Question

How do you evaluate the integral of `(x + (15/(sin^2(x))))` from pi/6 to pi/2?

Answer 1

`pi^2/9+15sqrt3approx27.077`

Explanation:

We have

`int_(pi/6)^(pi/2)(x+15/sin^2(x))dx`

Which can be written as

`=int_(pi/6)^(pi/2)(x+15csc^2(x))dx`

Both of these terms can be evaluated separately (for now, indefinitely, we will evaluate the integral directly following this):

`intxdx=x^2/2+C`

`int15csc^2(x)dx=15intcsc^2(x)dx=-15cot(x)+C`

So, we want to evaluate

`=[x^2/2-15cot(x)]_(pi/6)^(pi/2)`

`=((pi/2)^2/2-15cot(pi/2))-((pi/6)^2/2-15cot(pi/6))`

`=(pi^2/8-15(0))-(pi^2/72-15(sqrt3))`

`=pi^2/8-pi^2/72+15sqrt3`

`=pi^2/9+15sqrt3approx27.077`