Find the Value of \(8\tan x – \sqrt{5}\sec y\)

Question:

If

\[ \sin x = \frac{3}{5}, \quad \tan y = \frac{1}{2} \]

and

\[ \frac{\pi}{2} < x < \pi, \quad \pi < y < \frac{3\pi}{2} \]

find the value of:

\[ 8\tan x – \sqrt{5}\sec y \]

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Solution

Given,

\[ \sin x = \frac{3}{5} \]

Since

\[ \frac{\pi}{2} < x < \pi \]

\(x\) lies in Quadrant II, where sine is positive and cosine is negative.

Using:

\[ \sin x = \frac{\text{Perpendicular}}{\text{Hypotenuse}} \]

Take,

\[ \text{Perpendicular} = 3, \quad \text{Hypotenuse} = 5 \]

Using Pythagoras theorem:

\[ \text{Base} = \sqrt{5^2 – 3^2} \]

\[ = \sqrt{25 – 9} = \sqrt{16} = 4 \]

Since \(x\) is in Quadrant II,

\[ \cos x = -\frac{4}{5} \]

Therefore,

\[ \tan x = \frac{\sin x}{\cos x} = \frac{\frac{3}{5}}{-\frac{4}{5}} = -\frac{3}{4} \]

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Now,

\[ \tan y = \frac{1}{2} \]

Since

\[ \pi < y < \frac{3\pi}{2} \]

\(y\) lies in Quadrant III, where both sine and cosine are negative, but tangent is positive.

Take,

\[ \text{Perpendicular} = 1, \quad \text{Base} = 2 \]

Then,

\[ \text{Hypotenuse} = \sqrt{1^2 + 2^2} = \sqrt{5} \]

In Quadrant III,

\[ \cos y = -\frac{2}{\sqrt{5}} \]

Hence,

\[ \sec y = \frac{1}{\cos y} = -\frac{\sqrt{5}}{2} \]

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Now evaluate:

\[ 8\tan x – \sqrt{5}\sec y \]

Substituting the values:

\[ = 8\left(-\frac{3}{4}\right) – \sqrt{5}\left(-\frac{\sqrt{5}}{2}\right) \]

\[ = -6 + \frac{5}{2} \]

\[ = \frac{-12 + 5}{2} \]

\[ = -\frac{7}{2} \]

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Final Answer

\[ \boxed{-\frac{7}{2}} \]