Two particles P and Q have masses 0.3 kg and m kg respectively - Edexcel - A-Level Maths Mechanics - Question 6 - 2011 - Paper 1

By considering the forces when the system is released, we can apply Newton's second law. The total force acting on the system must equal mass times acceleration:

For particle Q:

$T - mg = -ma \implies T = mg - ma,$ where a = 1.4 m/s².

For particle P, considering the downhill forces:

$mg \sin(\alpha) - T = 0.3 \cdot 1.4$

Substituting T from above into this equation, we eliminate R and T, leading to:

$0.3 g \sin(\alpha) = F = 0.3 \cdot 1.4.$

Solving simultaneously will yield the value of m. After calculations, we can find:

$m = 0.4 \, \text{kg}.$

When the string breaks, the only forces acting on P will be its weight and the friction force. The acceleration of P can be calculated by:

For particle P:

The equation of motion after the string breaks takes into account both forces:

0.3g - F = 0.3a \. \implies 0.3g - 0.3 \times 9.8 \sin(\alpha) = 0.3a,

By substituting for a:

• The downward force is reduced by friction, leading to a net acceleration:
• Assuming g ~ 9.8 m/s².
• Then use this to find the velocity after 0.5 s:

$v = 1.4 \times 0.5 = 0.7 \, \text{m/s}.$

After the break, the deceleration will be calculated and the time taken to stop can be determined by finding:

$t = \frac{v}{a} = \frac{0.7}{0.3 \cdot g - 0.3a}.$

After substituting the values, we can find: $t = 0.071 s \text{ or } 0.0714 s.$