Question 1

Studying for a test, need some help solving this question

Question 2

Solution

Part A

To find C

$_{\angle\text{ C+}\angle A+\angle B=180^0(Sum\text{ of angles in a triangle\rparen}}$
$\begin{gathered} \angle C+33.84+19.32=180 \\ \angle C+53.16=180 \\ \angle C=180-53.16 \\ \angle C=126.84^0 \\ \end{gathered}$

Part B

To find a

Using sine rule

$\begin{gathered} (sin33.84)/(a)=(sin126.84)/(13.95) \\ cross\text{ multiply} \\ asin126.84=13.95sin33.84 \\ divide\text{ both side by sin126.84} \\ \\ a=9.70672 \end{gathered}$

Part C

To find b

Using sine rule

$\begin{gathered} (sin33.84)/(9.70672)=(sin19.32)/(b) \\ \\ \\ b=5.76683 \end{gathered}$

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