Answer:
So displacement in inch will be [tex]\Delta l=3.78249\times 10^{-5}inch[/tex]
Explanation:
We have given length = 50 feet
We know that 1 feet = 12 inches
Force F = 27865 LB
Modulus of elasticity [tex]E=30\times 10^{10}psi[/tex]
So 50 feet = 50×12 = 600 inches
Diameter d = 1.37 inch
So radius [tex]r=\frac{d}{2}=\frac{1.37}{2}=0.685inch[/tex]
So area [tex]A=\pi r^2=3.14\times 0.685^2=1.4733inch^2[/tex]
We know that stress [tex]=\frac{force}{area}=\frac{27865}{1.4733}=18912.47lb/inch^2[/tex]
Now we know that modulus of elasticity [tex]E=\frac{stress}{strain}[/tex]
[tex]30\times 10^{10}=\frac{18912.47}{strain}[/tex]
[tex]strain=630.4156\times 10^{-10}inch[/tex]
Now we know that [tex]strain=\frac{\Delta l}{l}[/tex]
[tex]630.4156\times 10^{-10}=\frac{\Delta l}{600}[/tex]
[tex]\Delta l=3.78249\times 10^{-5}inch[/tex]
