TECHNICAL PAPERS
Dec 1, 1999

Vibration Design Criterion for Wood Floors Exposed to Normal Human Activities

Publication: Journal of Structural Engineering
Volume 125, Issue 12

Abstract

Annoying vibration for occupant-induced footfalls is a serviceability limit state that must be considered in the design of structures, including residential wood floors. Recently proposed design methods addressing excessive floor vibrations require knowledge of the dynamic characteristics of the floor system, such as the fundamental frequency or the root-mean-square acceleration (arms). A finite-element approach was utilized to model wood floor systems under dynamic loads resulting from normal human activities, and design curves relating arms to floor fundamental frequency and mass are proposed. Predicted behavior from the design curves was compared with behavior observed from an experimental study and the two sets of results were found to be in close agreement. From the results, it is concluded that current vibration criteria based upon static properties or fundamental frequency are inadequate for preventing undesirable floor vibration. To obtain an acceptable value of arms for a floor, it is shown that a stiffer floor with a higher fundamental frequency is required. It is also concluded that a proper floor design may be achieved through the use of the proposed design curves.

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References

1.
ABAQUS User's Manual. (1996). Version 5.6, Hibbitt, Karlsson, and Sorensen, Inc., Pawtucket, R.I.
2.
Allen, D. E. (1974). “Vibrational behavior of long-span floor slabs.” Can. J. Civ. Engrg., 1(1), 108–115.
3.
Allen, D. E., and Rainer, J. H. (1976). “Vibration criteria for long-span floors.” Can. J. Civ. Engrg., 3(2), 165–173.
4.
Allen, D. E. (1990). “Floor vibrations from aerobics.” Can. J. Civ. Engrg., 17(5), 771–779.
5.
Allen, D. E., and Murray, T. M. (1993). “Design criterion for vibrations due to walking.” Engrg. J., 90(4), 117–128.
6.
Chui, Y. H. (1986). “Vibrational performance of timber floors and the related human discomfort criteria.” J. of Inst. Wood Sci., 10(5), 183–188.
7.
Dolan, J. D., Woeste, F. E., and Li, X. (1995). “Effect of imposed load on solid-sawn wood-joist floor vibrations.” Forest Products J., 45(1), 71–76.
8.
Earnest, D. R. ( 1997). “Vibration of wood joist floors due to occupant loading,” MS thesis, Civil and Environmental Engineering Dept., Washington State University, Pullman, Wash.
9.
Ebrahimpour, A., and Sack, R. L. (1989). “Modeling dynamic occupant loads.”J. Struct. Engrg., ASCE, 115(6), 1476–1496.
10.
Ellingwood, B., and Tallin, A. (1984). “Structural serviceability: Floor vibrations.”J. Struct. Engrg., ASCE, 110(2), 401–410.
11.
“Evaluation of human exposure to whole-body vibration—Part 2: Continuous and shock-induced vibrations in buildings (1 to 80 Hz).” (1989). ISO 2631-2, International Organization for Standardization, Geneva.
12.
Filiatrault, A., Folz, B., and Foschi, R. O. (1990). “Finite-strip free-vibration analysis of wood floors.”J. Struct. Engrg., ASCE, 166(8), 2127–2142.
13.
Folz, B., and Foschi, R. O. (1991). “Coupled vibrational response of floor systems with occupants.”J. Engrg. Mech., ASCE, 117(4), 872–892.
14.
Foschi, R. O., and Gupta, A. (1987). “Reliability of floors under impact vibration.” Can. J. Civ. Engrg., 14(5), 683–689.
15.
Foschi, R. O., Neumann, G. A., Yao, F., and Folz, B. (1995). “Floor vibration due to occupants and reliability-based design guidelines.” Can. J. Civ. Engrg., 22, 471–479.
16.
“Guide to evaluation of human exposure to vibration in buildings (1 Hz to 80 Hz).” (1992). BSI BS 6472. British Standards Institution, London.
17.
Kalkert, R. E., Dolan, J. D., and Woeste, F. E. (1993). “The current status of analysis and design for annoying wooden floor vibrations.” Wood and Fiber Sci., 25(3), 305–314.
18.
Kalkert, R. E., Dolan, J. D., and Woeste, F. E. (1995). “Wood-floor vibration design criteria.”J. Struct. Engrg., ASCE, 121(9), 1294–1297.
19.
Lenzen, K. H. (1966). “Vibration of steel joists.” AISC Engrg. J., 3(3), 133–136.
20.
Murray, T. M. (1979). “Acceptability criterion for occupant-induced floor vibration.” Engrg. J., AISC, 62–69.
21.
Ohlsson, S. (1988). “A design approach to footstep-induced floor vibration.” Proc., Int. Conf. on Timber Engrg., Forest Products Research Soc., Madison, Wisc., 722–729.
22.
Ohlsson, S. (1991). “Serviceability criteria—especially floor vibration criteria.” Proc., Int. Timber Engrg. Conf., Vol. I, TRADA Technology Ltd., High Wycomb., U.K., 1.58–1.65.
23.
Onysko, D. (1970). “Performance of wood-joist floors: A questionnaire survey.” Rep. No. OPX 120 E, Eastern Forest Prod. Lab., Ottawa, Canada.
24.
Onysko, D. ( 1985). “Serviceability criteria for residential floors based on a field study of consumer response.” Proj. No. 03-50-10-008, Forintek Canada Corp., Ottawa, Canada.
25.
Onysko, D. ( 1988). “Performance and acceptability of wood floors—Forintek studies.” Natural Resources Council of Canada Publ. 28822, Forintek Canada Corp., Ottawa, Canada.
26.
Polensek, A. (1970). “Human response to vibration of wood joist floor systems.” Wood Sci., 3(2), 111–119.
27.
Polensek, A. (1971). “Static and dynamic properties of glued wood-joist floors.” Forest Products J., 21(12), 31–39.
28.
Polensek, A. (1975). “Damping capacity of nailed wood-joist floors.” Wood Sci., 8(2), 141–151.
29.
Polensek, A. (1988). “Structural damping and its effect on human response to floor vibrations.” Proc., Int. Conf. on Timber Engrg., Forest Products Research Soc., Madison, Wisc., 746–755.
30.
Polensek, A., Atherton, G., and Corder, S. (1976). “Human response to walking and impact vibration of wood floors.” Forest Products J., 26(10), 40–47.
31.
Smith, I., and Chui, Y. H. (1988). “Design of lightweight wooden floors to avoid human discomfort.” Can. J. Civ. Engrg., 15(2), 254–262.
32.
Tucker, B. J. ( 1996). “Partial composite action and lateral distribution effects on wood-joist floor systems with various construction techniques,” MS thesis, Civil and Environmental Engineering Dept., Washington State University, Pullman, Wash.
33.
Wiss, J. F., and Parmelee, R. A. (1974). “Human perception of transient vibrations.”J. Struct. Div., ASCE, 100(4), 773–787.

Information & Authors

Information

Published In

Go to Journal of Structural Engineering
Journal of Structural Engineering
Volume 125Issue 12December 1999
Pages: 1401 - 1406

History

Received: Nov 25, 1997
Published online: Dec 1, 1999
Published in print: Dec 1999

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Authors

Affiliations

Member, ASCE
Member, ASCE
Development Engr., MSC Software Corp., 260 Sheridan Ave., Ste. 309, Palo Alto, CA 94306.
Assoc. Prof., Dept. of Civ. and Envir. Engrg., Wood Mat. and Engrg. Lab., Washington State Univ., Pullman, WA 99164-2910.
Prof., Dept. of Civ. and Envir. Engrg., Wood Mat. and Engrg. Lab., Washington State Univ., Pullman, WA.

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