Step 1: Analyze A.
"Plane section remains plane before and after bending" is the fundamental assumption of bending theory (Bernoulli's assumption). It gives linear strain distribution. So, A → II.
Step 2: Analyze B.
"Material is elastic and deflections are small" implies elastic analysis where superposition holds good. Hence, B → I.
Step 3: Analyze C.
"Uniqueness theorem" ensures a unique solution in structural analysis, applied in non-linear stability/buckling problems. Thus, C → III.
Step 4: Analyze D.
"Large deformation" concept is used in plastic analysis to determine the collapse load. So, D → IV.
Step 5: Conclusion.
The correct matching is:
\[
A - II, B - I, C - III, D - IV
\]
For the frame shown in the figure below, the maximum moment in the left column shall be (Assuming Moment of Inertia (I) of all the members is same):
A weight of $500\,$N is held on a smooth plane inclined at $30^\circ$ to the horizontal by a force $P$ acting at $30^\circ$ to the inclined plane as shown. Then the value of force $P$ is:
A steel wire of $20$ mm diameter is bent into a circular shape of $10$ m radius. If modulus of elasticity of wire is $2\times10^{5}\ \text{N/mm}^2$, then the maximum bending stress induced in wire is: