1987 AIME Problems/Problem 9: Difference between revisions

Revision as of 06:52, 4 March 2021

Problem

Triangle $ABC$ has right angle at $B$ , and contains a point $P$ for which $PA = 10$ , $PB = 6$ , and $\angle APB = \angle BPC = \angle CPA$ . Find $PC$ .

Solution

Let $PC = x$ . Since $\angle APB = \angle BPC = \angle CPA$ , each of them is equal to $120^\circ$ . By the Law of Cosines applied to triangles $\triangle APB$ , $\triangle BPC$ and $\triangle CPA$ at their respective angles $P$ , remembering that $\cos 120^\circ = -\frac12$ , we have

$AB^2 = 36 + 100 + 60 = 196, BC^2 = 36 + x^2 + 6x, CA^2 = 100 + x^2 + 10x$

Then by the Pythagorean Theorem, $AB^2 + BC^2 = CA^2$ , so

$x^2 + 10x + 100 = x^2 + 6x + 36 + 196$

and

$4x = 132 \Longrightarrow x = \boxed{033}.$

Note

This is the Fermat point of the triangle.

@@ Line 16: / Line 16: @@
 <cmath>4x = 132 \Longrightarrow x = \boxed{033}.</cmath>
 === Note ===
-This is the Fermat point of the triangle.
+This is the [[Fermat point]] of the triangle.
 == See also ==

1987 AIME (Problems • Answer Key • Resources)
Preceded by Problem 8	Followed by Problem 10
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1987 AIME Problems/Problem 9: Difference between revisions

Revision as of 06:52, 4 March 2021

Contents

Problem

Solution

Note

See also