Difference between revisions of "2003 AIME II Problems/Problem 7"

Revision as of 16:26, 21 January 2008

Problem

Find the area of rhombus $ABCD$ given that the radii of the circles circumscribed around triangles $ABD$ and $ACD$ are $12.5$ and $25$ , respectively.

Solution

The diaganols of the rhombus perpendicularly bisect each other. Call half of diagonal BD a and half of diagonal AC b. The length of the four sides of the rhombus is $\sqrt{a^2+b^2}$ . The area of any triangle can be expressed as the abc/4R, where a,b, and c are the sides and R is the circumradius. Thus, the area of triangle ABD is $ab=2a(a^2+b^2)/(4\cdot12.5)$ . Also, the area of triangle ABC is $ab=2b(a^2+b^2)/(4\cdot25)$ . Setting these two expressions equal to each other and simplifying gives b=2a. Substitution yields a=10 and b=20, so the area of the rhombus is $20\cdot40/2=400$ .

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 == Solution ==
-{{solution}}
+The diaganols of the rhombus perpendicularly bisect each other. Call half of diagonal BD a and half of diagonal AC b. The length of the four sides of the rhombus is <math>\sqrt{a^2+b^2}</math>. The area of any triangle can be expressed as the abc/4R, where a,b, and c are the sides and R is the circumradius. Thus, the area of triangle ABD is <math>ab=2a(a^2+b^2)/(4\cdot12.5)</math>. Also, the area of triangle ABC is <math>ab=2b(a^2+b^2)/(4\cdot25)</math>. Setting these two expressions equal to each other and simplifying gives b=2a. Substitution yields a=10 and b=20, so the area of the rhombus is <math>20\cdot40/2=400</math>.
 == See also ==
 {{AIME box|year=2003|n=II|num-b=6|num-a=8}}

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Difference between revisions of "2003 AIME II Problems/Problem 7"

Revision as of 16:26, 21 January 2008

Problem

Solution

See also