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Original Articles

Densified wood dowel reinforcement of timber perpendicular to the grain: a pilot study

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References

  • Beaud, F. J., Niemz, P., Blumer, H., Wüthrich, H.-P., & Wüthrich, S. (2008a). Herstellung und Eigenschaften von großformattgen Platten aus verdichtetem Frichten-und Tannenholz: Teil 1: Plattenherstellung. Holztechnologie, 49(2), 9–14.
  • Beaud, F. J., Niemz, P., Blumer, H., Wüthrich, H.-P., & Wüthrich, S. (2008b). Herstellung und Eigenschaften von großformattgen Platten aus verdichtetem Frichten-und Tannenholz: Teil 2: Physikalische Eigenschaften. Holztechnologie, 49(3), 14–19.
  • Beaud, F. J., Niemz, P., Blumer, H., Wüthrich, H.-P., & Wüthrich, S. (2008c). Herstellung und Eigenschaften von großformattgen Platten aus verdichtetem Frichten-und Tannenholz: Teil 3: Mechanische Eigenschaften. Holztechnologie, 49(4), 17–21.
  • Bejtka, I., & Blass, H. J. (2006). Self-tapping screws as reinforcements in beam supports. International Council for Research and Innovation in Building and Construction - Working Commission W18 - Timber Structures (pp. 1–13). Florence.
  • Bodig, J., & Jayne, B. A. (1993). Mechanics of wood composites. Reprinted ed. Von Nostrand Reinhold Company.
  • CEN. (2002). EN 13183-1. Moisture content of a piece of sawn timber - Part 1: Determination of oven dry method. Comité Européen de Normalisation, Brussels. Comité Européen de Normalisation.
  • CEN. (2005). EN 1995- 1-1.Eurocode 5: Design of timber structures - Part 1-1: General - Common rules and rules for buildings. Comité Européen de Normalisation.
  • CEN. (2006). EN 14358. Timber structures - Calculation of characteristic 5-percentile values and acceptance criteria for a sample. Comité Européen de Normalisation.
  • CEN. (2012). EN 408. Timber structures - Structural timber and glued laminated timber - Determination of some physical and mechanical properties. Comité Européen de Normalisation.
  • CEN. (2013). EN 14080. Timber structures - Glued laminated timber and glued solid timber - Requirements. Comité Européen de Normalisation.
  • Crocetti, R., Gustafsson, P. J., Ed, D., & Hasselqvist, F. (2012). Compression strength perpendicular to grain - full-scale testing of glulam beams with and without reinforcement. COST Action FP1004 Early Stage Researchers Conference (pp. 51–62). Zagreb.
  • Dietsch, P. (2019). Reinforcement of timber structures - Standardization towards a new section for EC5. In Proceedings of the 5th International Conference on Structural Health Assessment of Timber Structures (SHATiS) 2019, 25-27th September, Guimarães.
  • Dietsch, P., & Brandner, R. (2015). Self-tapping screws and threaded rods as reinforcement for structural timber elements-A state-of-the-art report. Construction and Building Materials, 97, 78–89. Reinforcement of Timber Structures. https://doi.org/10.1016/j.conbuildmat.2015.04.028
  • Ed, D., & Hasselqvist, F. (2011). Timber compression strength perpendicular to the grain – Testing of glulam beams with and without reinforcement.
  • ETA-11/0030. (2019). European technical assessment. Screws for use in timber construction. ETA-Denmark, Nordhavn.
  • Frihart, C. R. (2009). Adhesive groups and how they relate to the durability of bonded wood. Journal of Adhesion Science and Technology, 23(4), 601–617. https://doi.org/10.1163/156856108X379137
  • Harte, A. (2009). Introduction to timber as an engineering material. In M. Forde (Ed.), ICE manual of construction materials (Vol. 2, pp. 707–715). Thomas Telford. https://doi.org/10.1680/mocm.00000.0001
  • Harte, A. M., & Dietsch, P. (2015). Reinforcement of timber structures: A state-of-the-art report ( A. M. Harte & P. Dietsch Eds.). Shaker Verlag GmbH.
  • Harte, A. M., Jockwer, R., Stepinac, M., Descamps, T., & Dietsch, P. (2015). Reinforcement of timber structures - The route to standardisation. 3rd International Conference on Structural Health Assessment of Timber Structures, Wroclaw.
  • Hassan, K. A., Hussain, T., & Arman, K. (2014). Compression perpendicular to grain in timber - Bearing strength for a sill plate [Master Thesis]. Linnaeus University.
  • Jung, K., Kitamori, A., & Komatsu, K. (2008). Evaluation on structural performance of compressed wood as shear dowel. Holzforschung, 62(4), 461–467. https://doi.org/10.1515/HF.2008.073
  • Jung, K., Kitamori, A., & Komatsu, K. (2009). Development of a joint system using a compressed wooden fastener I: Evaluation of pull-out and rotation performance for a column-sill joint. Journal of Wood Science, 55(4), 273–282. https://doi.org/10.1007/s10086-009-1027-3
  • Kollmann, F., Kuenzi, E., & Stamm, A. (1975). Principles of wood science and technology: II wood based materials (1st ed.). Springer-Verlag Berlin Heidelberg New York.
  • Kutnar, A., Sandberg, D., & Haller, P. (2015). Compressed and moulded wood from processing to products. Holzforschung, 69(7), 885–897. https://doi.org/10.1515/hf-2014-0187
  • Mehra, S., Mohseni, I., O’Ceallaigh, C., Guan, Z., Sotayo, A., & Harte, A. M. (2019). Moment-rotation behaviour of beam-column connections fastened using compressed wood connectors. SWST 62 nd International Convention : Renewable Materials and the Wood-based Bioeconomy (pp. 2019). California, USA.
  • Mehra, S., O’Ceallaigh, C., Hamid-Lakzaeian, F., Guan, Z., & Harte, A. M. (2018). Evaluation of the structural behaviour of beam-beam connection systems using compressed wood dowels and plates. WCTE 2018 - World Conference on Timber Engineering, August 20-23, 2018. Seoul. https://www.researchgate.net/publication/327186842
  • O’Ceallaigh, C., & Harte, A. M. (2019). The elastic and ductile behaviour of CLT wall-floor connections and the influence of fastener length. Engineering Structures, 189(June2019), 319–331. https://doi.org/10.1016/j.engstruct.2019.03.100
  • O’Ceallaigh, C., Sikora, K., McPolin, D., & Harte, A. M. (2018). An investigation of the viscoelastic creep behaviour of basalt fibre reinforced timber elements. Construction and Building Materials, 187(October2018), 220–230. https://doi.org/10.1016/j.conbuildmat.2018.07.193
  • Sandberg, D., Haller, P., & Navi, P. (2013). Thermo-hydro and thermo-hydro-mechanical wood processing: An opportunity for future environmentally friendly wood products. Wood Material Science and Engineering, 8(1), 64–88. https://doi.org/10.1080/17480272.2012.751935
  • Schwarzkopf, M. (2020). Densified wood impregnated with phenol resin for reduced set-recovery. Wood Material Science and Engineering, 16(1), 35–41. https://doi.org/10.1080/17480272.2020.1729236
  • Sotayo, A., Bradley, D., Bather, M., Sareh, P., Oudjene, M., El-Houjeyri, I., … Guan, Z. (2020). Review of state of the art of dowel laminated timber members and densified wood materials as sustainable engineered wood products for construction and building applications. Developments in the Built Environment, 1, 100004. https://doi.org/10.1016/j.dibe.2019.100004