Question

Starting from rest, a runner reaches a speed of 2.8 m/s in 2.1 s. In the same time 2.1 s time, a motorcycles increases speed from 37. 0 to 43.0 m/s. In both cases, assume the acceleration is constant: (a). What is the acceleration (magnitude only) of the runner?(b). What is the acceleration (magnitude only) of the motorcycle?(c). Does the motorcycle travel farther than the runner during the 2.1 s? (yes or no)If som how much father? (if not, enter zero)?

Answer 1

a) Acceleration of runner is 1.33 m/s²

b) Acceleration of motorcycle is 2.85 m/s²

c) The motorcycle moves 84.21-2.94 = 81.06 m farther than the runner.

Step-by-step explanation:

t = Time taken

u = Initial velocity = 0

v = Final velocity

s = Displacement

a = Acceleration

Equation of motion

`v=u+at\\\Rightarrow a=(v-u)/(t)\\\Rightarrow a=(2.8-0)/(2.1)\\\Rightarrow a=1.33\ m/s^2`

Acceleration of runner is 1.33 m/s²

`v=u+at\\\Rightarrow a=(v-u)/(t)\\\Rightarrow a=(43-37)/(2.1)\\\Rightarrow a=2.85\ m/s^2`

Acceleration of motorcycle is 2.85 m/s²

`v^2-u^2=2as\\\Rightarrow s=(v^2-u^2)/(2a)\\\Rightarrow s=(2.8^2-0^2)/(2* 1.33)\\\Rightarrow s=2.94\ m`

The runner moves 2.94 m

`v^2-u^2=2as\\\Rightarrow s=(v^2-u^2)/(2a)\\\Rightarrow s=(43^2-37^2)/(2* 2.85)\\\Rightarrow s=84.21\ m`

The motorcycle moves 84.21 m

The motorcycle moves 84.21-2.94 = 81.06 m farther than the runner.