A compound beam ABCD has a cable with force P anchored at C The cable passes over a pulley at D, and force P acts in the —x direction, There is a moment release just left of B. Neglect the self-weight of the beam and cable. Cable force P = 450 N and dimension variable L = 0.25 m. The beam has a rectangular cross section (b = 20 mm, it = 50 mm). (a) Calculate the maximum normal stresses and maximum in-plane shear stress on the bottom surface of the beam at support A. (b) Repeat part (a) for a plane stress element located at mid-height of the beam at A. (c) If the maximum tensile stress and maximum in-plane shear stress at point A are limited to 90 MPa and 42 MPa, respectively, what is the largest permissible value of the cable force P?
A compound beam ABCD has a cable with force P anchored at C The cable passes over a pulley at D, and force P acts in the —x direction, There is a moment release just left of B. Neglect the self-weight of the beam and cable. Cable force P = 450 N and dimension variable L = 0.25 m. The beam has a rectangular cross section (b = 20 mm, it = 50 mm). (a) Calculate the maximum normal stresses and maximum in-plane shear stress on the bottom surface of the beam at support A. (b) Repeat part (a) for a plane stress element located at mid-height of the beam at A. (c) If the maximum tensile stress and maximum in-plane shear stress at point A are limited to 90 MPa and 42 MPa, respectively, what is the largest permissible value of the cable force P?
A compound beam ABCD has a cable with force P anchored at C The cable passes over a pulley at D, and force P acts in the —x direction, There is a moment release just left of B. Neglect the self-weight of the beam and cable. Cable force P = 450 N and dimension variable L = 0.25 m. The beam has a rectangular cross section (b = 20 mm, it = 50 mm).
(a) Calculate the maximum normal stresses and maximum in-plane shear stress on the bottom surface of the beam at support A.
(b) Repeat part (a) for a plane stress element located at mid-height of the beam at A.
(c) If the maximum tensile stress and maximum in-plane shear stress at point A are limited to 90 MPa and 42 MPa, respectively, what is the largest permissible value of the cable force P?
(a)
Expert Solution
To determine
The maximum normal stresses and maximum in-plane shear stress on the bottom of the beam at fixed support A.
Answer to Problem 8.5.34P
Maximum normal stresses, σ1=0 , σ2=σx=−108.4ΜΡa
Maximum in-plane shear stress τmax=−54.2ΜΡa
Explanation of Solution
Given information: A compound beam ABCD has a cable having force P anchored at C as shown in the figure below:
Cable force P=450N
Dimension variable L=0.25m
The cross section of the beam b=20mm and h=50mm
To calculate the maximum normal stress and in-plane shear stress first taken the cross-sectional properties of the beam.
Area of the rectangular beam A=bh
A=20×50A=1000mm2
Moment of inertia of the rectangular beam is I=bh312
I=20×(50)31220×50I=208333.333mm4
Now reactions at fixed support A
Horizontal force HA=P
HA=450Ν
Shear force VA=4L3LP
VA=43×450VA=600Ν
And moment at point A, MA=8PL
MA=8×450×0.25MA=900Ν−m
Now, maximum normal stresses on the bottom of the beam at A is,
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