Question 4
Given 15 cot A = 8, find sin A and sec A.

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Solution

Let $Δ$ ABC be a right-angled triangle, right-angled at B.
We know that cot A = $\frac{A B}{B C}$ = $\frac{8}{15}$
Let AB be 8k and BC will be 15k where k is a positive real number.

By Pythagoras theorem; we get,
$A C^{2} = A B^{2} + B C^{2}$
$A C^{2} = (8 k)^{2} + (15 k)^{2}$
$A C^{2} = 64 k^{2} + 225 k^{2}$
$A C^{2} = 289 k^{2}$
AC = 17k
sin A = $\frac{B C}{A C}$ = $\frac{15 k}{17 k}$ = $\frac{15}{17}$
sec A = $\frac{A C}{A B}$ = $\frac{17 k}{8 k}$ = $\frac{17}{8}$

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