A car is traveling along a straight road at a velocity of +31.0 m/s when its engine cuts out. For the next ten seconds, the car slows down further, and its average acceleration is a1. For the next five seconds, the car slows down further, and its average acceleration is a2. The velocity of the car at the end of the fifteen-second period is +24.5 m/s. The ratio of the average acceleration values is a1/a2 = 1.67. Find the velocity of the car at the end of the initial ten-second interval.

Question

drwls · Accepted Answer

OK, so a1 = 1.67 a2 After 15 seconds, the velocity is 31 + a1*10 + a2*5 = 31 + 1.67 a2 *10 + a2* 5 = 31 + 21.7 a2 = 24.5 21.7 a2 = -6.5 a2 = -0.30 m/s^2 a1 = -0.50 m/s^2 V(@ 10 s) = V + a1*10 = ?

Sara · Answer

31+ (-.5)(10) 26 Is that right?

drwls · Answer

Yes