Question

How do you find the instantaneous velocity at `t=2` for the position function `s(t) = t^3 +8t^2-t`?

Answer 1

`43`

Explanation:

The instantaneous velocity is given by `(ds)/dt`.

Since `s(t)=t^3+8t^2-t`, `(ds)/dt=3t^2+16t-1`.

At `t=2`, `[(ds)/dt]_(t=2)=3*2^2+16*2-1=43`.

Answer 2

`43`

Explanation:

We have the position as the function `s(t)=t^3+8t^2-t`.

Velocity is the rate of change of position over time, so its the derivative of the function.

`:.s'(t)=3t^2+16t-1`

So at `t=2`, the velocity is,

`s'(2)=3*2^2+16*2-1`

`=3*4+32-1`

`=12+32-1`

`=44-1`

`=43`