Physical and Mechanical Properties of Oak Wood from the Wooden Ship Carmen: Implications for Conservation–Restoration Practice
Abstract
1. Introduction
2. The Importance of Wood in Shipbuilding: Types of Wood and Their Advantages and Disadvantages
2.1. Types of Wood in Shipbuilding
2.2. Advantages and Disadvantages of Wood in Shipbuilding
- Workability and availability: Wood can be processed manually without sophisticated equipment, and species such as oak (Quercus spp.) demonstrate exceptional resistance to moisture and wear [10].
- Environmental sustainability: Wood is a renewable, biodegradable and ecological material with a low carbon footprint, unlike synthetic materials that are harder to recycle and produce environmental waste [21].
- Hygroscopicity: Changes in moisture content cause swelling and shrinkage, which affect dimensional stability and lead to deformation of the structure [14].
- Biological degradation: Unprotected wood is susceptible to decay and attacks by bacteria, fungi and insects. Long-term exposure to moisture can reduce durability, especially under the conditions of high humidity and seawater exposure [22].
- Natural defects and heterogeneity: Knots, cracks and the anisotropic nature of wood complicate the predictability of mechanical properties and require careful selection and testing of material [23].
3. Materials and Methods
3.1. Determining Color
3.2. Fourier Transform Infrared Spectroscopy (FT-IR)
3.3. Determining Moisture Content and Density
3.4. Determining Radial and Tangential Swelling
3.5. Determining Compressive Strength Parallel to the Grain
3.6. Determining Bending Strength and Modulus of Elasticity in Static Bending
4. Results and Discussion
4.1. Color Determination
4.2. FT-IR Analysis
4.3. Moisture Content, Density and Porosity
4.4. Wood Swelling
4.5. Compressive Strength
4.6. Bending Strength and Modulus of Elasticity in Static Bending
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| MC | Moisture content |
| MOE | Modulus of elasticity |
| MOR | Bending strength |
| RH | Relative humidity |
| SD | Standard deviation |
| UV | Ultraviolet |
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| Properties | Wood Specimens | ||
|---|---|---|---|
| Dimensions, mm | Quantity | ||
| Bright Wood (W1) * | Dark Wood (W2 and W3) * | ||
| Moisture content, density, and porosity | 20 × 20 × 25 | 6 | 9 |
| Swelling | 20 × 20 × 25 | 4 | 5 |
| Compressive strength | 20 × 20 × 40 | 10 | 12 |
| Bending strength and E modulus | 20 × 20 × 320 | 5 | - |
| Physical Properties | Moisture Content, % | Density, g/cm3 | Porosity, % | |||||
|---|---|---|---|---|---|---|---|---|
| Bright Specimens | Dark Specimens | Bright Specimens | Dark Specimens | Bright Specimens | Dark Specimens | |||
| 12.7% MC * | Oven Dry | 14.4% MC * | Oven Dry | Oven Dry | Oven Dry | |||
| Mean | 12.67 a | 14.37 b | 0.76 | 0.69 a | 0.70 | 0.64 a | 54.05 | 57.11 |
| SD * | 0.14 | 0.37 | 0.06 | 0.05 | 0.06 | 0.05 | 3.37 | 3.59 |
| Min. | 12.45 | 13.85 | 0.68 | 0.62 | 0.63 | 0.56 | 49.95 | 52.06 |
| Max. | 12.85 | 14.88 | 0.82 | 0.75 | 0.77 | 0.72 | 58.57 | 62.34 |
| Swelling, % | Bright Specimens | Dark Specimens | ||
|---|---|---|---|---|
| Radial | Tangential | Radial | Tangential | |
| Mean | 4.35 | 8.15 | 5.77 | 9.63 |
| SD * | 1.34 | 3.22 | 1.34 | 1.06 |
| Min. | 2.67 | 3.46 | 4.70 | 7.86 |
| Max. | 5.84 | 10.78 | 7.76 | 10.52 |
| Compressive Strength, MPa | Bright Specimens (12.7% MC *) | Dark Specimens (14.4% MC *) |
|---|---|---|
| Mean | 50.13 b | 36.25 a |
| SD * | 4.11 | 4.62 |
| Min. | 44.56 | 28.31 |
| Max. | 56.83 | 41.88 |
| Bright Specimens (12.67% MC *) | Bending Strength, MPa | E Modulus, GPa |
|---|---|---|
| Mean | 97.02 | 9.91 |
| SD * | 26.49 | 1.02 |
| Min | 50.69 | 8.16 |
| Max | 116.02 | 10.78 |
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Bego, M.; Hajdarević, S.; Vlaović, Z.; Pirc Barčić, A.; Martinović, S. Physical and Mechanical Properties of Oak Wood from the Wooden Ship Carmen: Implications for Conservation–Restoration Practice. Heritage 2026, 9, 171. https://doi.org/10.3390/heritage9050171
Bego M, Hajdarević S, Vlaović Z, Pirc Barčić A, Martinović S. Physical and Mechanical Properties of Oak Wood from the Wooden Ship Carmen: Implications for Conservation–Restoration Practice. Heritage. 2026; 9(5):171. https://doi.org/10.3390/heritage9050171
Chicago/Turabian StyleBego, Margarita, Seid Hajdarević, Zoran Vlaović, Andreja Pirc Barčić, and Sandra Martinović. 2026. "Physical and Mechanical Properties of Oak Wood from the Wooden Ship Carmen: Implications for Conservation–Restoration Practice" Heritage 9, no. 5: 171. https://doi.org/10.3390/heritage9050171
APA StyleBego, M., Hajdarević, S., Vlaović, Z., Pirc Barčić, A., & Martinović, S. (2026). Physical and Mechanical Properties of Oak Wood from the Wooden Ship Carmen: Implications for Conservation–Restoration Practice. Heritage, 9(5), 171. https://doi.org/10.3390/heritage9050171

