A triangle has two corners with angles of # pi / 4 # and # (5 pi )/ 8 #. If one side of the triangle has a length of #7 #, what is the largest possible area of the triangle?

1 Answer
SCooke
Jan 20, 2018

#A = 41.87#

Explanation:

Given two angles, the third one in a triangle is fixed. In this case it is #pi/8#. The shortest side length will be opposite the smallest angle, which is this one in this case. Therefore, we know that the side of length 7 is opposite the #pi/8# corner.

We now have three angles and a side, and can calculate the other sides using the Law of Sines, and then calculate the height for the area.
https://www.mathsisfun.com/algebra/trig-solving-asa-triangles.html

#a/(sin(2pi/8)) = c/sin C = 7/(sin(pi/8))#
#b/(sin(5pi/8)) = c/sin C = 7/(sin(pi/8))#

#a xx (sin(pi/8)) = 7 xx (sin(2pi/8))#

#b xx (sin(pi/8)) = 7 xx (sin(5pi/8))#

#a xx 0.383 = 7 xx 0.707# ; #a = 12.92#
#b xx 0.383 = 7 xx 0.924# ; #b = 16.89#

We now use Heron's formula for the area:
#A = sqrt(s(s-a)(s-b)(s-c))#

where # s= (a+b+c)/2# or #"perimeter"/2#.
http://mste.illinois.edu/dildine/heron/triarea.html
https://www.mathopenref.com/heronsformula.html

# s= (7 + 12.92 + 16.89)/2 = 18.41#
#A = sqrt(18.41(18.41 - 7)(18.41 - 12.92)(18.41 - 16.89))#

#A = sqrt(18.41(11.41)(5.49)(1.52)#
#A = sqrt(1752.9) = 41.87#

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