Answer:
a=-4.2 m/s²
Explanation:
The horse riding so inital velocity is given finally the rider stops so the final velocity is zero.
initial velocity =Vi= 21 m/s
final velocity =Vf= 0 m/s
distance covered = S=52 m
By using 2nd equation of motion we can find the acceleration
2aS=Vf² -Vi²
a=(-441)/104
a=-4.2 m/s²
So the accceleration is 4.2 m/s².
Answer:
The acceleration of the horse as it came to a stop is [tex]4.24\ m/s^2[/tex].
Explanation:
Given that,
Initial speed of the horse and rider, u = 21 m/s
It finally comes to rest, v = 0
The horse slows down for 52 m with constant acceleration before it stops.
We need to find the acceleration of the horse as it came to a stop. Let a is the acceleration. We can find it using third equation of motion as :
We need to find the acceleration of the horse as it came to a stop. Let a is the acceleration. We can find it using third equation of motion as :
[tex]v^2-u^2=2ad\\\\a=\dfrac{v^2-u^2}{2d}\\\\a=\dfrac{-u^2}{2d}\\\\a=\dfrac{-(21)^2}{2\times 52}\\\\a=-4.24\ m/s^2[/tex]
So, the acceleration of the horse as it came to a stop is [tex]4.24\ m/s^2[/tex] . Negative sign shows deceleration.
