Question

The steel beam has the cross section shown. The beam length is L = 24 ft, and the cross-sectional dimensions are d = 18.6 in., bf = 9.1 in., tf = 0.615 in., and tw 0.305 in. Calculate the maximum bending stress in the beam if wo = 7.5 kips/ft. у В Answer: omax ksi = the tolerance is +/-2%

Answer 1

oc Fly and Cy are the reaction force, at the support A and a respectively. مجھے لملائن 416 load Equivalent concentrated for distributed (Wo)(!) = WoW from A and C. acting at 23 ( 2 ) = 1 Suncy moments about C: Pit) {Mc zo : Ay (L) - Wol (224 + 2) - Wols (23) 20 or Ay = WOL Sum of forces in y-direction! 4tl Efyzo : Ay - Wol - Wol + Cy=0 | of Cr - -Me + Me + 3 는

occur at the : The maximum benching moment will center boint Consider the free-body diagram of the half beam. wawal ŹM 30 m+ (Woll 5) - Ay E -o form a Ay = wote or m= Ay 22 - Wolle (1/2) - Wet (1) - Wito () - Women 12 Maxinum Bending moment M = (7.5 kibsldt I (248)2 - F = 360 kibH 12 = 4320 Kbp-in. Maximum Bending stress. Tmax = Ma Iz

Iz • tac by) (43) - tz [c by - tw) x Ca- 243}}] - (941) (186)+(9.1-0.305)x(18.6-2x0.6153] = 4879.7658 - 3841.0862 = 1038.67 int Ce = 1806 - 9.3 in Imas = (4320 kib - ) - 1038.67 ing x 9.3 in = 38.68 ksi- ADS