Two rhombuses have sides with lengths of #11 #. If one rhombus has a corner with an angle of #pi/12 # and the other has a corner with an angle of #(5pi)/8 #, what is the difference between the areas of the rhombuses?

1 Answer
sankarankalyanam
Dec 9, 2017

Difference in areas between two rhombuses is 80.4727

Explanation:

Area of rhombus #= (1/2) * d_1 * d_2 or a * h#
Where #d_1 , d_2 # are the diagonals, a is the side and h is the altitude.

In this case we will use the formula Area = a * h.
enter image source here
Rhombus 1
#h = a sin theta = 11 * sin ((5pi)/8) = 10.1627#
Area = a * h = 11 * 10.1627 = 111.7897#

Rhombus 2
#h = a sin theta = 11 * sin ((pi)/12) = 2.847#
Area = a * h = 11 * 2.847 = 31.317#

Hence the difference in areas is #111.7897 - 31.317 = 80.4727#

Related questions
See all questions in Quadrilaterals
Impact of this question
839 views around the world
You can reuse this answer
Creative Commons License