Please help me question 2.41 & question 2.44 in Physic 139. The driver of a pick
ID: 1643159 • Letter: P
Question
Please help me question 2.41 & question 2.44 in Physic 139.The driver of a pickup truck going 100 km/h applies the brakes, giving the truck a uniform deceleration of 6.5 m/s^2 while it travels 20.0 m. (a) What is the speed of the truck in kilometers per hour at the end of this distance? (b) How much time has elapsed? Two identical cars capable of accelerating at 3.00 m/s^2 are racing on a straight track with running starts. Car A has an initial speed of 2.5 m/s: car B starts with speed of 5.00 m/s. (a) What is the separation of the two cars after 10 s? (b) Which car is moving faster after 10 s?
Explanation / Answer
2.41
Vi = 100 km/hr = 27.78 m/sec
a = -6.5 m/sec^2
s = 20 m
Using equation:
Vf^2 = Vi^2 + 2*a*s
Vf = sqrt (27.78^2 - 2*6.5*20) = 22.62 m/sec
Vf = 22.62*(18/5) = 81.43 km/hr
B.
vf = vi + a*t
t = (vf - vi)/a
t = (22.62 - 27.78)/(-6.5)
t = 0.794 sec
2.44
V1i = 2.5 m/sec, V2i = 5 m/sec
a1i = a2i = 3 m/sec^2
after 10 sec,
s = u*t + 0.5*a*t^2
s1 = 2.5*10 + 0.5*3*10^2 = 175 m
s2 = 5*10 + 0.5*3*10^2 = 200 m
separation = 200 - 175 = 25 m
B.
V1f = V1i + a*t
V1f = 2.5 + 3*10 = 32.5 m/sec
V2f = 5 + 3*10 = 35 m/sec
Car B is running faster