A tennis ball has a mass of 58 g - AQA - A-Level Physics - Question 26 - 2022 - Paper 1

Next, we calculate the momentum of the ball after it rebounds to a height of 1.1 m. Using the same formula for free fall:

$v_{final} = \text{sqrt}(2gh)$

where $h = 1.1 \, m$:

$v_{final} = \text{sqrt}(2 \times 9.81 \times 1.1) \approx 4.69 \, m/s$

The final momentum is then:

$p_{final} = 0.058 \times 4.69 \approx 0.27262 \, kg \, m/s$

The change in momentum during the collision with the ground can be calculated as:

$\Delta p = p_{final} - (-p_{initial}) = p_{final} + p_{initial}$

Substituting the calculated values:

$\Delta p = 0.27262 + 0.34434 = 0.61696 \, kg \, m/s$

Thus, the change in momentum is approximately:

$\Delta p \approx 0.617 \, N \, s$

Comparing with the options provided:

• A. 0.040 N s
• B. 0.075 N s
• C. 0.215 N s
• D. 0.614 N s

The closest option is D. 0.614 N s.