Comparative Analysis of Acoustic Wave Velocity (AWV) and Ultrasonic Pulse Velocity (UPV) for Non-Destructive Evaluation of Fibre-Managed Eucalyptus nitens Logs and Recovered Samples
Abstract
1. Introduction
- To find and analyse the correlation between DMOE measurement on logs using AWV and UPV tools and DMOE on small samples with static MOE.
- To understand the correlation between NDE and destructive results based on the age of the logs and recovered small samples.
- Based on the sample location inside the log, to analyse the correlation of DMOE and static MOE for small samples.
2. Materials and Methods
2.1. NDT of Harvested Logs
2.2. Sample Processing and Preparation
2.3. NDT of Recovered Small Samples
2.4. Density (kg/m3) and Moisture Content (MC%) Measurement
2.5. Static Bending Test
2.6. Data Analysis and Statistical Methods
- Based on the regression analysis and correlation, the relationship between the actual stiffness (static MOE) and expected stiffness (DMOE) was examined according to the sample location and age of the logs.
- Based on the small sample location inside the log, the final analysis looked at the overvaluation or undervaluation (%) of the static MOE by DMOE results.
3. Results
3.1. Traits of Harvested Logs
3.2. Traits of Recovered Small Samples
3.3. Correlation Between NDE and Static MOE Results of Samples
3.3.1. Correlation Between NDE and Static MOE Results Without Age
3.3.2. Correlation Between NDE and Static MOE Results Based on Age
3.4. Correlation Between NDE and Static MOE Results Using the Sample Location Inside the Log
3.4.1. Correlation Between NDE and Static MOE Results Without Age
3.4.2. Correlation Between NDE and Static MOE Results Based on Age
3.5. Comparative Analysis of NDE and Static MOE Results
4. Discussion
4.1. Correlation Between NDE and Static MOE Results
4.2. Age and Site Effects
4.3. Radial Location Effects
4.4. Comparative Performance of AWV and UPV
4.5. Implications for Non-Destructive Evaluation
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ABARES | Australian Bureau of Agricultural and Resource Economics and Sciences |
| AWV | Acoustic Wave Velocity |
| UPV | Ultrasonic Pulse Velocity |
| DMOE | Dynamic Modulus of Elasticity |
| LVL | Laminated Veneer Lumber |
| MLR | Modulus Linear Regression |
| MOE | Modulus of Elasticity |
| MOR | Modulus of Rupture |
| NDE | Non-Destructive Evaluation |
| NDT | Non-Destructive Testing |
| SRFs | Strength-Reducing Features |
| SWV | Stress Wave Velocity |
| MFA | Microfibril Angle |
| PD | Penetration Depth |
| VSG | Visual Stress Grading |
| AS | Australian Standard |
| SED | Small-End Diameter |
| MC | Moisture Content |
| UTM | Universal Testing Machine |
References
- Korhonen, J.; Toppinen, A.; Cubbage, F.; Kuuluvainen, J. Factors driving investment in planted forests: A comparison between OECD and non-OECD countries. Int. For. Rev. 2014, 16, 67–77. [Google Scholar] [CrossRef][Green Version]
- Balasso, M.; Hunt, M.; Jacobs, A.; O’Reilly-Wapstra, J. Development of non-destructive-testing based selection and grading strategies for plantation Eucalyptus nitens sawn boards. Forests 2021, 12, 343. [Google Scholar] [CrossRef]
- ABARES. Australia’s State of the Forests Report- Indicator 1.1a.iv (2023); Australian Goverment Department of Agriculture, Fisheries and Forestry—ABARES: Canberra, Australia, 2023.
- ABARES. Australian Plantation Statistics 2023 Update; ABARES: Canberra, Australia, 2023.
- Hou, J.; Taoum, A.; Nolan, G.; Kotlarewski, N. Study of the relationship between flatwise and edgewise modulus of elasticity of plantation fibre-managed E. nitens sawn boards. Constr. Build. Mater. 2022, 349, 128774. [Google Scholar] [CrossRef]
- Ettelaei, A.; Taoum, A.; Nolan, G. Assessment of different measurement methods/techniques in predicting modulus of elasticity of plantation Eucalyptus nitens timber for structural purposes. Forests 2022, 13, 607. [Google Scholar] [CrossRef]
- Derikvand, M.; Kotlarewski, N.; Lee, M.; Jiao, H.; Chan, A.; Nolan, G. Visual stress grading of fibre-managed plantation Eucalypt timber for structural building applications. Constr. Build. Mater. 2018, 167, 688–699. [Google Scholar] [CrossRef]
- AS 2082 2007; Timber—Hardwood—Visually Stress-Graded for Structural Purposes. Australia Standards: Sydney, Australia, 2007.
- Kube, P.D.; Raymond, C.A.; Banham, P.W. Genetic parameters for diameter, basic density, cellulose content and fibre properties for Eucalyptus nitens. For. Genet. 2001, 8, 285–294. [Google Scholar]
- Balasso, M.; Hunt, M.; Jacobs, A.; O’Reilly-Wapstra, J. Characterisation of wood quality of Eucalyptus nitens plantations and predictive models of density and stiffness with site and tree characteristics. For. Ecol. Manag. 2021, 491, 118992. [Google Scholar] [CrossRef]
- Gendvilas, V.; Neyland, M.; Rocha-Sepúlveda, M.F.; Downes, G.M.; Hunt, M.; Jacobs, A.; Williams, D.; Vega, M.; O’Reilly-Wapstra, J. Effects of thinning on the longitudinal and radial variation in wood properties of Eucalyptus nitens. Forestry 2022, 95, 504–517. [Google Scholar] [CrossRef]
- Evans, R.; Stringer, S.; Kibblewhite, R.P. Variation of microfibril angle, density and fibre orientation in twenty-nine Eucalyptus nitens trees. Appita J. 2000, 53, 450–457. [Google Scholar]
- Wimmer, R.; Downes, G.; Evans, R. Temporal variation of microfibril angle in Eucalyptus nitens grown in different irrigation regimes. Tree Physiol. 2002, 22, 449–457. [Google Scholar] [CrossRef]
- Raymond, C.A.; Schimleck, L.R.; Muneri, A.; Michell, A.J. Nondestructive sampling of Eucalyptus globulus and E. nitens for wood properties. III. Predicted pulp yield using near infrared reflectance analysis. Wood Sci. Technol. 2001, 35, 203–215. [Google Scholar] [CrossRef]
- Rayner, T.; Grams, W.; Scheinman, E. An automated log grading system based on computed tomography. In Proceedings of the First International Precision Forestry Cooperative Symposium; University of Washington, Institute of Forest Resources: Seattle, DC, USA, 2002; pp. 109–118. [Google Scholar]
- Simic, K.; Gendvilas, V.; O’Reilly, C.; Harte, A.M. Predicting structural timber grade-determining properties using acoustic and density measurements on young Sitka spruce trees and logs. Holzforschung 2019, 73, 139–149. [Google Scholar] [CrossRef]
- Blackburn, D.; Vega, M.; Nolan, G. Using acoustic wave velocity to select fibre-managed plantation Eucalyptus nitens logs for laminated veneer lumber products. South. For. J. For. Sci. 2019, 81, 223–234. [Google Scholar] [CrossRef]
- Farrell, R.; Innes, T.C.; Harwood, C.E. Sorting Eucalyptus nitens plantation logs using acoustic wave velocity. Aust. For. 2012, 75, 22–30. [Google Scholar] [CrossRef]
- Chauhan, S.; Sethy, A. Differences in dynamic modulus of elasticity determined by three vibration methods and their relationship with static modulus of elasticity. Maderas Cienc. Tecnol. 2016, 18, 373–382. [Google Scholar] [CrossRef]
- Opazo-Vega, A.; Rosales-Garcés, V.; Oyarzo-Vera, C. Non-destructive assessment of the dynamic elasticity modulus of eucalyptus nitens timber boards. Materials 2021, 14, 269. [Google Scholar] [CrossRef]
- Chauhan, S.; Walker, J. Variations in acoustic velocity and density with age, and their interrelationships in radiata pine. For. Ecol. Manag. 2006, 229, 388–394. [Google Scholar] [CrossRef]
- AS/NZS 4063.1; Characterisation of Structural Timber: Part 1: Test Methods. Australia Standards/Newzealand Standards: Sydney, Australia, 2010.
- AS 1080.1 2012; Timber: Methods of Test Moisture Content. Australia Standards: Sydney, Australia, 2012.
- Harding, K.; Hopewell, G.; Davies, M.; Zbonak, A. The Wood Properties of Subtropical and Tropical Hardwood Plantation Timber Grown for High-Value Products in Australia; Cooperative Research Centre for Forestry: Tasmania, Australia, 2012. [Google Scholar]
- McKenzie, H.; Turner, J.; Shelbourne, C. Processing young plantation-grown Eucalyptus nitens for solid-wood products. 1: Individual-tree variation in quality and recovery of appearance-grade lumber and veneer. N. Z. J. For. Sci. 2003, 33, 62–78. [Google Scholar]
- Hamilton, M.G.; Blackburn, D.P.; McGavin, R.L.; Baillères, H.; Vega, M.; Potts, B.M. Factors affecting log traits and green rotary-peeled veneer recovery from temperate eucalypt plantations: MG Hamilton et al. Ann. For. Sci. 2015, 72, 357–365. [Google Scholar] [CrossRef]
- Washusen, R.; Harwood, C.; Morrow, A.; Northway, R.; Valencia, J.C.; Volker, P.; Wood, M.; Farrell, R. Pruned plantation-grown Eucalyptus nitens: Effect of thinning and conventional processing practices on sawn board quality and recovery. N. Z. J. For. Sci. 2009, 39, 39–55. [Google Scholar]
- Yang, J.; Evans, R. Prediction of MOE of eucalypt wood from microfibril angle and density. Holz Roh Werkst. 2003, 61, 449–452. [Google Scholar] [CrossRef]
- Blackburn, D.; Hamilton, M.; Harwood, C.; Innes, T.; Potts, B.; Williams, D. Stiffness and checking of Eucalyptus nitens sawn boards: Genetic variation and potential for genetic improvement. Tree Genet. Genomes 2010, 6, 757–765. [Google Scholar] [CrossRef]
- Vega Rivero, M. Characterisation of Eucalyptus Nitens Plantations for Veneer Production. Ph.D. Thesis, University of Tasmania, Hobart, Australia, 2016. [Google Scholar]
- Downes, G.; Worledge, D.; Schimleck, L.; Harwood, C.; French, J.; Beadle, C. The effect of growth rate and irrigation on the basic density and kraft pulp yield of Eucalyptus globulus and E. nitens. N. Z. J. For. Sci. 2006, 51, 13. [Google Scholar]
- Karlinasari, L.; Wahyuna, M.; Nugroho, N. Non-destructive ultrasonic testing method for determining bending strength properties of Gmelina wood (Gmelina arborea). J. Trop. For. Sci. 2008, 20, 99–104. [Google Scholar]
- Bucur, V. An ultrasonic method for measuring the elastic constants of wood increment cores bored from living trees. Ultrasonics 1983, 21, 116–126. [Google Scholar] [CrossRef]
- Jaskowska-Lemańska, J.; Wałach, D. Impact of the direction of non-destructive test with respect to the annual growth rings of pine wood. Procedia Eng. 2016, 161, 925–930. [Google Scholar] [CrossRef][Green Version]
- Smulski, S.J. Relationship of stress wave-and static bending-determined properties of four northeastern hardwoods. Wood Fiber Sci. 1991, 23, 44–57. [Google Scholar]
- Ilic, J. Relationship among the dynamic and static elastic properties of air-dry Eucalyptus delegatensis R. Baker. Holz Roh Werkst. 2001, 59, 169–175. [Google Scholar] [CrossRef]
- Li, H.; Wang, L.; Wang, B.J.; Wei, P.; Yu, W.; Fan, Z.; Du, G. Preliminary evaluation of a density-based lumber grading method for hem-fir CLT manufacturing. Eur. J. Wood Wood Prod. 2021, 79, 967–975. [Google Scholar] [CrossRef]
- Baar, J.; Tippner, J.; Rademacher, P. Prediction of mechanical properties-modulus of rupture and modulus of elasticity-of five tropical species by nondestructive methods. Maderas Cienc. Tecnol. 2015, 17, 239–252. [Google Scholar] [CrossRef]
- De Oliveira, F.; De Campos, J.; Pletz, E.; Sales, A. Assessment of mechanical properties of wood using an ultrasonic technique. In Proceedings of the 13th International Symposium on Non-Destructive Testing of Wood; University of California, Berkeley Campus California: Berkeley, CA, USA, 2002. [Google Scholar]















| Parameter | Site No. | Minimum | Maximum | Mean | Std. Deviation |
|---|---|---|---|---|---|
| SED (cm) | 1 | 29.25 | 41.90 | 34.59 | 4.73 |
| 2 | 19.00 | 25.00 | 21.99 | 2.18 | |
| AWV (km/s) | 1 | 3.38 | 3.88 | 3.62 | 0.19 |
| 2 | 3.07 | 3.62 | 3.35 | 0.18 | |
| UPV (km/s) | 1 | 3.42 | 3.90 | 3.63 | 0.19 |
| 2 | 3.26 | 3.74 | 3.49 | 0.13 | |
| Green density (kg/m3) | 1 | 1061 | 1125 | 1089 | 32.77 |
| 2 | 1049 | 1106 | 1080 | 19.48 | |
| Basic density (kg/m3) | 1 | 460 | 550 | 510 | 36.07 |
| 2 | 456 | 550 | 496 | 26.37 | |
| DMOE (GPa) by AWV | 1 | 12.84 | 16.94 | 14.17 | 1.69 |
| 2 | 10.42 | 14.07 | 12.16 | 1.28 | |
| DMOE (GPa) by UPV | 1 | 13.12 | 17.08 | 14.41 | 1.58 |
| 2 | 11.57 | 14.79 | 13.15 | 0.93 |
| Parameter | Site No. | Minimum | Maximum | Mean | Std. Deviation |
|---|---|---|---|---|---|
| UPV (km/s) | 1 | 2.02 | 3.87 | 2.89 | 0.31 |
| 2 | 1.93 | 4.11 | 2.99 | 0.46 | |
| MC (%) | 1 | 83.77 | 167.49 | 130.03 | 15.91 |
| 2 | 74.40 | 193.27 | 135.59 | 46.17 | |
| Green density (kg/m3) | 1 | 861 | 1295 | 1089 | 61.89 |
| 2 | 792 | 1282 | 1081 | 50.63 | |
| Basic density (kg/m3) | 1 | 376 | 693 | 510 | 52.53 |
| 2 | 384 | 700 | 495 | 46.17 | |
| DMOE (GPa) by UPV | 1 | 4.54 | 15.32 | 9.13 | 1.94 |
| 2 | 4.06 | 18.11 | 9.89 | 3.01 | |
| MOE (GPa) | 1 | 6.58 | 14.15 | 10.77 | 1.46 |
| 2 | 4.05 | 14.00 | 9.76 | 2.06 | |
| MOR (MPa) | 1 | 47.12 | 78.35 | 63.66 | 6.34 |
| 2 | 26.31 | 81.68 | 61.21 | 9.01 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Sirswal, N.S.; Kotlarewski, N.; Taoum, A.; Nolan, G. Comparative Analysis of Acoustic Wave Velocity (AWV) and Ultrasonic Pulse Velocity (UPV) for Non-Destructive Evaluation of Fibre-Managed Eucalyptus nitens Logs and Recovered Samples. Forests 2026, 17, 670. https://doi.org/10.3390/f17060670
Sirswal NS, Kotlarewski N, Taoum A, Nolan G. Comparative Analysis of Acoustic Wave Velocity (AWV) and Ultrasonic Pulse Velocity (UPV) for Non-Destructive Evaluation of Fibre-Managed Eucalyptus nitens Logs and Recovered Samples. Forests. 2026; 17(6):670. https://doi.org/10.3390/f17060670
Chicago/Turabian StyleSirswal, Navneet Singh, Nathan Kotlarewski, Assaad Taoum, and Gregory Nolan. 2026. "Comparative Analysis of Acoustic Wave Velocity (AWV) and Ultrasonic Pulse Velocity (UPV) for Non-Destructive Evaluation of Fibre-Managed Eucalyptus nitens Logs and Recovered Samples" Forests 17, no. 6: 670. https://doi.org/10.3390/f17060670
APA StyleSirswal, N. S., Kotlarewski, N., Taoum, A., & Nolan, G. (2026). Comparative Analysis of Acoustic Wave Velocity (AWV) and Ultrasonic Pulse Velocity (UPV) for Non-Destructive Evaluation of Fibre-Managed Eucalyptus nitens Logs and Recovered Samples. Forests, 17(6), 670. https://doi.org/10.3390/f17060670

