Respuesta :
Diameter of rod = 19 mm
Step-by-step explanation:
We have the equation for elongation
[tex]\Delta L=\frac{PL}{AE}\\\\A=\frac{\pi d^2}{4}[/tex]
Here we have
Elongation, ΔL = 0.266 in = 0.00676 m
Length , L = 35 ft = 10.668 m
Load, P = 8000 lb = 35585.77 N
Modulus of elasticity, E = 30,000,000 psi = 2.07 x 10¹¹ N/m²
Substituting
[tex]\Delta L=\frac{PL}{AE}\\\\A=\frac{\pi d^2}{4}\\\\\Delta L=\frac{4PL}{\pi d^2E}\\\\d^2=\frac{4PL}{\pi \Delta LE}\\\\d=\sqrt{\frac{4PL}{\pi \Delta LE}}\\\\d=\sqrt{\frac{4\times 35585.77\times 10.668}{\pi \times 0.00676 \times 2.07\times 10^{11}}}=0.019m\\\\d=19mm[/tex]
Diameter of rod = 19 mm
