125
Views
0
CrossRef citations to date
0
Altmetric
Original Articles

Strength and stiffness of radiata pine at elevated temperatures: a complete data set

ORCID Icon &
Pages 986-994 | Received 18 Apr 2022, Accepted 01 Jul 2022, Published online: 18 Jul 2022

References

  • American Society of Testing and Materials (2021) Standard Test Methods for Small Clear Specimens of Timber (ASTM D143-21).
  • Bachtiar, E. V., Rüggeberg, M. and Niemz, P. (2017) Mechanical behavior of walnut (Juglans regia L.) and cherry (Prunus avium L.) wood in tension and compression in all anatomical directions. Revisiting the tensile/compressive stiffness ratios of wood. Holzforschung, 72(1), 71–80.
  • Conners, T. E. and Medvecz, P. J. (1992) Wood as a bimodular material. Wood and Fiber Science, 24(4), 413–423.
  • De Moraes, P. D., Rogaume, Y. and Triboulot, P. (2004) Influence of temperature on the modulus of elasticity (MOE) of Pinus sylvestris L. Holzforschung, 58(2), 143–147.
  • Dilba, G., Bretz, F. and Guiard, V. (2006) Simultaneous confidence sets and confidence intervals for multiple ratios. Journal of Statistical Planning and Inference, 136(8), 2640–2658.
  • Djira, G., et al. (2020) mratios: Ratios of Coefficients in the General Linear Model. Accessed 7 September 2021, available at https://CRAN.R-project.org/package=mratios.
  • Goodrich, T., et al. (2010) High-temperature mechanical properties and thermal recovery of balsa wood. Journal of Wood Science, 56(6), 437–443.
  • Hamdan, S., et al. (2000) Softening characteristics of wet wood under quasi static loading. Holzforschung, 54(5), 557–560.
  • Jin, F., Jiang, Z. and Wu, Q. (2016) Creep behavior of wood plasticized by moisture and temperature. BioResources, 11(1), 827–838.
  • Jong, F. and Clancy, P. (2004) Compression properties of wood as functions of moisture, stress and temperature. Fire and Materials, 28(2-4), 209–225.
  • Kamke, F. A. and Kutnar, A. (2010) Transverse compression behavior of wood in saturated steam at 150-170°C. Wood and Fiber Science, 42(3), 377–387.
  • Keep, L. B. and Keey, R. B. (2000) Determination of cross-grain properties of clearwood samples under kiln-drying conditions at temperature up to 140°C. Drying Technology, 18(6), 1221–1237.
  • Kininmonth, J. A. and Whitehouse, L. J. (1991) Properties and Uses of New Zealand Radiata Pine (Rotorua: Forest Research Institute).
  • Lenth, C. and Sargent, R. (2002) Instantaneous Stress-Strain Behaviour of Radiata Pine in Kiln Drying Environments. Forest Products Society 56th Annual Meeting. 23-26 June 2002. Madison, Wisconsin.
  • Lenth, C. and Sargent, R. (2004) Investigating the influence of moisture content and temperature on the tensile stiffness of radiata pine. Third International Conference of the European Society of Wood Mechanics. 5-8 September 2004. Vila Real, Portugal.
  • Lenth, C. and Sargent, R. (2008) Wood material behavior during drying: Moisture-dependent tensile stiffness and strength of radiata pine at 70-150°C. Drying Technology, 26(9), 1112–1117.
  • Lenth, C. and Sargent, R. (2020) Strength and Stiffness of Pinus radiata from 20 to 150°C at a range of moisture contents. Accessed 10 March 2022, available at https://doi.org/10.6084/m9.figshare.12126882.v1.
  • Manríquez, M. J. and Moraes, P. D. (2010) Influence of the temperature on the compression strength parallel to grain of paricá. Construction and Building Materials, 24(1), 99–104.
  • Navi, P. and Sandberg, D. (2012) Thermo-Hydro-Mechanical Processing of Wood (Lausanne: EPFL Press).
  • Obara, P. (2018) Verification of orthotropic model of wood. Archives of Civil Engineering, 64(3), 31–44.
  • Ozyhar, T., Hering, S. and Niemz, P. (2012) Moisture-dependent elastic and strength anisotropy of European beech wood in tension. Journal of Materials Science, 47(16), 6141–6150.
  • Ozyhar, T., Hering, S. and Niemz, P. (2013) Moisture-dependent orthotropic tension compression asymmetry of wood. Holzforschung, 67(4), 395–404.
  • Pearson, H. (2010) Material Properties and Stress Modelling of Radiata Pine at High Temperature (PhD Thesis). University of Waikato, Hamilton.
  • Pearson, H., Gabbitas, B. and Ormarsson, S. (2012) Tensile behaviour of radiata pine with different moisture contents at elevated temperatures. Holzforschung, 66(5), 659–665.
  • Pearson, H., Ormarsson, S. and Gabbitas, B. (2015) Nonlinear tensile creep behavior of radiata pine at elevated temperatures and different moisture contents. Holzforschung, 69(7), 915–923.
  • Placet, V., Passard, J. and Perré, P. (2007) Viscoelastic properties of green wood across the grain measured by harmonic tests in the range 0-95°C: hardwood vs. softwood and normal wood vs. reaction wood. Holzforschung, 61(5), 548–557.
  • Placet, V., Passard, J. and Perré, P. (2008) Viscoelastic properties of wood across the grain measured under water-saturated conditions up to 135°C: evidence of thermal degradation. Journal of Materials Science, 43(9), 3210–3217.
  • R Core Team (2021) R: A Language and Environment for Statistical Computing (Vienna: R Foundation for Statistical Computing). Accessed 10 August 2021, available at: https://www.r-project.org/).
  • Ramage, M., et al. (2017) Super tall timber: design research for the next generation of natural structure. Journal of Architecture, 22(1), 104–122.
  • Tajvidi, M. and Mirzaei, B. (2009) Effects of temperature on the mechanical properties of beech (Fagus orientalis Lipsky) and lime (Tilia begonifolia) wood. Wood Material Science and Engineering, 4(3-4), 147–153.
  • Wu, Y., Huang, R. and Gao, Z. (2021) The relationship between the hydrothermal response of yield stress and the formation of sandwich compressed wood. Journal of Sandwich Structures and Materials, 24(1), 101–118.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.