Question

Question #0993b

Answer 1

`16/3`sq. units

Explanation:

Given: `y^2=2x+3` and `y = x`

Here is a graph of the two equations:

graph{(2x+3-y^2)(y-x)=0 [-10, 10, -5, 5]}

Solving these equations:

`y^2=2x+3" [1]"`
`y = x" [2]"`

Substituting equation [2] into equation [1]:

`x^2=2x+3`

`x^2 - 2x - 3=0`

`(x-3)(x+1)=0`

`x = 3 and x = -1`

`:. "Area" = int_-1^3(y - (y^2-3)/2)dy`

`= {:y^2/2-y^3/6+3/2y]_-1^3`

`= 16/3 "units"^2`