A sports car moving at constant velocity travels 120 m in 5.0 s. if it then brakes and comes to a stop in 4.0 s, what is the magnitude of its acceleration assumed constant in m/s^2 and in g's g = 9.80 m/s^2
The car is traveling at consta[tex]v= \frac{space}{time}= 120/5 =24 m/s[/tex]nt velocity. It then stops in 4 seconds moving with uniform negative acceleration. Thus [tex]0=v+a*t[/tex] where a is the acceleration. Therefore the acceleration is [tex]a=- \frac{v}{t}=-24/4=-6 (m/s^2) [/tex] Given in g ([tex]g=9.80 (m/s^2)[/tex]) the acceleration is [tex]a=-6/9.81 =-0.612*g[/tex]
