First the domain of the inequation is (-\infty,-4/3]\cup[4/3,+\infty). Next, you should know that, when A\ge 0, \sqrt A>B\iff A >B^2\quad\text{or}\quad B<0. In the present case, one gets ...

Thanks for A2A, but you should be able to do such standard things yourself.  As David Joyce showed \displaystyle\left(\sqrt{x+\sqrt{1+x^2}}\right)'                  = \displaystyle \frac1{2\sqrt{x+\sqrt{1+x^2}}} \left(x+\sqrt{1+x^2}\right)' ...

You should be trying to minimise \frac{\sqrt{4+x^2}}{3}+\frac{6-x}{5} because the time taken equals distance divided by speed. So you just forgot to divide each distance by the speed.

Since f'(x)=x-\sin(x)+x[1-\cos(x)]>0 holds for all x\in(0,\pi/2), the function f is strictly increasing on [0,\pi/2]. This implies that it attains its minimum at x=0 and its maximum at x=\pi/2 ...

Rationality and multiplicity of roots are two separate questions. The discriminant tells you whether there are repeated roots. It offers no opinion on whether those repeated roots are rational. Of ...

Note that : g(x) = \sqrt{x^2(8-x^2)} = |x|\sqrt{8-x^2} = \begin{cases} x\sqrt{8-x^2} \; \; \;, \; x\geq 0 \\ -x\sqrt{8-x^2}, \; x<0 \end{cases} Whereas f(x) = x\sqrt{8-x^2} for all x \in \mathbb R ...