Submitted:
11 November 2024
Posted:
12 November 2024
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Properties of Repaired Maholes
- Concrete Base Layer: Serving as the primary load-bearing substrate, this layer has a Young's modulus of E=30,000 MPa and a Poisson's ratio of ν=0.2, reflecting the mechanical properties of concrete commonly used in sewer infrastructure. This base layer is the most structurally significant in terms of supporting loads and providing overall rigidity to the composite system.
- Polyurea Coating Inner Layer: The inner polyurea layer functions as a chemical barrier, shielding the concrete from further environmental degradation. Inner polyurea layer has very low stiffness properties, with a Young's modulus of E=100 MPa and Poisson's ratio ν=0.25.
- Middle Layer – Polyurethane Foam: A closed-cell polyurethane foam layer, characterized by a Young's modulus E=800 MPa and Poisson's ratio ν=0.25, is employed to reconstruct the geometry of the corroded or damaged sections. Although the foam does not add significant stiffness, it contributes to restoring the original shape and volume of the concrete section.
- Polyurea Coating Outer Layer: The outer polyurea layer functions as a chemical barrier, shielding the foam from further environmental degradation. Outer polyurea layer has same stiffness properties as inner one, with a Young's modulus of E=100 MPa and Poisson's ratio ν=0.25.
2.2. Assembly of Stiffness Matrix for Finite Element Models
2.2.1. Element Selection
2.2.2. Integration Scheme
2.2.3. Strain-Displacement Matrix
2.2.4. Shape Functions for Eight-Node Hexahedral and Four-Node Shell Elements
2.2.5. Material Property Matrix
2.3. Homogenization Process
2.3.1. Static Condensation and Stiffness Matrix Reduction
2.3.2. Energy Equivalence and Transformation
2.3.3. Relationship Between Displacements and Effective Strains
2.3.4. Elastic Strain Energy Equivalence
2.3.5. Stiffness Matrix for Homogenized Composite Model
2.3.6. ABD Matrix and Effective Material Properties
2.3.7. Effective Thickness Calculation
2.3.8. Computation of Effective Material Properties
2.3.9. Transverse Shear Stiffness
2.4. Stochastic Generation of the 3D RVE Model
3. Results
- An internal polyurea layer for moisture protection,
- A polyurethane foam layer with variable thickness, tailored to match the depth of material losses, thereby both compensating for the degradation and increasing the cross-section by an additional 80 mm,
- An external polyurea layer to enhance durability and protect against further environmental damage.
| A matrix | D matrix | R matrix |
|---|---|---|
4. Discussi1on
4.1. Stiffness Reductions in Repaired Sections
4.2. Limitations of the Repair Method
4.3. Challenges in Achieving Full Restoration of Mechanical Performance
4.4. Implications for Practical Applications and Future Improvements
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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| A matrix | D matrix | R matrix |
|---|---|---|
| Changes in stiffness |
Deteriorated vs initial |
Repaired vs initial |
Repaired vs deteriorated |
|---|---|---|---|
| [%] | -10.19 | -8.45 | 1.94 |
| [%] | -22.78 | -7.93 | 19.23 |
| [%] | -10.19 | -7.99 | 2.45 |
| Effective parameters |
from D matrix | from A matrix | from R matrix |
|---|---|---|---|
| / [MPa] | 30,993 (5,337) | 30,993 (17,243) | - |
| [-] | 0.24999 | 0.24995 | - |
| [MPa] | 11,623 (2,002) | 11,622 (6,466) | - |
| / [MPa] | - | - | 9,685 (5,387) |
| A matrix | D matrix | R matrix |
|---|---|---|
| Changes in stiffness |
Deteriorated vs initial |
Repaired vs initial |
Repaired vs deteriorated |
|---|---|---|---|
| [%] | -38.26 | -35.82 | 3.96 |
| [%] | -71.93 | -50.60 | 76.00 |
| [%] | -38.26 | -35.17 | 5.01 |
| Effective parameters |
from D matrix | from A matrix | from R matrix |
|---|---|---|---|
| / [MPa] | 29,296 (1,940) | 29,298 (11,853) | - |
| [-] | 0.24999 | 0.24978 | - |
| [MPa] | 10,989 (727) | 10,987 (4,445) | - |
| / [MPa] | - | - | 9,156(3,704) |
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