2012 AMC 10B Problem 14
Below is the professionally curated solution for Problem 14 of the 2012 AMC 10B, from LIVE by Po-Shen Loh. You can also try the full timed exam, view all 2012 AMC 10B solutions, or check the answer key.
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Difficulty rating: 1670
14.
Two equilateral triangles are contained in a square whose side length is The bases of these triangles are opposite sides of the square, and their intersection is a rhombus. What is the area of the rhombus?
Solution:
This rhombus is created by placing two congruent equilateral triangles. Let the side length of it be Then, the area of one of them is making the total area
The side length of the larger equilateral triangle is The height of it is since the height is equal to
Half of the square is so the height of the smaller triangle is Thus, the ratio between and is
As such,
Therefore, the combined area is
Thus, the correct answer is D .
Problem 14 in Other Years
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