A triangle has vertices A, B, and C. Vertex A has an angle of pi/2 , vertex B has an angle of ( 3pi)/8 , and the triangle's area is 16 . What is the area of the triangle's incircle?

1 Answer
Ananda Dasgupta
Jul 17, 2016

6.681 (to four significant figures)

Explanation:

This is a right angled triangle with a as the hypotenuse. The other two sides obey
b = a sin/_ B
c = a cos/_B

The area A of the triangle is given by
A = 1/2 bc = 1/2 a^2 sin/_B cos/_B

Alternatively, by adding up the areas of the three triangles formed by joining the vertices to the in-center (each of which have a common height - namely, the radius r of the incircle), we get

A = 1/2 (a+b+c)r

Equating the two expressions for the area, we get

r = {bc}/(a+b+c)= a {sin/_B cos/_B }/{1+sin/_B + cos/_B}

So that the area of the in-circle is

pi r^2 = pi a^2 {sin^2/_B cos^2/_B }/(1+sin/_B + cos/_B)^2 = 2 pi A {sin/_B cos/_B }/(1+sin/_B + cos/_B)^2 = pi A {sin(2/_B ) }/(1+sin/_B + cos/_B)^2
Substituting the numerical values, we get an area of 6.681 units

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