A ball falls from 20 m height on floor and rebounds to 5 m. Time of contact is 0.02 s. Find acceleration during impact.

Question

A ball falls from 20 m height on floor and rebounds to 5 m. Time of contact is 0.02 s. Find acceleration during impact. (A)  1200 text m/s2  (B)  1000 text m/s2  (C)  2000 text m/s2  (D)  1500 text m/s2

Tardigrade Admin · Accepted Answer

According to Newtons second law of motion force acting on a body is equal to the rate of change of momentum during impact.

F = \frac{Δ p}{Δ t}

Also,

F = ma

∴

ma = \frac{p _{2} - p _{1}}{Δ t}

Or

a = \frac{m v _{2} - ( - m v _{1} )}{m Δ t}

Or

a = \frac{v _{2} + v _{1}}{Δ t}

∴

a = \frac{2 \times 10 \times 20 + 2 \times 10 \times 2}{0.02}

Or

a = \frac{20 + 10}{0.02}

= 1500 m / s^{2}

Q. A ball falls from $20 m$ height on floor and rebounds to $5 m$ . Time of contact is $0.02 s$ . Find acceleration during impact.

$1200 m / s^{2}$

$1000 m / s^{2}$

$2000 m / s^{2}$

$1500 m / s^{2}$

Q. A ball falls from 20m height on floor and rebounds to 5m. Time of contact is 0.02s. Find acceleration during impact.

1200m/s2

1000m/s2

2000m/s2

1500m/s2

According to Newtons second law of motion force acting on a body is equal to the rate of change of momentum during impact. F=ΔtΔp​ Also, F=ma ∴ ma=Δtp2​−p1​​ Or a=mΔtmv2​−(−mv1​)​ Or a=Δtv2​+v1​​ ∴ a=0.022×10×20​+2×10×2​​ Or a=0.0220+10​ =1500m/s2

Q. A ball falls from $20 m$ height on floor and rebounds to $5 m$ . Time of contact is $0.02 s$ . Find acceleration during impact.

$1200 m / s^{2}$

$1000 m / s^{2}$

$2000 m / s^{2}$

$1500 m / s^{2}$