Question

What is the difference between t = 0 and t = 1 seconds?

Answer 1

Given displacement vector

`x=4cos(pit+pi/4)`

Value of `x` at `t=0`

`x(0)=4cos(pixx0+pi/4)`
`=>x(0)=4cos(pi/4)`

Value of `x` at `t=1`

`x(1)=4cos(pixx1+pi/4)`
`=>x(1)=4cos((5pi)/4)`

Displacement between `t=0and t=1` is

`Deltax=x(1)-x(0)`
`=>Deltax=4cos((5pi)/4)-4cos((5pi)/4)`
`=>Deltax=4[cos((5pi)/4)-cos((pi)/4)]`

Making use of the unit circle reproduced below to rewrite in vector form. The first value in the round brackets represents `cos` or `hatj` and second value represents `sin` or `hati` component for a particular angle.

`=>Deltax=4[-sqrt2/2hatj-sqrt2/2hatj]`
`=>Deltax=-4sqrt2hatj`

Answer 2

This is 1-D motion, along the number line:

• `x(t) = 4 cos (pi t + pi / 4)`

• `{(x(0) = 4 cos (pi /4) = 4/sqrt2),(x(1) = 4 cos ((5pi) /4) = - 4/sqrt2 ):}`

`Delta x = - 4/sqrt2 - 4/sqrt2 = - 8/sqrt2 =- 4 sqrt2 " metres "`