A triangle has sides A, B, and C. The angle between sides A and B is $\frac{5 π}{6}$ $(5pi)/6$ and the angle between sides B and C is $\frac{π}{12}$ $pi/12$ . If side B has a length of 21, what is the area of the triangle?

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A triangle has sides A, B, and C. The angle between sides A and B is $\frac{5 π}{6}$ $(5pi)/6$ and the angle between sides B and C is $\frac{π}{12}$ $pi/12$ . If side B has a length of 21, what is the area of the triangle?

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Answer 1 · 2016-03-06T03:07:57

$∠ B = π - (\frac{5 π}{6} + \frac{π}{12}) = \frac{π}{12}, \frac{a}{sin (\frac{π}{12})} = \frac{21}{sin (\frac{π}{12})} \to a = \frac{21}{sin (\frac{π}{12})} \cdot sin (\frac{π}{12}) = 21$ $angleB =pi-((5pi)/6 +pi/12) = pi/12, a/sin(pi/12) = 21/sin(pi/12) -> a = 21/sin(pi/12) * sin(pi/12) = 21$
$A r e a = \frac{1}{2} a b sin C = \frac{1}{2} (21) (21) sin (\frac{5 π}{6}) = 110.25 u n i t^{2}$ $Area = 1/2 ab sin C = 1/2 (21)(21)sin( (5pi)/6) = 110.25 unit^2$

Explanation:

First, add the two given angles and subtract from $π$ $pi$ to get the third angle. Then find one of the other two sides. In this case I found side a by using the sine rule. So to find the area of the triangle I use side a and b and angle C and substitute in to the angle formula then calculate.

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A triangle has sides A, B, and C. The angle between sides A and B is $\frac{5 π}{6}$ $(5pi)/6$ and the angle between sides B and C is $\frac{π}{12}$ $pi/12$ . If side B has a length of 21, what is the area of the triangle?

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A triangle has sides A, B, and C. The angle between sides A and B is 5π6(5pi)/6 and the angle between sides B and C is π12pi/12. If side B has a length of 21, what is the area of the triangle?

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A triangle has sides A, B, and C. The angle between sides A and B is $\frac{5 π}{6}$ $(5pi)/6$ and the angle between sides B and C is $\frac{π}{12}$ $pi/12$ . If side B has a length of 21, what is the area of the triangle?