The beam shown in Figure Q3 (b) and (c) is made of steel with Young's Modulus of 200GPa and Yield Stress of 250MPA. The length L is 4m and the beam is pinned at A and supported by a roller at B. i. Calculate the Elastic-Plastic Moment for the cross-section shown in Figure Q3 (c) if the depth of plastic zone is 4mm. i. Determine the value of distributed load w shown in Figure Q3 (b) if the length of the yielded zone is 50mm. b B h Figure Q3 (c) Figure Q3 (b) Front view of simply supported beam Cross-section of beam b = 100mm, h = 40mm t = 4mm

Mechanics of Materials (MindTap Course List)
9th Edition
ISBN:9781337093347
Author:Barry J. Goodno, James M. Gere
Publisher:Barry J. Goodno, James M. Gere
Chapter6: Stresses In Beams (advanced Topics)
Section: Chapter Questions
Problem 6.2.2P: A wood beam is strengthened using two steel plates as shown in Fig, a. The beam has simple supports...
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b)
The beam shown in Figure Q3 (b) and (c) is made of steel with Young's Modulus of 200GPA
and Yield Stress of 250MPA. The length L is 4m and the beam is pinned at A and supported
by a roller at B.
Calculate the Elastic-Plastic Moment for the cross-section shown in Figure Q3 (c) if the
depth of plastic zone is 4mm.
i.
ii.
Determine the value of distributed load w shown in Figure Q3 (b) if the length of the
yielded zone is 50mm.
t
b
A
B
h
L
Figure Q3 (c)
Figure Q3 (b)
Front view of simply supported beam
Cross-section of beam
b = 100mm, h = 40mm
t =
4mm
Transcribed Image Text:b) The beam shown in Figure Q3 (b) and (c) is made of steel with Young's Modulus of 200GPA and Yield Stress of 250MPA. The length L is 4m and the beam is pinned at A and supported by a roller at B. Calculate the Elastic-Plastic Moment for the cross-section shown in Figure Q3 (c) if the depth of plastic zone is 4mm. i. ii. Determine the value of distributed load w shown in Figure Q3 (b) if the length of the yielded zone is 50mm. t b A B h L Figure Q3 (c) Figure Q3 (b) Front view of simply supported beam Cross-section of beam b = 100mm, h = 40mm t = 4mm
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