Question

A rod of length 2m is at a temperature of 20^(@)C. If the temperature is increased to 50^(@)C, then find the thermal stress developed in rod when it is fully prevented to expand (alpha=15xx10^(-6)k^(-1))

Answer 1

Explanation:

Free expansion of the rod =αLΔθ

=15×10^−60C×2m×(50−20)°C

=9×10^-4m=0.9mm

If the expansion is fully prevented, then

Strain= {9×10^−4}/2

=4.5×10^−4

Temperature Stress = Strain ×Y

=4.5×10^−4 ×2×10^11

=9×10^7 N/m^2

If 0.4 mm expansion is allowed, then length restricted to expand

=0.9−0.4=0.5mm

Strain= {5×10^−4}/2

=2.5×10^−4

Temperature stress = Strain×Y=2.5×10^−4×2×10^11

=5×10^7N/m^2

Answer 2

Answer:

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