Question_
A car moving at 36km/h accerlates and covers a distance of 24m.if a final velocity of a car is 54km/h,calculate the accerlation of the car and the time for which the car accerlating?
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Answers
Answer:
Initial velocity=36km/h= 10m/s
Final velocity=54km/h=15m/s
Distance covered= 24m
Accerlation=?
Time=?
a) using v^2-u^2=2as
_15^2-10^2= 2×24×a
_125=48a
a=3.6m/s^2..
b) using v=u+at
_15=10+2.6×t
_t=5/2.6
t=1.9s..
Explanation:
hope it's helpful Sakshi ✔️:-)
Explanation:
Given :-
▪ Energy of a ball falling from a height of h = 10 m is reduced by 40% when it strikes the surface.
To Find :-
▪ How high will it rebound.
Solution :-
Let the mass of the ball be m. So, when it was at a height of h = 10 m, It had no kinetic energy but only potential energy.
⇒ Potential Energy = mgh
⇒ P.E = m × 10 × 10 [ g = 10 m/s² ]
⇒ P.E = 100m J
Now, When it stroke the ground it had no potential energy but only kinetic energy which is equal to 100m J (According to the conservation of energy)
Now, It is given that the energy of the ball was reduced by 40% when it stroke the ground, So after striking the ground it had ,
⇒ k.e = K.E - 40% of K.E
⇒ k.e = mgh - 40mgh / 100 [ K.E = mgh ]
⇒ k.e = 100m - 40×100m/100
⇒ k.e = 100m - 40m
⇒ k.e = 60m J
Now, According to the conservation of energy, The kinetic energy will be converted to potential energy, So
⇒ Potential energy = Kinetic energy
⇒ mgh = 60m
⇒ 10m × h = 60m [ g = 10 m/s² ]
⇒ 10h = 60
⇒ h = 6
Hence, The ball will rebound to a height of 6 m.