Homework Sourse220 A driver is traveling at 90 mih down a 3 grade on good w
2.20 A driver is traveling at 90 mi/h down a 3% grade on good, wet pavement. An accident investigation tea noted that braking skid marks started 410 ft before a parked car was hit at an estimated 45 mi/h. Ignoring air resistance, and using theoretical stopping distance, what was the braking efficiency of the car? 
Solution
Solution:-
Given
V1 = 90 mph =132 feet/second
V2 = 45 mph = 66 feet/second
Stopping distance = 410 feet
Grade =3 %
For good wet pavement = f = 0.5
We know that
Stopping sight distance = (V1 –V2)2/(2g(f’-0.03))
410 = 662/(2*32*(f’ - 0.03))
f’ = 0.196
Braking efficiency = f’ *100/f
Braking efficiency = 0.196*100/0.5
= 39.2 % Answer
