Question

What is the net area between `f(x) = sqrt(x^2+2x+1)` and the x-axis over `x in [2, 4 ]`?

Answer 1

`8` sq. units

Explanation:

Actually we can do this one without the need of Calculus, as follows.

`f(x) = sqrt(x^2+2x+1)`

`= sqrt((x+1)^2)`

`= abs( x+1)`

Since we are only concerned with `x in [2, 4]` we now only have to consider a straight line of slope 1 and `y-` intercept 1.

The area between `f(x)` and the `x-`axis `x in [2, 4]` can be separated into:

(i) a rectangle of sides `(4-2)` and `(2+1-0)`
and
(ii) a right triangle of sides `(4-2)` and `(4+1-(2+1-0))`

Area of rectangle = `2xx3 = 6`

Area of right triangle = `1/2xx2xx2 = 2`

Required area `= 6+2 = 8` sq. units