Asked by Shrawan
An automobile travelling with a speed of 60km/hr, can apply brake to stop within a distance
of 20m. If the car is going twice as fast then calculate the stopping distance and stopping time?
(b) Given R1 = 5.0 ± 0.2 and R2 = 10.0 ± 0.1. calculate the total resistance in parallel with possible
% error?
of 20m. If the car is going twice as fast then calculate the stopping distance and stopping time?
(b) Given R1 = 5.0 ± 0.2 and R2 = 10.0 ± 0.1. calculate the total resistance in parallel with possible
% error?
Answers
Answered by
Henry
a. The stopping distance is proportional to the square of the initial velocity:
Ds = 2^2 * 20m = 80m = Stopping distance.
The stopping time is proportional to the initial velocity:
Vo = 60000m/h * (1h/3600s) = 16.67m/s.
a = (Vf^2-Vo^2) / 2d,
a = (0-(16.67)^2 / 40 = 6.94m/s.
Ts = (vF-2Vo) / A,
tS = (0 - 33.33) / -6.94 = 4.80s.
b. Do you mean +-0.2% and +-0.1%?
Ds = 2^2 * 20m = 80m = Stopping distance.
The stopping time is proportional to the initial velocity:
Vo = 60000m/h * (1h/3600s) = 16.67m/s.
a = (Vf^2-Vo^2) / 2d,
a = (0-(16.67)^2 / 40 = 6.94m/s.
Ts = (vF-2Vo) / A,
tS = (0 - 33.33) / -6.94 = 4.80s.
b. Do you mean +-0.2% and +-0.1%?
Answered by
shailesh
32
Answered by
Anonymous
1346-
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