Two particles A and B have masses 2m and 3m respectively - Edexcel - A-Level Maths Mechanics - Question 5 - 2014 - Paper 2

When B strikes the plane after descending 1.5 m, it comes to rest instantly. We can calculate the distance A travels using the equations of motion.

The initial velocity of A is 0 m/s, and it is subjected to an acceleration of ( a = \frac{g}{5} = 0.6g ). The time to strike the plane is given by: [ s = ut + \frac{1}{2} at^2 ] [ 1.5 = 0 + \frac{1}{2} \left( \frac{g}{5} \right) t^2 ]

Solving for ( t ):
Using ( g \approx 9.8 ), we find: [ 1.5 = \frac{0.6}{2} t^2 ]
[ t^2 = \frac{1.5 \times 2}{0.6}, \quad t \approx 1.5 \text{ seconds} ]

Now applying to find the distance travelled by A: [ s = ut + \frac{1}{2} at^2 ] [ s = 0 + \frac{1}{2} \left( \frac{g}{5} \right) (\Delta t)^2 \approx 0.3 m ]
Therefore, the total distance travelled by A is ( 0.6 ) m.

Impulse is defined as the change in momentum. For particle B, we have: [ ext{Impulse} = m(v - u) ]

Before striking the plane, B's velocity can be calculated using: [ v^2 = u^2 + 2as ]
Substituting ( u = 0 ), ( a = g ), and ( s = 1.5 ): [ v^2 = 0 + 2g(1.5) ]
[ v = \sqrt{3g} \approx \sqrt{3 \times 9.8} \approx 5.43 \text{ m/s} ]

The momentum just before impact: [ p = mv = 3m(5.43) \approx 3 \times 0.5 \times 5.43 = 8.145 \text{ kg m/s} ]
After impact at rest, the impulse on B is: [ ext{Impulse} = 3m(0 - u) = -3m \cdot 5.43 \rightarrow 3m(0 - 5.43) \approx -3 imes 0.5 imes 5.43 = -8.145 \text{ Ns} ]
Thus, the magnitude is ( 3.6 \text{ Ns} ).