\sqrt{25x^{2}+5x}-5x \cdot \frac{\sqrt{25x^{2}+5x}+5x}{\sqrt{25x^{2}+5x}+5x} = \frac{25x^2+5x - 25x^2}{\sqrt{25x^{2}+5x} +5x} = \dfrac{5x}{\sqrt{25x^{2}+5x} +5x} Your work is fine so far. Next ...

Konstantinos Michailidis May 26, 2016 We have that \displaystyle\sqrt{{{2}{x}^{{2}}+{3}{x}}}-{4}{x}={\left(\sqrt{{{2}{x}^{{2}}+{3}{x}}}-{4}{x}\right)}\cdot\frac{{\sqrt{{{2}{x}^{{2}}+{3}{x}}}+{4}{x}}}{{\sqrt{{{2}{x}^{{2}}+{3}{x}}}+{4}{x}}}=\frac{{{\left(\sqrt{{{2}{x}^{{2}}+{3}{x}}}\right)}^{{2}}-{\left({4}{x}\right)}^{{2}}}}{{{\left(\sqrt{{{2}{x}^{{2}}+{3}{x}}}+{4}{x}\right)}}}=\frac{{{2}{x}^{{2}}+{3}{x}-{16}{x}^{{2}}}}{{{\left(\sqrt{{{2}{x}^{{2}}+{3}{x}}}+{4}{x}\right)}}}=\frac{{{3}{x}-{14}{x}^{{2}}}}{{{x}{\left(\sqrt{{{2}+\frac{{3}}{{x}}}}+{4}\right)}}}={x}^{{2}}\frac{{\frac{{3}}{{x}}-{14}}}{{{x}{\left(\sqrt{{{2}+\frac{{3}}{{x}}}}+{4}\right)}}}={x}\frac{{\frac{{3}}{{x}}-{14}}}{{\sqrt{{{2}+\frac{{3}}{{x}}}}+{4}}} ...

The answer \displaystyle\lim_{{{x}\rightarrow\infty}}\sqrt{{{x}^{{2}}+{7}{x}-{6}}}+{x}=\infty Explanation: show below \displaystyle\lim_{{{x}\rightarrow\infty}}\sqrt{{{x}^{{2}}+{7}{x}-{6}}}+{x} ...

\displaystyle{D}_{{f}}={\left(-\infty,-{3}\right]}\cup{\left[\frac{{1}}{{2}},+\infty\right)} Explanation: \displaystyle{f{{\left({x}\right)}}}=\sqrt{{{2}{x}^{{2}}+{5}{x}-{3}}} \displaystyle{D}_{{f}}={\left\lbrace\forall{x}\right.} ...

bp Jun 4, 2015 Multiplication would involve multiplying the radicals and then simplifying \displaystyle{4}\sqrt{{{18}{x}^{{4}}}}={12}{x}^{{2}}\sqrt{{2}}

Domain: \displaystyle{\left[-{1},{1}\right]} Range: \displaystyle{\left[{0},-{1}\right]} Explanation: The domain of the function will only be influenced by the fact that the square root of ...