Mass of the object $$(m)=500 \mathrm{~g}=0.5 \mathrm{~kg}$$

Speed of the object $$(v)=25 \mathrm{~m} / \mathrm{s}$$

(a) Impulse imparted to the object = change in momentum

$$\begin{aligned} & =m v-m u \\ & =m(v-u) \\ & =0.5(25-0)=12.5 \mathrm{~N}-\mathrm{s} \end{aligned}$$

(b) Velocity of the object after rebounding

$$\begin{aligned} & =-\frac{25}{2} \mathrm{~m} / \mathrm{s} \\ v^{\prime} & =-12.5 \mathrm{~m} / \mathrm{s} \\ \therefore \quad \text { Change in momentum } & =m\left(v^{\prime}-v\right) \\ & =0.5(-12.5-25)=-18.75 \mathrm{~N}-\mathrm{s} \end{aligned}$$

While going up a mountain, the force of friction acting on a vehicle of mass $$m$$ is $$f=\mu R=\mu \mathrm{mg} \cos \theta$$, where $$\theta$$ is the angle of slope of the road with the horizontal. To avoid skidding force of friction ($$f$$) should be large and therefore, $$\cos \theta$$ should be large and hence, $$\theta$$ should be small.

That's why mountain roads are generally made winding upwards rather than going straight upto avoid skidding.

The thread $$A B$$ will break earlier than the thread $$C D$$. This is because force acting on thread $$C D=$$ applied force and force acting on thread $$A B=$$ (applied force + weight of 2 kg mass). Hence, force acting on thread $$A B$$ is larger than the force acting on thread $$C D$$.

When the lower thread $$C D$$ is pulled with a jerk, the thread $$C D$$ itself break. Because pull on thread $$C D$$ is not transmitted to the thread $$A B$$ instantly.

$$\begin{aligned} \text { Given, } m_1 & =5 \mathrm{~kg}, m_2=3 \mathrm{~kg} \\ g & =9.8 \mathrm{~m} / \mathrm{s}^2 \text { and } a=2 \mathrm{~m} / \mathrm{s}^2 \end{aligned}$$

For the upper block

$$\begin{aligned} & & T_1-T_2-5 g & =5 a \\ \Rightarrow & & T_1-T_2 & =5(g+a) \end{aligned}$$

For the lower block

$$T_2-3 g=3 a$$

$$\Rightarrow \quad T_2=3(g+a)=3(9.8+2)=35.4 \mathrm{~N}$$

$$\begin{aligned} &\text { From Eq. (i) }\\ &\begin{aligned} T_1 & =T_2+5(g+a) \\ & =35.4+5(9.8+2)=94.4 \mathrm{~N} \end{aligned} \end{aligned}$$