A triangle has sides A, B, and C. The angle between sides A and B is $pi/4$ and the angle between sides B and C is $pi/12$ . If side B has a length of 17, what is the area of the triangle?

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Answer 1 · 2018-04-01T10:46:49

I get ${289(3-\sqrt{3})}/12$ , about $30.5$ square units.

First find the third angle, between sides A and C:

$\pi/4+\pi/12+\theta=\pi$

$\theta={2\pi}/3$

$\sin\theta={\sqrt{3}}/2$ for the next step

Now, Use the Law of Sines to find a second side. We choose side A and must know the sine of $\pi/12$ :

$\sin(\pi/12)=\sin(\pi/4-\pi/6)$

$=\sin(\pi/4)\cos(\pi/6)-\cos(\pi/4)\sin(\pi/6)$

$=(\sqrt{2}/2)((\sqrt{3}/2)-(1/2)(\sqrt{2}/2)$

$={\sqrt{6}-\sqrt{2}}/4$

And then the Law of Sines gives:

$A/{({\sqrt{6}-\sqrt{2}}/4)} ={17}/{({\sqrt{3}}/2}$

$A={17(3\sqrt{2}-\sqrt{6})}/6$

Now that we have two sides A and B, we can take half their product time the sine of the included angle:

Area= $(1/2)(17)({17(3\sqrt{2}-\sqrt{6})}/6)({\sqrt{2}}/2)$

$={289(3-\sqrt{3})}/12$ .

A triangle has sides A, B, and C. The angle between sides A and B is pi/4pi/4 and the angle between sides B and C is pi/12pi/12. If side B has a length of 17, what is the area of the triangle?