(a) Consider the adjacent diagram in which the bob B is displaced through an angle $\mathrm{\theta }$ and released.

At t = 0 suppose bob B is displaced by $\mathrm{\theta } = 10°$ to the right. It is given potential energy ${\mathrm{E}}_1$ = $\mathrm{E}$. Energy of A, ${\mathrm{E}}_2$ = 0.

When B is released, it strikes A at t = T/4 In the head-on elastic collision between B and A comes to rest and A gets velocity of B. Therefore, ${\mathrm{E}}_1$ = 0 and ${\mathrm{E}}_2$ = E.  At = 2 T/4. B reaches its extreme right when KE of A is converted into PE = ${\mathrm{E}}_2$ = E. Energy of ${\mathrm{E}}_1$ = 0

At t = 3 T/ 4. A reaches its mean when its PE is converted into KE = ${\mathrm{E}}_2$ = E. It collides elastically with B and transfers whole of its energy to B.

Thus, ${\mathrm{E}}_2 = 0 \mathrm{and} {\mathrm{E}}_1 = \mathrm{E}$. The entire process is repeated.

Step 2: Find energies of different bobs and draw the graph.

(b) The values of energies of B and A at different time intervals are tabulated here. The plot of energy with time $0 \le \mathrm{t} \le 2 \le \mathrm{T}$ is shown separately for B and A in the figure below.

Time (t)       Energy of A $\left({\mathrm{E}}_1\right)$        Energy of B $\left({\mathrm{E}}_2\right)$

   0                         E                           0
  T/4                       0                           E
2T/4                       0                           E
3T/4                       E                           0
4T/4                       E                           0
5T/4                       0                           E
6T/4                       0                           E
7T/4                       E                           0
8T/4                       E                           0