Author Contributions
Conceptualization, C.T. and R.S.; methodology, R.S.; validation, J.F., J.Z., P.K. (Přemysl Kheml), and M.M.; formal analysis, M.M.; investigation, C.T. and P.K. (Přemysl Kheml); resources, J.F.; data curation, M.M.; writing—original draft preparation, C.T.; writing—review and editing, M.M., R.S., and J.Z.; visualization, M.M.; supervision, P.K. (Petr Konvalinka); project administration, J.F.; funding acquisition, P.K. (Petr Konvalinka ) and J.F. All authors have read and agreed to the published version of the manuscript.
Figure 1.
Experimental design (dimensions in mm).
Figure 1.
Experimental design (dimensions in mm).
Figure 2.
Experimental flexural test campaign.
Figure 2.
Experimental flexural test campaign.
Figure 3.
Predamaged slabs: differences between projectiles’ entrance (on the left) and exit (on the right) side.
Figure 3.
Predamaged slabs: differences between projectiles’ entrance (on the left) and exit (on the right) side.
Figure 4.
Experimental design (dimensions in mm).
Figure 4.
Experimental design (dimensions in mm).
Figure 5.
Experimental shear test campaign.
Figure 5.
Experimental shear test campaign.
Figure 6.
Experimental design of the circular supporting pattern (dimensions in mm).
Figure 6.
Experimental design of the circular supporting pattern (dimensions in mm).
Figure 7.
Experimental design of the circular supporting pattern-section AA’ (dimensions in mm).
Figure 7.
Experimental design of the circular supporting pattern-section AA’ (dimensions in mm).
Figure 8.
Circular supporting pattern.
Figure 8.
Circular supporting pattern.
Figure 9.
Experimental design (dimensions in mm).
Figure 9.
Experimental design (dimensions in mm).
Figure 10.
Experimental punching test campaign.
Figure 10.
Experimental punching test campaign.
Figure 11.
Notched slabs (on the left) and detail of the notch (on the right).
Figure 11.
Notched slabs (on the left) and detail of the notch (on the right).
Figure 12.
Load–deflection curves (* damaged; _Lab: cast in the laboratory).
Figure 12.
Load–deflection curves (* damaged; _Lab: cast in the laboratory).
Figure 13.
Load-deflection curves (_Lab: cast in the laboratory).
Figure 13.
Load-deflection curves (_Lab: cast in the laboratory).
Figure 14.
Load–deflection curves (_lab: cast in the laboratory).
Figure 14.
Load–deflection curves (_lab: cast in the laboratory).
Figure 15.
Cracking mode section.
Figure 15.
Cracking mode section.
Figure 16.
Tripod holding a charge (on the left) and simultaneous explosion over individual plates (on the right).
Figure 16.
Tripod holding a charge (on the left) and simultaneous explosion over individual plates (on the right).
Figure 17.
Local damage (LD) of the UHPFRCC slab due to the contact explosion from 75 g of TNT (on the left) and frontal erosion (FE) of the UHPFRCC slab from the blast experiment of 400 g of TNT from 1 m (on the right).
Figure 17.
Local damage (LD) of the UHPFRCC slab due to the contact explosion from 75 g of TNT (on the left) and frontal erosion (FE) of the UHPFRCC slab from the blast experiment of 400 g of TNT from 1 m (on the right).
Figure 18.
Global failure (GF) of the UHPFRCC slab due to the explosion of 1.2 kg of TNT from a stand-off distance of 1 m (on the left) and global failure (GF) of the UHPFRCC slab from the blast experiment of 2 kg of TNT from 1 m (on the right).
Figure 18.
Global failure (GF) of the UHPFRCC slab due to the explosion of 1.2 kg of TNT from a stand-off distance of 1 m (on the left) and global failure (GF) of the UHPFRCC slab from the blast experiment of 2 kg of TNT from 1 m (on the right).
Figure 19.
Post-test picture showing crack propagation on the distal face of the UHPFRCC wall.
Figure 19.
Post-test picture showing crack propagation on the distal face of the UHPFRCC wall.
Figure 20.
Ballistics loading of the tetragon house (on the left) and the post-test picture showing surface erosion from individual hits on the proximal face of the UHPFRCC plates (on the right).
Figure 20.
Ballistics loading of the tetragon house (on the left) and the post-test picture showing surface erosion from individual hits on the proximal face of the UHPFRCC plates (on the right).
Table 1.
Mix design.
Component | Portion |
---|
Cement | 1 |
Silica fume | 0.1 |
Silica powder | 0.25 |
Silica sand 0.1–1.2 mm | 1.6 |
High-range water reducers | 0.01 |
Antifoaming agent | 0.001 |
Table 2.
Specimens characteristics summarization.
Table 2.
Specimens characteristics summarization.
Specimen | Status | Casting Place |
---|
slab01 | undamaged | industrial unit |
slab02 | undamaged | laboratory |
slab03 | undamaged | industrial unit |
slab04 | undamaged | industrial unit |
slab05* | *damaged | laboratory |
slab06* | *damaged | industrial unit |
slab07* | *damaged | industrial unit |
slab08 | undamaged | industrial unit |
Table 3.
Specimens’ characteristics summarization.
Table 3.
Specimens’ characteristics summarization.
Specimen | Sides | Status | Casting Place |
---|
Slab 01 | A-B | undamaged | industrial unit |
Slab 02 | A-B | undamaged | laboratory |
Slab 03 | A-B | undamaged | laboratory |
Table 4.
Specimens characteristics summarization.
Table 4.
Specimens characteristics summarization.
Specimen | Status | Casting Place |
---|
Slab 01 | notched | laboratory |
Slab 02 | notched | laboratory |
Slab 03 | notched | laboratory |
Table 5.
Peak-load average value and standard deviation.
Table 5.
Peak-load average value and standard deviation.
| Undamaged Slabs | Damaged Slabs |
---|
| 1st Peak Load (kN) | Max Peak Load (kN) | Max Peak Load (kN) |
---|
No. of tests | 5 | 5 | 3 |
Range | 4.7–6.7 | 5.2–9.5 | 4.2–6.8 |
Average | 5.1 | 7.3 | 5.7 |
SD | 0.9 | 1.6 | 1.3 |
Table 6.
Deflection average value and standard deviation.
Table 6.
Deflection average value and standard deviation.
| Undamaged Slabs | Damaged Slabs |
---|
| 1st Peak Defl. (mm) | Max Peak Defl. (mm) | Max Peak Defl. (mm) |
---|
No. of tests | 5 | 5 | 3 |
Range | 2.3–4.0 | 9–24.7 | 10.7–21 |
Average | 2.8 | 16.9 | 15.8 |
SD | 0.7 | 6.3 | 5.2 |
Table 7.
Fracture energy average value and standard deviation.
Table 7.
Fracture energy average value and standard deviation.
| Undamaged Slabs | Damaged Slabs |
---|
| GfA (J) | GfB (J) | Gf_TOT (J) | GfA (J) | GfB (J) | Gf_TOT (J) |
---|
No. of tests | 5 | 5 | 5 | 3 | 3 | 3 |
Range | 32–175 | 80–164 | 148–290 | 31–110 | 65–75 | 99–175 |
Average | 97.2 | 127.9 | 225.2 | 70.3 | 69.5 | 139.8 |
SD | 56.7 | 32.5 | 65.9 | 39.3 | 5.3 | 37.9 |
Table 8.
Flexural strength average value and standard deviation.
Table 8.
Flexural strength average value and standard deviation.
| Flexural Strength (MPa) |
---|
| Undamaged Slabs | Damaged Slabs |
---|
No. of tests | 5 | 5 |
Range | 10–19 | 8–13 |
Average | 14.4 | 11.2 |
SD | 3.1 | 2.6 |
Table 9.
Summarization of toughness index data.
Table 9.
Summarization of toughness index data.
| Undamaged Slabs |
---|
Laboratory | Ind. Unit | Ind. Unit | Ind. Unit | Ind. Unit |
---|
slab02 | slab01 | slab03 | slab04 | slab08 |
---|
I5 [-] | 4.78 | 4.21 | 4.65 | 4.34 | 4.63 |
I10 [-] | 10.47 | 8.43 | 10.05 | 9.23 | 10.28 |
I20 [-] | 19.70 | 15.49 | 19.63 | 17.36 | 22.78 |
I30 [-] | 24.41 | 20.31 | 25.50 | - | 33.99 |
I40 [-] | - | 23.05 | 28.50 | - | 41.63 |
I50 [-] | - | 24.27 | - | - | 46.08 |
Table 10.
Summarization of residual strength factors data.
Table 10.
Summarization of residual strength factors data.
| Undamaged Slabs |
---|
Laboratory | Ind. Unit | Ind. Unit | Ind. Unit | Ind. Unit |
---|
slab02 | slab01 | slab03 | slab04 | slab08 |
---|
R 5,10 [-] | 113.88 | 84.31 | 108.15 | 97.77 | 112.98 |
R 10,20 [-] | 92.29 | 70.67 | 95.75 | 81.26 | 125.13 |
R 20,30 [-] | 47.10 | 48.19 | 58.64 | - | 111.98 |
R 30,40 [-] | - | 27.36 | 30.04 | - | 76.41 |
R 40,50 [-] | - | 12.23 | - | - | 44.49 |
Table 11.
Flexural toughness factor average value and standard deviation.
Table 11.
Flexural toughness factor average value and standard deviation.
| Flexural Toughness Factor (MPa) |
---|
| Undamaged Slabs | Damaged Slabs |
---|
No. of tests | 5 | 3 |
Range | 8–12 | 5–7 |
Average | 9.7 | 6.3 |
SD | 1.2 | 1.1 |
Table 12.
Peak-load average value and standard deviation.
Table 12.
Peak-load average value and standard deviation.
| Peak Load (kN) | Failure Load (kN) |
---|
No. of tests | 6 | 6 |
Range | 60–78 | 52–60 |
Average | 69.6 | 54.8 |
SD | 6.4 | 3.0 |
Table 13.
Deflection average value and standard deviation.
Table 13.
Deflection average value and standard deviation.
| Peak Deflection (mm) | Failure Deflection (mm) |
---|
No. of tests | 6 | 6 |
Range | 1.4–2.9 | 4.2–5.3 |
Average | 2.2 | 4.7 |
SD | 0.6 | 0.5 |
Table 14.
Fracture energy average value and standard deviation.
Table 14.
Fracture energy average value and standard deviation.
| Fracture Energy (J) | Fracture Energy (kJ/m2) |
---|
No. of tests | 6 | 6 |
Range | 165–257 | 16–46 |
Average | 221.5 | 29.9 |
SD | 51.4 | 9.8 |
Table 15.
Shear strength average value and standard deviation.
Table 15.
Shear strength average value and standard deviation.
| Shear Strength (MPa) |
No. of tests | 6 |
Range | 11–14.5 |
Average | 13.1 |
SD | 1.2 |
Table 16.
Max-load and corresponding deflection average value and standard deviation.
Table 16.
Max-load and corresponding deflection average value and standard deviation.
| Max Load (kN) | Deflection (mm) |
---|
No. of tests | 6 | 6 |
Range | 44–50 | 3–4 |
Average | 46.8 | 3.4 |
SD | 2.6 | 0.4 |
Table 17.
Punching shear average value and standard deviation.
Table 17.
Punching shear average value and standard deviation.
| Punching Shear (MPa) |
---|
r = 45 mm | r = 105 mm |
---|
No. of tests | 6 | 6 |
Range | 5–6 | 2–3 |
Average | 5.5 | 2.4 |
SD | 0.3 | 0.1 |
Table 18.
Response of ultra-high-performance fibre-reinforced cement-based composites (UHPFRCC) plates to blast loads of 75 g of TNT.
Table 18.
Response of ultra-high-performance fibre-reinforced cement-based composites (UHPFRCC) plates to blast loads of 75 g of TNT.
Charge (g TNT) | Contact | Stand-off Distance (mm) |
---|
| | 250 | 375 | 500 | 750 | 1000 |
75 | LD | FE | FE | FE | NO | NO |
Table 19.
Response of UHPFRCC plates to blast loads at 1000 mm stand-off distance (SOD).
Table 19.
Response of UHPFRCC plates to blast loads at 1000 mm stand-off distance (SOD).
SOD (mm) | Charge (g TNT) |
---|
| 75 | 150 | 225 | 300 | 400 | 600 | 800 | 1200 | 1600 | 2000 |
1000 | NO | NO | NO | NO | FE | FE | FE | GF | GF | GF |