Question

A particle starts from rest with an acceleration of `2` `ms^-2` for `20` `s` and then comes to rest within next `20` `s` with retarding acceleration `2` `ms^-2`. How would you express the motion on a v t graph?

Answer 1

Please read the description below, and graph two straight lines on the v t graph: the first from `(0,0)` to `(40,20)`, the second from `(40,20)` to `(0,40)`.

Explanation:

We can calculate the maximum velocity the particle will attain:

`v=u+at=0+2xx20=40` `ms^-1`

Since the acceleration - the gradient of a v t graph - is constant, the line on the graph will begin at the origin - `v=0` `ms^-1` at `t=0` `s`. It will climb with a constant slope to a value of `v=40` `ms^-1` at `t=20` `s`, then decrease with a constant negative slope back to `v=0` `ms^-1` at `t=40` `s`.

The shape of the graph will be a triangle.