Question

The value of $\sqrt{10+\sqrt{25+\sqrt{108+\sqrt{154+\sqrt{225}}}}}$ $+\left(\sqrt{\frac{225}{729}}-\sqrt{\frac{25}{144}}\right)÷\sqrt{\frac{16}{81}}$

• A. $\frac{69}{16}$
• B. $\frac{31}{3}$
• C. $\frac{54}{7}$
• D. $\frac{39}{16}$

Answer 1

Answer: (C)

$\sqrt{10+\sqrt{25+\sqrt{108+\sqrt{154+\sqrt{225}}}}}+\left(\sqrt{\frac{225}{729}}-\sqrt{\frac{25}{144}}\right)÷\sqrt{\frac{16}{81}}$
$=(\sqrt{10+\sqrt{25+\sqrt{108+\sqrt{154+15}}}})+\left(\frac{15}{27}-\frac{5}{12}\right)÷\left(\frac{4}{9}\right)$
$\left[\mathrm{As},\sqrt{225}=\sqrt{3^2\times 5^2}\sqrt{729}=\sqrt{3^6}=3^3=27\right]$
$=(\sqrt{10+\sqrt{25+\sqrt{108+13}}})+\left(\frac{20-15}{36}\right)\times \frac{9}{4}$
$\left[\text{ As, }\sqrt{169}=\sqrt{13^2}=13\right]$
$=\sqrt{10+\sqrt{25+11}}+\frac{5}{16}\left[\text{ As, }\sqrt{121}=\sqrt{11^2}=11\right]$
$=\sqrt{10+\sqrt{36}}+\frac{5}{16}$
$=\sqrt{10+6}+\frac{5}{16}$
$=4+\frac{5}{16}$
$=\frac{69}{16}$