I came across this chain of inequalities in notes I am reading.
$|\sum_{1 \leq n \leq N}e^{2 \pi i \alpha n}| \leq \frac{|1 - e^{2 \pi i \alpha N}|}{|1 - e^{2 \pi i \alpha}|} \leq \frac{\sin(\pi \alpha N)}{\sin(\pi \alpha)} \leq \frac{1}{||\alpha||}$.
Here $\alpha$ is a nonzero real number and $||\alpha ||$ is the distance from $\alpha$ to the nearest integer.
The first inequality I was able to verify since it follows from the formula for the sum of a finite geometric series.
I am not sure how to verify the 2nd and 3rd inequalities. I tried exploiting that the numerator and denominator of the 2nd term is a difference of two squares and using the relation $e^{i\theta} = \cos \theta + i\sin \theta$ but I didn't have success. No idea why the 3rd one is true either.
A similar question which has been answered considers the final inequality, but I did not understand a few steps in the solution. I post it here for reference:
$\left|{\sin(\pi \alpha N)}/{\sin(\pi \alpha)}\right| \leq {1}/{2 \| \alpha \|}$