Answer:
See explanation
Explanation:
We convert the speed of the car to ms-1
90 Ć 1000/3600 = 25 ms-1
a) from;
F= ma
a= F/m
a= 8400/1050 = 8 ms-2
b) from
v= u - at
v= 0
u = 25 ms-1
a= 8 ms-2
t= ?
t = u/a = 25/8 = 3.1 s
From;
v^2 = u^2 - 2as
v= 0 ms-1
u^2 = 2as
s = u^2/2a
s= (25)^2/2 Ć 8
s= 625/16
s = 39 m
A. The acceleration of the car when the brakes were applied is ā8 m/sĀ².
B. The time taken for the car to stop is 3.13 s.
C. The distance travelled by the car while the brakes were applied is 39.06 m.
A. Determination of the acceleration of car.
Force (F) = ā8400 N (opposite direction)
Mass (m) = 1050 kg
Force = mass Ć acceleration
ā8400 = 1050 Ć a
Divide both side by 1050
a = ā8400 / 1050
NOTE: The negative sign indicates that the car is coming to rest.
B. Determination of the time taken for the car to stop.
Initial velocity (u) = 90 Km/h = (90 Ć 1000)/3600 = 25 m/s
Final velocity (v) = 0 m/s
Acceleration (a) = ā8 m/sĀ²
v = u + at
0 = 25 + (ā8 Ć t)
0 = 25 ā 8t
Collect like terms
0 ā 25 = ā8t
ā25 = ā8t
Divide both side by ā8
t = ā25 / ā8
Therefore, the time taken for the car to stop is 3.13 s
C. Determination of the distance travelled by the car.
Initial velocity (u) = 25 m/s
Final velocity (v) = 0 m/s
Acceleration (a) = ā8 m/sĀ²
vĀ² = uĀ² + 2as
0Ā² = 25Ā² + (2 Ć ā8 Ć s)
0 = 625 ā 16s
Collect like terms
0 ā 625 = ā16
ā625 = ā165
Divide both side by ā16
s = ā625 / ā16
Therefore, the distance travelled by the car is 39.06 m
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