Startseite Naturwissenschaften Evaluating the suitability of hybrid poplar clones for the manufacture of oriented strand boards
Artikel
Lizenziert
Nicht lizenziert Erfordert eine Authentifizierung

Evaluating the suitability of hybrid poplar clones for the manufacture of oriented strand boards

  • Kate E. Semple , Marie-Helene Vaillant , Kyu-Young Kang , Seung Won Oh , Gregory D. Smith und Shawn D. Mansfield
Veröffentlicht/Copyright: 12. Juni 2007
Holzforschung
Aus der Zeitschrift Band 61 Heft 4

Abstract

Clonal trees from five different plantation-grown, industrially relevant hybrid poplar genotypes of the same age, grown on a common site in British Columbia, Canada, were tested for their performance in strand production and properties of oriented strand board (OSB). The results were compared against a benchmark mill-run OSB furnish derived from native aspen (Populus tremuloides). Variation in solid wood density among the hybrid poplar clones was shown to influence the compaction ratio and densification of the OSB, which in turn led to variation in board strength properties. After accounting for specimen density using co-variate statistical models, it was apparent that there were significant effects of genotype on bonding strength and thickness swell. Lower density wood from the fastest growing P. deltoides×P. trichocarpa (DTAC 7) clone resulted in better mat compaction and higher bond strength, whereas higher density wood from a P. trichocarpa×P. deltoides (TD 50-184) clone resulted in lower compaction and bonding strength. Flexural strength (rupture and elastic moduli) and nail pull through were not as significantly affected by either board density or genotype when adjusted for density. The study clearly demonstrates that fast grown, large diameter wood of lower initial wood density from hybrid poplar is highly suited for OSB production.


Corresponding author. Department of Wood Science, University of British Columbia, Vancouver British Columbia, Canada V6T 1Z4 Phone: +1-604-8220196, Fax: +1-604-8229104,.

Received: 2007-1-11
Accepted: 2007-4-4
Published Online: 2007-06-12
Published in Print: 2007-6-1

©2007 by Walter de Gruyter Berlin New York

Artikel in diesem Heft

  1. Meetings
  2. Micromechanical modeling of solid-type and plate-type deformation patterns within softwood materials. A review and an improved approach
  3. Failure mechanisms in wood-based materials: A review of discrete, continuum, and hybrid finite-element representations
  4. Morphological lattice models for the simulation of softwood failure and fracture
  5. Experimental and numerical investigation of wood fracture mechanisms at different humidity levels
  6. Material point method simulations of transverse fracture in wood with realistic morphologies
  7. Simulation of cracks in wood using a coupled material model for interface elements
  8. Preliminary tests to evaluate the mechanical properties of young trees with small diameter
  9. Characterization and strength modeling of parallel-strand lumber
  10. Dynamic behaviour of cork and cork-filled aluminium tubes: Numerical simulation and innovative applications
  11. A numerical study of the transverse modulus of wood as a function of grain orientation and properties
  12. Effects of ring characteristics on the compressive strength and dynamic modulus of elasticity of seven softwood species
  13. Experimental device for the accurate determination of wood-water relations on micro-samples
  14. Evaluating the suitability of hybrid poplar clones for the manufacture of oriented strand boards
  15. Finely milled kenaf core as a natural plywood binder
  16. Alkaline peroxide treatment of ECF bleached softwood kraft pulps. Part 1. Characterizing the effect of alkaline peroxide treatment on carboxyl groups of fibers
  17. Alkaline peroxide treatment of ECF bleached softwood kraft pulps: Part 2. Effect of increased fiber charge on refining, wet-end application, and hornification
  18. Molar mass determination of lignins by size-exclusion chromatography: towards standardisation of the method
Heruntergeladen am 31.12.2025 von https://www.degruyterbrill.com/document/doi/10.1515/HF.2007.078/pdf
Button zum nach oben scrollen