Natural Fiber TRM for Integrated Upgrading/Retrofitting
Abstract
1. Introduction
2. Materials and Methods
2.1. Raw Jute Fiber and Jute Fiber Threads
2.2. Jute Fiber Diatons
2.3. Jute Fiber Nets
2.4. Mortar and Jute Fiber Composite Mortar
2.5. Masonry Wall
2.6. Structural Tests
2.7. Thermal Tests
2.8. DIC Analysis
3. Results and Discussion
3.1. Structural Properties
3.2. Contribution of a Single NFTRM Layer and Theoretical Ultimate Strength
- is the total number of the reinforced layers arranged at each side of the wall (see Table 9).
- is the equivalent thickness of a single layer of the NFTRM system (see Table 9).
- is the design dimension of the reinforcement measured orthogonally to the shear force; it cannot be longer than the length of the masonry wall (see Table 9).
- is the coefficient to account for the reduced tensile strength of fibers when under shear stress (see Table 9).
- is the Young’s/elastic modulus of elasticity of dry fabric/textile,
- is the design strain of NFTRM.
Partial safety factor | γRd | 1 | |
Total number of reinforced layers arranged at each side of the wall | nf | 1 | |
The equivalent thickness of a single layer of the NFTRM system | tvf | 4.25 | cm |
The design dimension of the reinforcement measured orthogonally to the shear force; it cannot be longer than the length of the masonry wall (lf ≤ H) | lf | 100 | cm |
The coefficient to account for the reduced tensile strength of fibers when under shear stress | αt | 0.8 |
3.3. Thermal Properties
- Rin. = Indoor (room) resistance,
- R1.1 = Composite mortar resistance (towards indoor),
- R2.1 = Net, diatons and mortar resistance (towards indoor),
- Rwall = Masonry wall resistance,
- R2.2 = Net, diatons and mortar resistance (towards outdoor),
- R1.2 = Composite mortar resistance (towards outdoor),
- Ramb. = Ambient/outdoor resistance.
3.4. Integrated Behavior
3.5. DIC Observations
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Jute Fiber-Derived Products | Tensile Strength | Strain Energy | Maximum Axial Stain |
---|---|---|---|
[MPa] | [kNmm] | ||
Raw fiber | 215.10 (4.4%) | 0.80 (58.9%) | 0.013 (19.1%) |
Threads | 112.45 (26.2%) | 1.03 (34.6%) | 0.07 (11.71%) |
Diatons | 15.50 (20.8%) | 14.18 (53.9%) | 0.03 (23.6%) |
Stiffness | Strain Energy | Maximum Load | Maximum Displacement | |
---|---|---|---|---|
[N/mm] | [kN.mm] | [N] | [mm] | |
Net | 7.6 (20.2%) | 8.8 (39.1%) | 217.3 (24.8%) | 72.5 (17.8%) |
Parameter | Specification |
---|---|
Standard Compliance | UNI EN 998-2 [38] |
Appearance | Fine powder |
Maximum Granulometry | 2.0 mm |
Water Content | ~18% |
Dry Apparent Density | 1545 kg/m3 ± 3% |
Fresh Mortar Density | 2029 kg/m3 ± 3% |
Capillary Water Absorption | 0.8 kg/(m2·min0.5) |
Fire Resistance Class | A1 |
Chloride Content | 0.05% Cl |
Compressive Strength (28 days) | M10 (10 N/mm2) as per EN 998-2 |
Initial Shear Strength | 0.3 N/mm2 |
Thermal Conductivity | 0.83 W/mK |
Recommended Application Temperature | +5 °C to +35 °C |
Property | Best Value | Intermediate Value (Selected Sample) | Worst Value | |
---|---|---|---|---|
Flexural Stress | MPa | Sample without jute fiber | Sample with 1% jute fiber (30 mm) | Sample with 2% jute fiber (5 mm) |
7.8 (8.5%) | 5.1 (7.9%) | 3.6 (10.9%) | ||
Compressive Strength | MPa | Sample without jute fiber | Sample with 1% jute fiber (30 mm) | Sample with 2% jute fiber (5 mm) |
32.3 (5.6%) | 21.8 (5.79%) | 6.0 (7.5%) | ||
Stain Energy | kN.mm | Sample with 2% jute fiber (30 mm) | Sample with 1% jute fiber (30 mm) | Sample without jute fiber |
2.7 (34.8%) | 0.6 (67.0%) | 0.5 (13.9%) | ||
Thermal Conductivity | W/mK | Sample with 1% jute fiber (5 mm) | Sample with 1% jute fiber (30 mm) | Sample without jute fiber |
0.4 (7.6%) | 0.5 (5.0%) | 0.8 (3.9%) |
Non-Reinforced Structural Masonry Wall (Reference) | Structural Masonry Wall Sample | Non-Reinforced Thermal Masonry Wall (Reference) | Thermal Masonry Wall Samples | ||
---|---|---|---|---|---|
Wall | Wall dimension | 1 m ×1 m ×0.25 m | 1 m ×1 m ×0.25 m | 0.9 m ×0.7 m ×0.25 m | 0.9 m ×0.7 m ×0.25 m |
Mortar (see Section 2.4 and [37]) | Mortar type | SM | SM | SM | SM |
Net (see Section 2.3 and [10]) | Number of nets | - | 2 | - | 2 |
Number of nets applied on each side | - | 1 | - | 1 | |
Net configuration | - | 2.5 cm × 1.25 cm | - | 2.5 cm × 1.25 cm | |
Net dimension | - | 1 m × 1 m | - | 0.9 m × 0.7 m | |
Diaton (See Section 2.2 and [36]) | Number of diations | - | 4 | - | 4 |
Mortar (see Section 2.4 and [38]) | Composite mortar composition | - | 1% jute fiber (30 mm) with respect to the dry mortar (SM) mass | - | 1% jute fiber (30 mm) with respect to the dry mortar (SM) mass |
External Ambient Conditions (Cold Side) | Internal Room Conditions (Hot Side) | |
---|---|---|
Temperature (°C) | 2 | 20 |
Humidity (RH%) | 50 | 50 |
Ventilation (m/s) | 10 | 1 |
Un-Strengthened Masonry Wall | NFTRM-Upgraded/Retrofitted Masonry Wall | |||
---|---|---|---|---|
Load cycle | Collapse load | Corresponding displacement | Collapse load | Corresponding displacement |
kN | mm | kN | mm | |
Ultimate load cycle | 35 | 11.15 | 236 | 31.27 |
The top fixed load on the masonry wall (set applied value) | Ftop | 39.84 | kN |
Length of the masonry wall | H | 1000 | mm |
Height of the masonry wall | l | 1000 | mm |
Thickness of the masonry wall | t | 200 | mm |
Stress due to gravity load * | σ0 | 0.1992 | MPa |
Correction coefficient of the stresses in the cross-section | P | 1.5 | |
Experimental maximum horizontal force | Vtexp | 35.41 | kN |
Calculated share stress capacity due to gravity load ** | τ0d | 0.12269 (see Figure 17) | MPa |
Maximum Experimental Horizontal Force (Measured) | Vt,R.exp. | 235.47 | kN |
Total NFTRM contribution * | 197.46 | kN | |
Contribution of a single NFTRM system package ** | 98.73 | kN |
Layers Considered | Resistances | ||
---|---|---|---|
Indoor * | Rin. | 0.040 | m2K/W |
Composite mortar layer | R1.1 | 0.050 | m2K/W |
Net + diatons + mortar layer | R2.1 | 0.116 | m2K/W |
Hollow brick resistance | Rwall | 0.396 | m2K/W |
Net + diatons + mortar layer | R2.2 | 0.116 | m2K/W |
Composite mortar layer | R1.2 | 0.050 | m2K/W |
Ambient/outdoor * | Ramb. | 0.13 | m2K/W |
Reference Masonry Wall | NFTRM-Upgraded/Retrofitted Masonry Wall |
---|---|
W/m2K | W/m2K |
1.768 | 1.114 |
Improvement in Structural Property (Among All Specimens Studied) | Improvement in Thermal Property | |
---|---|---|
(kN) | (W/m2K) | |
Current Project: | ||
NFTRM-upgraded masonry wall sample | The load-bearing capacity increased by 574.29% when compared with the un-strengthened masonry wall. | The thermal transmittance value was reduced by 36.99% when compared with the un-strengthened masonry wall. |
Man-made (Glass, basalt, steel etc.) fiber-integrated retrofitting/upgrading | ||
[26] | Increment in the peak load (three-point bending tests). | No experimental results are available. The improvement in insulation properties is attributed to the presence of EPS. |
[27] | Increment in the peak load (three-point bending tests). | No experimental results are available. The improvement in insulation properties is attributed to the presence of EPS. |
[28] | Out-of-plane and in-plane tests were performed, and improvements in shear strength and load-bearing capacity were observed, respectively. | No experimental results are available. The improvement in insulation properties is attributed to the presence of EPS. |
[29] | Enhanced peak load (in-plane tests). | No experimental results are available. The improvement in insulation properties is attributed to the presence of EPS. |
[30] | Improvement in shear strength capacity. | Improvement in insulation properties (experimental). |
[31] | Lateral load capacity improved. | No experimental results are available. |
[32] | Increment in shear strength (out-of-plane tests) and improvement in peak load (in-plane tests). | No experimental results are available. The improvement in insulation properties is attributed to the presence of EPS. |
[33] | Increment in the maximum peak load (out-of-plane). | In this case, the thermal transmittance of the masonry walls was calculated based on the materials’ thermal conductivity values. |
Ultimate strength | 5.88 | MPa |
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Majumder, A.; Valdes, M.; Frattolillo, A.; Martinelli, E.; Stochino, F. Natural Fiber TRM for Integrated Upgrading/Retrofitting. Buildings 2025, 15, 2852. https://doi.org/10.3390/buildings15162852
Majumder A, Valdes M, Frattolillo A, Martinelli E, Stochino F. Natural Fiber TRM for Integrated Upgrading/Retrofitting. Buildings. 2025; 15(16):2852. https://doi.org/10.3390/buildings15162852
Chicago/Turabian StyleMajumder, Arnas, Monica Valdes, Andrea Frattolillo, Enzo Martinelli, and Flavio Stochino. 2025. "Natural Fiber TRM for Integrated Upgrading/Retrofitting" Buildings 15, no. 16: 2852. https://doi.org/10.3390/buildings15162852
APA StyleMajumder, A., Valdes, M., Frattolillo, A., Martinelli, E., & Stochino, F. (2025). Natural Fiber TRM for Integrated Upgrading/Retrofitting. Buildings, 15(16), 2852. https://doi.org/10.3390/buildings15162852