Applied Statics and Strength of Materials (6th Edition)
Applied Statics and Strength of Materials (6th Edition)
6th Edition
ISBN: 9780133840544
Author: George F. Limbrunner, Craig D'Allaird, Leonard Spiegel
Publisher: PEARSON
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Chapter 21, Problem 21.1P
To determine

Lightest steel structure section for the cantilever beam.

Expert Solution & Answer
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Answer to Problem 21.1P

   W12×22

Explanation of Solution

Given:

Tensile yield strength of beam sy=50ksi

Point load on the beam P=15kips

Calculation:

The deflection of beam due to point load P and reaction RA is given by,

  Applied Statics and Strength of Materials (6th Edition), Chapter 21, Problem 21.1P , additional homework tip  1

Length of beam is given by,

   l=a+bl=10+15l=25ft

From the appendix, beam diagrams and formulas, than the deflection of the cantilever beam at A due to the point load P is given by,

   Δ1=Pb26EI(3lb)Δ1=15 ( 15 )26EI(3×2515)Δ1=33750EI

Than the deflection beam with load removed and due to reaction RA is given by,

   Δ2=RAl33EIΔ2=RA 2533EIΔ2=5208.333EIRA

Deflection will be zero at support A,

   Δ1=Δ233750EI=5208.33EIRARA=337505208.33RA=6.48kips

Sum of the forces acting along Y direction,

   Fy=0RAP+VB=06.4815+VB=0VB=8.52kips

Taking form left of the beam,

Cutting plane 1:

   0x10ft

Cutting plane 2:

   10ftx25ft

Consider free body diagram at 0x10ft,

  Applied Statics and Strength of Materials (6th Edition), Chapter 21, Problem 21.1P , additional homework tip  2

Calculate the shear force (upward forces are taken as positive),

   VX=RAVX=6.48kips

To find bending moment we have,

   MX=RA×xMX=6.48xkft

Hence for 0x10ft,

Therefore shear force,

   V0=V10=6.48kips

Therefore bending moment,

   M0=0kftx=0ftM10=64.8kft@x=10ft

Consider free body diagram at 10ftx25ft,

  Applied Statics and Strength of Materials (6th Edition), Chapter 21, Problem 21.1P , additional homework tip  3

From the free body diagram we have,

Shear force calculation,

   VX=RAPVX=6.48kips15VX=8.52kips

Bending moment calculation,

   MX=RA×xP(x10)MX=6.48x15(x10)kftMX=8.52x+150kft

Therefore shear force,

   V10=V15=8.52kips

Therefore bending moment,

   M10=64.8kftx=10ftM25=63kft@x=25ft

Shear force and bending moment diagram is given by,

  Applied Statics and Strength of Materials (6th Edition), Chapter 21, Problem 21.1P , additional homework tip  4

Therefore maximum shear force acting on the beam,

   V=8.52kips

Maximum bending moment acting on the beam,

   M=64.8kftM=777.6kin

Required plastic section modulus is given by formula,

   ZX=1.67MsyZX=1.67×777.650ZX=25.97in3

From the dimensions and properties of W shapes table, for W12×22 shape, ZX=29.3in3 then the values of d=12.31in and tw=0.260in.

Shear capacity is calculated by,

   VCal=0.4sy×d×twVCal=0.4×50×12.31×0.26VCal=64.012kips

Since the calculate shear capacity is greater than shear force acting on the beam.

Conclusion:

Therefore the lightest steel structure section for the cantilever beam is W12×22.

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