- #1
bjgawp
- 84
- 0
I have a problem which involves finding the moment of inertia which involves evaluating: \int_0^1 x^2 \left(\frac{\pi}{2} - \sin^{-1} x\right)dx
Now eventually, we end up having to evaluate the integral through integration by parts: \int_0^1 \frac{x^3}{\sqrt{1-x^2}} \ dx
Now this is really an improper integral with the problem at x= 1 so we really have: \lim_{t \to 1^-} \int_0^t \frac{x^3}{\sqrt{1-x^2}} dx
Now the problem that has occurred to me is that I'm getting two different results through two different methods.
Method 1: A u-substitution
Let: u = \sqrt{1-x^2} \ \Rightarrow \ - u du = x dx
x = 0 \ \Rightarrow \ u = 1, and x \to 1 \ \Rightarrow \ u \to 0
So we have the new integral: \lim_{s \to 0^+} \int_s^1 \frac{1-u^2}{u} \ du = \lim_{s \to 0^+} \left(\ln u - \frac{u^2}{2}\right) \Bigg|_s^1
which diverges.
Method 2: A trig-sub
Let: x = \sin \theta \ \Rightarrow \ dx = \cos \theta d \theta
So, the integral becomes: \lim_{s \to \frac{\pi}{2}} \int_0^s \sin^3 \theta d \theta
but this is no longer improper and we do get a result.
So what's going on here? If we do the trig-sub, we get the correct answer to the original inertia question but if we look at the function f(x) = \frac{x^3}{\sqrt{1-x^2}}, it should diverge!
Now eventually, we end up having to evaluate the integral through integration by parts: \int_0^1 \frac{x^3}{\sqrt{1-x^2}} \ dx
Now this is really an improper integral with the problem at x= 1 so we really have: \lim_{t \to 1^-} \int_0^t \frac{x^3}{\sqrt{1-x^2}} dx
Now the problem that has occurred to me is that I'm getting two different results through two different methods.
Method 1: A u-substitution
Let: u = \sqrt{1-x^2} \ \Rightarrow \ - u du = x dx
x = 0 \ \Rightarrow \ u = 1, and x \to 1 \ \Rightarrow \ u \to 0
So we have the new integral: \lim_{s \to 0^+} \int_s^1 \frac{1-u^2}{u} \ du = \lim_{s \to 0^+} \left(\ln u - \frac{u^2}{2}\right) \Bigg|_s^1
which diverges.
Method 2: A trig-sub
Let: x = \sin \theta \ \Rightarrow \ dx = \cos \theta d \theta
So, the integral becomes: \lim_{s \to \frac{\pi}{2}} \int_0^s \sin^3 \theta d \theta
but this is no longer improper and we do get a result.
So what's going on here? If we do the trig-sub, we get the correct answer to the original inertia question but if we look at the function f(x) = \frac{x^3}{\sqrt{1-x^2}}, it should diverge!