Correct Answer - Option 3 : 2100 m/s
2
CONCEPT:
Acceleration:
- When the velocity of a moving object changes either in magnitude or in direction or in both, then the body is said to be in acceleration.
- The rate of change of velocity is called acceleration.
\(⇒ a =\frac{Δ v}{Δ t}\)
Where Δv = change in velocity and Δt = time
Equation of Kinematics:
- These are the various relations between u, v, a, t, and s for the particle moving with uniform acceleration where the notations are used as:
- Equations of motion can be written as
⇒ V = U + at
\(⇒ s =Ut+\frac{1}{2}{at^{2}}\)
⇒ V2 = U2+ 2as
where, U = Initial velocity, V = Final velocity, g = Acceleration due to gravity, t = time, and h = height/Distance covered
CALCULATION:
The third equation of motion is given as,
⇒ V2 = U2 + 2as -----(1)
In case 1, (U1 = 0 m/s, s1 = 10 m, a1 = g = 9.8 m/s2)
\(⇒ V_{1}^{2}=U_{1}^{2}+2gs_{1}\)
\(⇒ V_{1}^{2}=0^{2}+(2\times9.8\times10)\)
⇒ V1 = 14 m/s (Downward)
In case 2 when the ball rebounds, (V2 = 0 m/s, s2 = 2.5 m, a2 = -g = -9.8 m/s2)
\(⇒ V_{2}^{2}=U_{2}^{2}-2gs_{2}\)
\(⇒ 0^{2}=U_{2}^{2}-(2\times9.8\times2.5)\)
⇒ U2 = 7 m/s (Upward)
- So the change in velocity during contact is given as,
⇒ ΔV = U2 - V1
⇒ ΔV = 7 - (-14)
⇒ ΔV = 7 + 14
⇒ ΔV = 21 m/s
And,
⇒ Δt = 0.01 sec
So the acceleration during contact,
\(⇒ a =\frac{ΔV}{Δ t}\)
\(⇒ a =\frac{21}{0.01}\)
⇒ a = 2100 m/s2
- Hence, option 3 is correct.
