QUESTION;
A car moving with constant acceleration covers the distance between two points 180 m apart in 6 sec.
Its speed as it passes the second point is 45 m/s. Its acceleration . [ ]
a) – 5 m/s² b) – 15 m/s²
c) 25 m/s² d) 5 m/s²
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Answers
Answered by
1
Explanation:
V=45 m/s
u=?
a=?
S=180m
T=6 s
We know that
V=u + at
45=u+6a. . Equation 1
By second equation of motion
S=ut +1/2at^2
180=6u +18a equation 2
Solving one and 2 we get
U=15
A=5
Answered by
13
Answer:-
➣
• Given:-
• To Find:-
Acceleration of car =
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• Solution:-
Distance between two points (s) =
Time taken to cover the distance (t) =
Final velocity (v) =
Therefore, Finding the initial velocity and acceleration:-
• We know:-
The 1st equation of motion is:-
Hence,
Using the 2nd equation of motion:-
• We have:-
• Substituting (eqn.1) in (eqn.2):-
Putting, the value of acceleration [a] in equation (1):-
We have:-
Therefore,
•
•
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