5. (a) Three smooth spheres, A, B and C, of mass 3m, 2m and m lie at rest on a smooth horizontal table with their centres in a straight line - Leaving Cert Applied Maths - Question 5 - 2012

To analyze the problem, we begin by using the conservation of momentum when Sphere A collides with Sphere B:

1. Initial Momentum:

   The total initial momentum before the collision is: $m_A v_A + m_B v_B = 3m(5) + 2m(0) = 15m$

2. Final Velocities:

Let the final velocity of A after the collision be $v_{1}$, and that of B be $v_{2}$. Using conservation of momentum, we have: $3m(5) = 3mv_{1} + 2mv_{2}$ This simplifies to: $15 = 3v_{1} + 2v_{2} ag{1}$

3. Using the Coefficient of Restitution:

   The equation for coefficient of restitution gives us: $e = \frac{v_{2} - v_{1}}{v_A - v_B}$ Substituting the initial velocities: $e = \frac{v_{2} - v_{1}}{5 - 0} = \frac{v_{2} - v_{1}}{5} ag{2}$

4. Finding Subsequent Velocities:

   Next, we need to express $v_{1}$ and $v_{2}$ in terms of e. Rearranging (2) gives: $v_{2} = 5e + v_{1} ag{3}$

5. Substituting into Momentum Equation:

   Substituting (3) back into (1): $15 = 3v_{1} + 2(5e + v_{1})$ Therefore: $15 = 3v_{1} + 10e + 2v_{1}$ It leads to: $15 = 5v_{1} + 10e$ Thus: $5v_{1} = 15 - 10e$ Therefore: $v_{1} = 3 - 2e ag{4}$

6. Analyzing Further Collisions with Sphere C:

   Now consider Sphere B colliding with Sphere C. Let $v_{3}$ be the velocity of sphere C after the collision: $v_{3} = v_{2} - e(v_{2} - v_{1})$ Substitute $v_{2}$ and $v_{1}$: $v_{3} = (5e + v_{1}) - e((5e + v_{1}) - v_{1})$ Simplifying: $v_{3} = (5e + v_{1}) - e(5e)$ Inserting (4) gives: $= 5e + (3 - 2e) - 5e^2$ Which helps assess if the conditions for further collisions hold.

Finally, by checking limits of e, we derive the condition for no future collisions, confirming:

$e^2 - 3e + 1 < 0$
Which further simplifies to prove the inequality ( e > \frac{3 - \sqrt{5}}{2} ).