Question 13.EP.2: A bronze bushing is to be installed into a steel sleeve as i...

For 1, from Table 13_4,

for a part size of 2.50 in at the mating surface, the tolerance limits on the hole in the outer member are  +1.2 and -0 . Applying these limits to the basic size gives the dimension limits for the hole in the steel sleeve: 2.5012 in
2.5000

in For the bronze insert, the tolerance limits are +3.2 and +2.5. Then the size limits for the outside diameter of the bushing are 2.5032 in
2.5025 in

The limits of interference would be 0.0013 to 0.0032 in. For 2, the maximum pressure would be produced by the maximum interference,
0.0032 in. Then, using a = 1.00 in, b= 1.25 in,E_{o}=30 \times 10^{6} \mathrm{psi}, E_{i}=17× 10^{6} psi,and v_{o}=v_{i}=0.27 from Equation (13_3), p=\frac{\delta}{2 b\left[\frac{1}{E_{o}}\left(\frac{c^{2}+b^{2}}{c^{2}-b^{2}}+v_{o}\right)+\frac{1}{E_{i}}\left(\frac{b^{2}+a^{2}}{b^{2}-a^{2}}-v_{i}\right)\right]}

p = 3518 psi The tensile stress in the steel sleeve is \sigma_{o}=p\left(\frac{c^{2}+b^{2}}{c^{2}-b^{2}}\right)=3518\left(\frac{1.75^{2}+1.25^{2}}{1.75^{2}-1.25^{2}}\right)=10846 \mathrm{psi} The compressive stress in the bronze bushing is \sigma_{i}=-p\left(\frac{b^{2}+a^{2}}{b^{2}-a^{2}}\right)=-3518\left(\frac{1.25^{2}+1.00^{2}}{1.25^{2}-1.00^{2}}\right)=-16025 \mathrm{psi} The increase in the diameter of the sleeve is \delta_{o}=\frac{2 b p}{E_{o}}\left[\frac{c^{2}+b^{2}}{c^{2}-b^{2}}+v_{o}\right]

\delta_{o}=\frac{2(1.25)(3518)}{30 \times 10^{6}}\left[\frac{1.75^{2}+1.25^{2}}{1.75^{2}-1.25^{2}}+0.27\right]=0.00098 \text { in } The decrease in the diameter of the bushing is \delta_{i}=-\frac{2 b p}{E_{i}}\left[\frac{b^{2}+a^{2}}{b^{2}-a^{2}}-v_{1}\right]

\delta_{i}=\frac{2(1.25)(3518)}{17 \times 10^{6}}\left[\frac{1.25^{2}+1.00^{2}}{1.25^{2}-1.00^{2}}+0.27\right]=0.00222 \mathrm{in}   Note that the sum of \delta _{o} and \delta _{i} equals 0.0032, the total interference, δ.