New Frontiers of Composites Applications in Heritage Buildings: Repair of Exposed Masonry of St. Nicola Church in Pisa
Abstract
:1. Introduction
- construction, or
- operation.
- preparation of the composite strip of the given length,
- removal of the mortar of the bed joints near the external surface,
- insertion of the strip, (...),
- injection of the resin to fill the joint and glue the strip to the masonry.
2. The Proposed Strengthening and Repair Technique of Exposed Masonry
- identification of the position of the brick masonry course of interest for the intervention,
- preparation of a fiber strip of adequate length: the roll is formed starting from a fabric of the appropriate fiber: namely, aramid, carbon, glass, etc.; the width of the fabric should be a suitable multiple of the final width of the strip, in such a way that, folding the fabric one or more times or by superimposing more than one fabric, the desired thickness, and cross section area, is obtained,
- rolling up of the fiber strip,
- starting of the indent: careful removal of the first stretch of the brick course (Figure 9a), and cleaning of the so obtained recess,
- application, using a spatula or a paintbrush, of low viscosity polymeric resin, for example, epoxy resin, insertion and partial unrolling of the fiber roll and its impregnation with the resin (Figure 9b),
- waiting until the resin is suitably cured, typically 24 h;
- reconstruction of the stretch of the brick course: reinsertion of the bricks and renovation of mortar joints (Figure 9c), using a mortar having a composition similar to the historical one, for example, a lime mortar,
- removal of the second stretch of the bridge course (Figure 9d),
- unrolling and impregnation of the fiber roll, as in step 5 (Figure 9e),
- reconstruction of the stretch and renovation of mortar joints, as in step 6, and so on until the total extension of the course is completed (Figure 9f).
- extension to other types of exposed masonry,
- feasibility in real cases,
- appearance of the exposed masonry at the end of the intervention,
- effectiveness over time.
3. The Case Study: The Restoration of St. Nicola Church in Pisa
3.1. St. Nicola Church
3.2. Crack Patterns and Diagnosis of the Causes
3.3. Repair and Restoration Interevntions on the Church Façades
- the scope of the type A intervention was to strengthen the edge joist of the main façade, also contributing, together with the type C intervention, to restore the connection with the transverse walls,
- the objective of type B intervention, based on the innovative method described in Section 2, was to efficiently bridge the cracks in the exposed masonry, preventing their reopening, also demonstrating the feasibility of the method itself,
- finally, the objective of the type C intervention was to provide an efficient connection at the top of the south façade and of the rear façade. The type C intervention was based on the application at the top of the wall of a horizontal steel plate, centered in the wall plane, duly connected with the wall itself. Considering that this kind of intervention is rather common, further details are omitted.
3.3.1. Type A Intervention
- Elastic modulus: ,
- Effective area: ,
- Tensile strength: .
- cleaning of the masonry surface, removing all weak and loose parts, as well as any cause that would potentially reduce the adhesion of the reinforcement,
- preparation of the top surface and its dressing by means of fine mortar,
- insertion of the connecting bars,
- application of low viscosity resin,
- addition of a bidirectional carbon-fiber fabric, and its impregnation with the low viscosity resin,
- addition of the insulating glass-fiber net,
- application of the steel plate,
- zinc coating of the steel plate.
- Steel part:
- Carbon part:
- Steel part:
- Carbon part:
3.3.2. Type B Intervention
- Area: ,
- Ultimate strength: ,
- Axial rigidity: .
3.4. Discussions
- there is no evidence of the reopening of existing cracks, or of the formation of new cracks, on the exposed masonry of the main façade, as demonstrated in detail by the photo in Figure 26,
- the marble facing of the rear façade, reconstructed during the restoration works of 2005, is undamaged, while the crack pattern. previously evident in the neighborhood of the central window is no longer active (Figure 27b), and, finally,
- the vertical crack of the south façade is still closed, so confirming that the differential settlement, which originated it, is nearly inactive.
4. Conclusions
5. Patents
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Edge | Point ID | H [m] | Deviation [mm] |
---|---|---|---|
between the main façade and the south façade | 1 | 1.07 | 10.2 |
2 | 2.70 | 25.7 | |
3 | 4.28 | 40.8 | |
4 | 8.43 | 80.3 | |
5 | 12.70 | 60.4 | |
between the rear façade and the south façade | 1 | 8.32 | −20.3 |
2 | 10.73 | −26.2 | |
3 | 13.45 | −32.8 |
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Croce, P. New Frontiers of Composites Applications in Heritage Buildings: Repair of Exposed Masonry of St. Nicola Church in Pisa. J. Compos. Sci. 2021, 5, 218. https://doi.org/10.3390/jcs5080218
Croce P. New Frontiers of Composites Applications in Heritage Buildings: Repair of Exposed Masonry of St. Nicola Church in Pisa. Journal of Composites Science. 2021; 5(8):218. https://doi.org/10.3390/jcs5080218
Chicago/Turabian StyleCroce, Pietro. 2021. "New Frontiers of Composites Applications in Heritage Buildings: Repair of Exposed Masonry of St. Nicola Church in Pisa" Journal of Composites Science 5, no. 8: 218. https://doi.org/10.3390/jcs5080218
APA StyleCroce, P. (2021). New Frontiers of Composites Applications in Heritage Buildings: Repair of Exposed Masonry of St. Nicola Church in Pisa. Journal of Composites Science, 5(8), 218. https://doi.org/10.3390/jcs5080218