Checkpoint 3: Combined Topics

(a) $C = 180 - 40 - 60 = 80°$.

(b) $\frac{a}{\sin 40°} = \frac{12}{\sin 80°}$. $a = \frac{12 \times 0.643}{0.985} = 7.8$ cm. $\frac{b}{\sin 60°} = \frac{12}{\sin 80°}$. $b = \frac{12 \times 0.866}{0.985} = 10.5$ cm.

(c) Area = $\frac{1}{2}(7.8)(10.5)\sin 80° = 40.95 \times 0.985 = 40.3$ cm squared. Or $\frac{1}{2}(12)(10.5)\sin 40° = 63 \times 0.643 = 40.5$ cm squared.

(d) $s = (7.8 + 10.5 + 12)/2 = 15.15$. $A = \sqrt{15.15(7.35)(4.65)(3.15)} = \sqrt{1634} \approx 40.4$ cm squared. Verified.

(e) $CD = \frac{2 \times \text{Area}}{AB} = \frac{2 \times 40.3}{12} = 6.7$ cm.

Marking guidance: 1 mark each for (a), (b), (c), (d), (e).

(a) $AC^2 = 20^2 + 25^2 - 2(20)(25)\cos 70° = 400 + 625 - 1000 \times 0.342 = 1025 - 342 = 683$. $AC = \sqrt{683} \approx 26.1$ km.

(b) $\frac{\sin A}{25} = \frac{\sin 70°}{26.1}$. $\sin A = \frac{25 \times 0.940}{26.1} = 0.900$. $A = \sin^{-1}(0.900) \approx 64.2°$.

(c) Area = $\frac{1}{2}(20)(25)\sin 70° = 250 \times 0.940 = 235$ km squared.

(d) D is the circumcentre. First find circumradius R: $R = \frac{abc}{4 \times \text{Area}} = \frac{20 \times 25 \times 26.1}{4 \times 235} = \frac{13050}{940} = 13.9$ km. D is at distance 13.9 km from each town. To construct: find perpendicular bisectors of AB and BC; their intersection is D.

Marking guidance: 1 mark for (a), 1 mark for (b), 1 mark for (c), 2 marks for (d).