Characterization of Radial Stress in Curved Beams

  • Received : 2008.10.01
  • Accepted : 2008.12.02
  • Published : 2009.03.25

Abstract

Curved glued laminated timber (glulam) is rapidly coming into the domestic modern timber frame buildings and predominant in building construction. The radial stress is frequently occurred in curved beams and is a critical design parameter in curved glulam. Three models, Wilson equation, Exact solution and Approximation equation were introduced to determine the radial stress of curved glulam under pure bending condition. It is obvious that radial stress distribution between small radius and large radius was different due to slight change of neutral plane location to center line. If the beam design with extremely small radius, it should be considered to determine the exact location of maximum radial stress. The current standard KSF 3021 was reviewed and would be considered some adjustment determining the optimum radius in curved glulam. Current design principle is that the stress factor is given by the curvature term only in constant depth of the beam, but like tapered or small radius of beams, the stress factor by Wilson equation was underestimated. So current design formula should be considered to improvement for characterizing the radial stress factor under pure bending condition.

Keywords

Acknowledgement

Supported by : Daegu University

References

  1. American F. and P. Association. 2005. National design specification for wood construction. ANSI/AF&PA NDS-2005 American Wood Council
  2. American Institute of Timber Construction. 2005. Timber construction manual. American Institute of Timber Construction. John Wiley and Sons, Inc
  3. Boresi, A. P., R. J. Schmidt, and O. J. Sidebottom. 1993. Advanced mechanics of materials, 5th edition. John Wiely & Sons, Inc
  4. Cheung, C. K. and H. C. Sorensen. 1983. Effect of loads on radial stress in curved beams. Wood and Fiber Science 15(3): 263-275
  5. Forest Product Laboratory. 1999. Wood handbook. FPL General Tech. Report FPL-GTR-113
  6. Foschi, R. O. and S. P. Fox. (1970) Radial stress in curved timber beams. J. of Structural Div. ST10: 1997-2008
  7. Gopu, V. K. A. (1980) Radial stresses in curved glulam beams. J. of Structural Div. 106 (ST11):15797-15801
  8. Jonsson, J. 2005. Load carrying capacity of curved glulam members reinforced with self-tapping screws. Holz als Roh- und Werkstoff 63:342-346 https://doi.org/10.1007/s00107-005-0016-5
  9. Kasal, B. and A. Heiduschke. 2004. Radial reinforcement of curved glue laminated wood beams with composite materials. Forest Prod. J. 54(1): 74-79
  10. Korea Standard Association. 2005. Structural glued laminated timber. KS F 3021
  11. Norris, C. B. (1963) Stresses within curved laminated beams of Douglas-fir. USDA. Forest Service. Forest Product Laboratory. FPL-020
  12. Timonshenko, S. P. and J. N. Goodier. (1970) Theory of elasticity. 3rd version. Mcgraw-Hill
  13. Wilson, T. R. C. 1939. The glued laminated wooden arch. USDA Techincal Bulletin No.691
  14. Ugural A. C. and S. K. Fenster. 1981. Advanced strength and applied elasticity-The SI version. Elsevier North Holand, New York