TECHNICAL PAPERS
Jan 1, 2002

Load and Resistance Factor Design of Timber Joints: International Practice and Future Direction

Publication: Journal of Structural Engineering
Volume 128, Issue 1

Abstract

International practice for load and resistance factor design (LRFD) of mechanical structural timber joints is reviewed. Attention is on design provisions in the U.S., Canada, Europe, and Australia, those being locations where LRFD codes for wood construction exist. There are broad similarities between various codes, in that all countries adopt an element-based approach to design. Most codes base capacity design checks for joints with dowel-type fasteners on the so-called European yield model. There are a number of systematic differences in detailed implementation of LRFD concepts between countries. No country has yet used structural reliability concepts in derivation and/or calibration of design equations for joints as the level of safety cannot be formally assessed except for relatively simple problems. This contrasts with the situation for members, as several countries have already implemented reliability concepts in design of wood members. Thus, there is imbalance in the principles of design for members and joint in timber systems. Suggestions are made regarding actions necessary to place member and joint design on an equal footing.

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References

AFPA. (1997). “National design specification for wood construction.” NDS-1997, American Forest and Paper Assoc., Washington, D.C.
AFPA. (1999). “General dowel equations for calculating lateral connection values.” American Forest and Paper Association, Washington, D.C.
ASCE. (1996). “Standard for load and resistance factor design for engineered wood construction.” ASCE 2(3) 16–95, American Society of Civil Engineers, New York.
ASTM. (1996). “Establishing allowable properties for visually graded dimension lumber from in-grade tests of full-size specimens.” ASTM D1990-91, West Conshohocken, Pa.
Blass, H., Aune, P., Choo, B. S., Goerlacher, R., Griffiths, D. R., Hilson, B. O., Racher, P., and Steck, G. (1995). Timber Engineering Step 1 (Sec. C—Joints), Centrum Hout, The Netherlands.
Bryant, A. H., and Hunt, R. D. (1999). “Estimates of joint strength from experimental tests.” Proc., Pacific Timber Engineering Conf., (PTEC’99), Forest Research Bulletin 212, New Zealand Forest Research Institute, Ltd., Rotorua, New Zealand, Vol. 2, 225–230.
CEN. (1995) Eurocode 5: Part 1.1 “Design of timber structures: General rules and rules for buildings.” European Committee for Standardisation (CEN), Brussels, Belgium.
Cramer, C. O.(1968). “Load distribution in multiple-bolt tension joints.” J. Struct. Eng., 94(5), 1101–1117.
CSA. (1984a). “Engineering design in wood.” CSA Standard No. 086-M84, Canadian Standards Association, Toronto.
CSA. (1984b). “Engineering design in wood (limit states design).” CSA Standard No. 086.1-M84, Canadian Standards Association, Toronto.
CSA. (1989). “Engineering design in wood (limit states design).” CSA Standard No. 086.1-89, Canadian Standards Association, Toronto.
CSA. (1994). “Engineering design in wood (limit states design).” CSA Standard No. 086.1-94, Canadian Standards Association, Toronto.
DeGrace, R. F. (1986). “Commentary on CSA Standard 086.1-M84 Engineering design in wood (limit states design).” Special Publication No. 086.1.1-M1986, Canadian Standards Association, Toronto.
Ellingwood, B. R., Galambos, T. V., MacGregor, J. G., and Cornell, C. A. (1980). “Development of a probability based design criterion for American National Standard A58.” National Bureau of Standards, U.S. Government Printing Office, Washington, D.C.
Foliente, G. C.(1998). “Design of timber structures subjected to extreme loads.” Prog. Struct. Eng. Mater., 1(3), 236–244.
Foliente, G. C., and Leicester, R. H. (1996). “Evaluation of mechanical joint systems in timber structures.” Proc., 25th Forest Products Research Conf., CSIRO Division of Forestry and Forest Products, Clayton, Victoria, Australia, Vol. 1, Paper No. 2/16, 8 pp.
Foliente, G. C., Karacabeyli, E., and Yasumura, M. (1998). “International test standards for joints in timber structures under earthquake and wind loads.” Proc., Structural Engineers World Congress (SEWC ’98). (CD-Rom), Paper No. T-222-6, San Francisco.
Foliente, G. C., Syme, M. J., and Smith, I. (2001). “Proposed limit states design procedure for timber joints with dowel-type fasteners and Australian Pine.” BCE Doc. No. 01/081, CSIRO Building, Construction and Engineering, Highett, Australia.
Foschi, R. O.(2000). “Reliability applications in wood design.” Prog. Struct. Eng. Mater., 2(2), 238–246.
Foschi, R. O., Folz, B. R., and Yao, F. Z. (1989). “Reliability-based design of wood structures.” Structural Research Series, Rep. No. 34, Dept. of Civil Engineering, Univ. of British Columbia, Vancouver, B.C.
Johansen, K. W. (1949) “Theory of timber connectors.” Publication No. 9, International Association of Bridges and Structural Engineering, Bern, Switzerland, 249–262.
Keenan, F. J., Lepper, M. M., and Marshall, C. M. (1982). “Improved design of fastenings in timber structures based on limit states design procedures.” Contract Report to Canadian Forestry Service, Hull, Que.
Lantos, G. (1967). “Load distribution in multiple mechanical fasteners in joints subjected to direct load.” Research Rep. No. E/RR/28, Timber Research and Development Association, High Wycombe, U.K.
Larsen, H. J. (1979). “Design of bolted joints.” Proc., Int. Council for Bldg. Res. Studies and Documentation: Working Commission W18—Timber Structures, Bordeaux, France, International Council for Research and Innovation in Building and Construction, Rotterdam, The Netherlands.
Larsen, H. J. (1998). “Influence of semirigidity of joints on the structure.” Proc., Int. Conf. Control of the Semirigid Behavior of Civil Engineering Structural Connections, Liege, 17–19 September, European Commission, Luxembourg, 265–273.
Leicester, R. H. (1986). “Confidence in estimates of characteristic values.” Proc., 19th Meet. CIB W18, Firenze, Italy, International Council for Research and Innovation in Building and Construction, Rotterdam, The Netherlands.
Leicester, R. H., and Lhuede, E. P. (1992). “Mechanosorptive effects on toothed plate connectors.” Proc., IUFRO S.502 Meet., August, Bordeaux, France, International Union of Forestry Research Organizations, Vienna, Austria.
Lepper, M., and Smith, I. (1995). “Fastenings (commentary on chapter 10 of CSA Standard 086.1-1994).” Wood Design Manual 1995, Canadian Wood Council, Ottawa 647–666.
Lhuede, E. P. (1988). “Connector systems.” Proc., Timber Struct. Seminar, Standards Australia, Sydney, Australia.
Lhuede, E. P. (1990). “A review of bolted timber connections.” Proc., 23rd Forest Products Res. Conf., CSIRO Division of Forestry and Forest Products, Clayton, Australia, Vol. 1, Paper No. 2/2.
Mack, J. J. (1978). “The grouping of species for the design of timber joints with particular application to nailed joints.” Technical Paper, Second Series No. 26, CSIRO Division of Building Research, Highett, Australia.
Mack, J. J. (1979). “Research on timber fasteners.” Proc., 19th Forest Products Res. Conf., Topic 2/4, Supplement, CSIRO Division of Building Research, Highett, Australia.
Madsen, B. (1992). Structural behavior of timber, Timber Engineering, Ltd., North Vancouver, B.C.
Madsen, B.(1998). “Reliable timber connections.” Prog. Struct. Eng. Mater., 1(3), 245–252.
Masse, D. I., Salinas, J. J., and Turnbull, J. (1989). “Lateral strength and stiffness of single and multiple bolts in glued-laminated timber loaded parallel to grain.” Contribution No. C-029, Engineering and Statistical Research Centre, Research Branch, Agriculture Canada, Ottawa.
McLain, T. E. (1984). “Mechanical fastening of structural wood members—Design and research status.” Structural wood research: State-of-the-art and research needs, R. Itani and K. Faherty, eds., ASCE, New York, 33–68.
McLain, T. E. (1993). “Connector code development and application in the United States: Generic fasteners.” Proc., 1992 Int. Workshop on Wood Connectors, Forest Products Society, Madison, Wis., 52–56.
McLain, T. E. (1998). “Connectors and fasteners: Research needs and goals.” Wood Engineering in the 21st Century: Research Needs and Goals, K. J. Fridley, ed, ASCE, Reston, Virginia, 56–69.
McLain, T. E., and Thangjitham, S.(1983). “Bolted wood joint yield model.” J. Struct. Div., ASCE, 109(8), 1820–1835.
Melchers, R. E. (1999). Structural reliability analysis and prediction, Wiley, Chicester, U.K.
Mohammad, M. A. H., Quenneville, P., and Smith, I. (1997). “Bolted timber connections: Investigation on failure mechanism.” Proc., IUFRO S5.02 Meeting, Timber Engineering Group, Copenhagen, International Union of Forestry Research Organizations, Vienna, Austria, 309–323.
Mohammad, M. A. H., and Smith, I.(1994). “Stiffness of nailed OSB-to-lumber connections.” Forest Prod. J., 44(11/12), 37–44.
Mohammad, M. A. H., and Smith, I.(1996). “Effects of multiphase moisture conditioning on stiffness of nailed OSB-to-lumber connections.” Forest Prod. J., 46(4), 76–83.
Pellicane, P. J.(2000). “Comparison of ASD and LRFD codes for wood members, III: Connections.” Practice Periodical Struct. Design Construct., 5(2), 66–69.
Rodd, P. D. (1998). “Improvement of the structural behavior of timber joints.” Proc., Int. Conf. Control of the Semi-rigid Behavior of Civil Engineering Structural Connections, Liege, 17–19 September, 1998, European Commission, Luxembourg, 285–303.
Rosowsky, D. V., Reed, T. D., and Tyner, K. G.(1998). “Establishing uplift design values for metal connectors in light-frame construction.” J. Test. Eval., 26(5), 426–433.
Smith, I. (1982). “Interpretation and adjustment of results from short-term lateral load tests on whitewood joint specimens with nails or bolts.” Research Rep. No. RR5/82, Timber Research and Development Association, High Wycombe, U.K.
Smith, I.(1994). “The Canadian approach to design of bolted timber connections.” Wood Des. Focus, 5(2), 5–8.
Smith, I. (1985). “Methods of calibrating design factors in partial coefficient limit states design codes for structural timberwork: With special reference to mechanical timber joints.” Research Rep. No. RR1/85, Timber Research and Development Association, High Wycombe, U.K.
Smith, I. (1998). “Joints in timber structures: State-of-the-art knowledge in North America.” Proc., Int. Conf. Control of the Semirigid Behavior of Civil Engineering Structural Connections, Keynote address, Session 4, Liege, 17–19 September, European Commission, Luxembourg, 255–264.
Smith, I., Whale, L. R. J., Anderson, C., Hilson, B. O., and Rodd, P. D.(1988). “Design properties of laterally loaded nailed or bolted joints.” Can. J. Civil. Eng., 15(4), 633–643.
Smith, I., Quenneville, P., and Craft, S.(2001). “Design capacities of joints with laterally loaded nails,” Can. J. Civil Eng., 28, 282–290.
Standards Australia. (1997). “AS 1720.1—1997. Timber Structures, Part 1: Design methods.” Standards Australia, Sydney, Australia.
Standards Australia. (1998). “AS/NZS BBBB (Committee Draft). Timber—Methods for evaluation of mechanical joint systems, Part 1: Static loading; Part 2: Cyclonic wind loading; Part 3: Earthquake loading.” Standards Australia, Sydney, Australia.
Stringer, G. R. (1993). “The application of Johansen’s yield theory to Australian nailed timber joints.” Proc., 24th Forest Products Res. Conf., CSIRO Forestry and Forest Products, Clayton, Victoria, Australia, Vol. 1(6/8), 14.
Tan, D.and Smith, I., (1999). “Failure in-the-row model for bolted timber connections.” J. Struct. Eng., 125(7), 713–718.
Task Committee on Fasteners of Committee on Wood, American Society of Civil Engineers. (1996). Mechanical Connections in Wood Structures, ASCE Manuals and Reports on Engineering Practice No. 84, ASCE, New York.
USDA. (1987). Wood Handbook: Wood as an Engineering Material, Agriculture Handbook 72, United States Department of Agriculture, Washington, D.C., Chap. 7.
Whale, L. R. J., and Smith, I. (1986). “Mechanical joints in structural timberwork—Information for probabilistic design.” Research Rep. No. 17/86, Timber Research and Development Association, High Wycombe, U.K.
Whale, L. R. J., and Smith, I. (1987). “Mechanical timber joints.” Research Rep. No. 18/86, Timber Research and Development Association, High Wycombe, U.K.
Whale, L. R. J., and Smith, I., (1989). “A method for measuring the embedding characteristics of wood and wood based materials.” Mater. Struct., 22, 403–410.
Whale, L. R. J., Smith, I. and Larsen, H. J. (1987). “Design of nailed and bolted joints—Proposals for the revision of existing formulae in draft Eurocode 5 and the CIB code.” Proc., 20th Meeting of CIB-W18, Dublin, Ireland, International Council for Research and Innovation in Building Construction, Rotterdam, The Netherlands.
Wood, L. W. (1951). “Relation of strength of wood to duration of load.” Rep. No. R1916, U.S. Forest Products Laboratory, Madison, Wis.
Yasumura, M., Murota, T., and Sakai, H. (1987). “Ultimate properties of bolted joints in glued-laminated timber.” Proc., 20th Meeting of CIB-W18, Paper No. 20-7-3, International Council for Research and Innovation in Building and Construction, Rotterdam, The Netherlands.
Zahn, J. J., (1991). “Design equation for multiple-fastener wood connections.” J. Struct. Eng., 117(11), 3477–3486.
Zahn, J. J., (1992). “Reliability of bolted wood connections.” J. Struct. Eng., 118(12), 3362–3376.

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Go to Journal of Structural Engineering
Journal of Structural Engineering
Volume 128Issue 1January 2002
Pages: 48 - 59

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Accepted: Jun 4, 2001
Published online: Jan 1, 2002
Published in print: Jan 2002

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Ian Smith, M.ASCE
Professor, Univ. of New Brunswick, P.O. Box 44555, Fredericton, NB, E3B 6C2, Canada.
Greg Foliente, A.M.ASCE
Project Leader and Principal Research Scientist, CSIRO Building, Construction and Engineering, P.O. Box 56, Highett, Victoria 3190, Australia.

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