developing countries was designed according to old standards using poor material and construction practices. These buildings have deficient lateral load resistance that can lead to extensive damage and collapse during strong earthquakes as observed in recent major events (e.g Haiti 2010, Lorca 2011, Nepal 2015). In the last 15 years, loss of human life due to earthquakes was over 60,000/year with $300 Billion/year estimated economic loss. Deterioration of structural elements due to ageing and aggressive environmental conditions is another factor that can significantly increase the vulnerability of reinforced concrete (RC) structures. The retrofit of deteriorated or seismically deficient structures provides a feasible and economic approach to improving their load carrying capacity and reducing their vulnerability. Different conventional retrofitting techniques have been examined in the past to enhance the performance of substandard structures. However, these methods can be highly invasive, labour intensive and they usually increase the mass of the building. In recent years, the use of composite materials in retrofitting of existing structures has been increased substantially and proved to be efficient in accommodating deterioration of structural elements or damages observed after strong earthquakes. Externally bonded Fibre Reinforced Polymers (FRP) applications have gained ground due to the advantages such as high resistance to corrosion, excellent durability, high strength to weight ratio and adaptability of the technique to different types of structural members. However, high initial cost of FRP materials and their fire protection requirements are major obstacles to their wide application, especially in developing countries. Therefore, there is a pressing need to develop more cost-effective retrofitting solutions for substandard structures. This action aimed to develop a novel and economic method for strengthening of substandard RC structures by using a new generation of environmentally friendly mortar-based composite materials using recycled high strength steel cords/fabrics embedded in an inorganic grout matrix. This novel technique can be efficiently used for flexural, axial and shear strengthening of reinforced concrete (RC) members and it is cost effective, fire resistant, sustainable, and has low environmental impact. The main objectives of the project is to: (i) develop a better understanding of the characteristics of mortar-based composite materials with inorganic matrix and bond-slip behaviour between steel cords and grout to develop design-oriented models for the novel strengthening system; (ii) develop design-oriented models and performance-based design guidelines so that this new technique can be introduced in practice; (iii) evaluate analytically the efficiency of the novel strengthening system at improving the seismic performance of representative substandard buildings through non-linear time-history analyses; and (iv) develop practical design guidelines for adoption by European standards to use the new technology for strengthening of deficient RC members.

Data: CORDIS, © European Union

Project objective

Society worldwide is more exposed to seismic hazards due to rapid population growth and urbanization. Since the turn of the millennium, fatalities due to earthquakes were over 60,000/year, with a $300 billion/year estimated direct economic loss. Recent major earthquakes (China 2008, Haiti 2010, Lorca 2011, Japan 2012, Nepal 2015) have highlighted yet again the vulnerability of the existing substandard building stock in Europe as well as in developing countries, mainly due to inappropriate design and poor construction practices. Although new technologies, such as Fibre Reinforced Polymers (FRP), are effective for strengthening substandard structures, their high material cost is an obstacle for their widespread application, especially in developing countries. This project aims to develop an innovative and economic strengthening solution by using a novel mortar-based composite (R-SRG), which comprises of recycled high strength steel cords, by-product of tyre recycling, embedded in an inorganic grout matrix. This novel technique can be efficiently used for flexural, axial and shear strengthening of reinforced concrete (RC) members and it is cost effective (more than 40% cheaper than using FRP), fire resistant, sustainable, and has low environmental impact. While proof of concept studies by the applicant have demonstrated the efficiency of the SRG technique, this project bridges the knowledge gap by developing fundamental understanding, design-oriented models and performance-based design guidelines so that this new technique can be introduced in practice. The outcomes of this project will lead to a new generation of low-cost and efficient retrofitting systems for deteriorated or seismically deficient structures with high impact on both economy and society.

Original text from CORDIS.

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Data: CORDIS, © European Union