Difference between revisions of "2007 AIME II Problems/Problem 15"

Revision as of 11:48, 21 July 2017

Problem

Four circles $\omega,$ $\omega_{A},$ $\omega_{B},$ and $\omega_{C}$ with the same radius are drawn in the interior of triangle $ABC$ such that $\omega_{A}$ is tangent to sides $AB$ and $AC$ , $\omega_{B}$ to $BC$ and $BA$ , $\omega_{C}$ to $CA$ and $CB$ , and $\omega$ is externally tangent to $\omega_{A},$ $\omega_{B},$ and $\omega_{C}$ . If the sides of triangle $ABC$ are $13,$ $14,$ and $15,$ the radius of $\omega$ can be represented in the form $\frac{m}{n}$ , where $m$ and $n$ are relatively prime positive integers. Find $m+n.$

Solution

Solution 1

First, apply Heron's formula to find that the area is $\sqrt{21 \cdot 8 \cdot 7 \cdot 6} = 84$ . Also the semiperimeter is $21$ . So the inradius is $\frac{A}{s} = \frac{84}{21} = 4$ .

Now consider the incenter I. Let the radius of one of the small circles be $r$ . Let the centers of the three little circles tangent to the sides of $\triangle ABC$ be $X$ , $Y$ , and $Z$ . Let the centre of the circle tangent to those three circles be P. A homothety centered at $I$ takes $XYZ$ to $ABC$ with factor $\frac{4 - r}{4}$ . The same homothety takes $P$ to the circumcentre of $\triangle ABC$ , so $\frac{PX}R = \frac{2r}R = \frac{4 - r}4$ , where $R$ is the circumradius of $\triangle ABC$ . The circumradius of $\triangle ABC$ can be easily computed by $R = \frac a{2\sin A}$ , so doing that reveals $R = \frac{65}8$ . Then $\frac{2r}{\frac{65}{8}} = \frac{(4-r)}4 \Longrightarrow \frac{16r}{65} = \frac{4 - r}4 \Longrightarrow \frac{129r}{260} = 1 \Longrightarrow r = \frac{260}{129}$ , so the answer is $\boxed{389}$ .

Solution 2

Consider a 13-14-15 triangle. $A=84.$ [By Heron's Formula or by 5-12-13 and 9-12-15 right triangles.]

The inradius is $r=\frac{A}{s}=\frac{84}{21}=4$ , where $s$ is the semiperimeter. Scale the triangle with the inradius by a linear scale factor, $u.$

The circumradius is $R=\frac{abc}{4rs}=\frac{13\cdot 14\cdot 15}{4\cdot 4\cdot 21}=\frac{65}{8},$ where $a,$ $b,$ and $c$ are the side-lengths. Scale the triangle with the circumradius by a linear scale factor, $v$ .

Cut and combine the triangles, as shown. Then solve for 4u:

$\frac{65}{8}v=8u$

$v=\frac{64}{65}u$

$u+v=1$

$u+\frac{64}{65}u=1$

$\frac{129}{65}u=1$

$4u=\frac{260}{129}$

The solution is $260+129=\boxed{389}$ .

@@ Line 8: / Line 8: @@
 First, apply [[Heron's formula]] to find that the area is <math>\sqrt{21 \cdot 8 \cdot 7 \cdot 6} = 84</math>. Also the semiperimeter is <math>21</math>. So the [[inradius]] is <math>\frac{A}{s} = \frac{84}{21} = 4</math>.
-Now consider the [[incenter]] I. Let the [[radius]] of one of the small circles be <math>r</math>. Let the centers of the three little circles tangent to the sides of <math>\triangle ABC</math> be <math>X</math>, <math>Y</math>, and <math>Z</math>. Let the centre of the circle tangent to those three circles be P. A [[homothety]] centered at <math>I</math> takes <math>XYZ</math> to <math>ABC</math> with factor <math>\frac{4 - r}{4}</math>. The same homothety takes <math>P</math> to the circumcentre of <math>\triangle ABC</math>, so <math>\frac{PX}R = \frac{2r}R = \frac{4 - r}4</math>, where <math>R</math> is the [[circumradius]] of <math>\triangle ABC</math>. The circumradius of <math>\triangle ABC</math> can be easily computed by <math>R = \frac a{2\sin A}</math>, so doing that reveals <math>R = \frac{65}8</math>. Then <math>\frac{2r}{\frac{65}{8}} = \frac{(4-r)}4 \Longrightarrow \frac{16r}{65} = \frac{4 - r}4 \Longrightarrow \frac{129r}{260} = 1 \Longrightarrow r = \frac{260}{129}</math>, so the answer is <math>389</math>.
+Now consider the [[incenter]] I. Let the [[radius]] of one of the small circles be <math>r</math>. Let the centers of the three little circles tangent to the sides of <math>\triangle ABC</math> be <math>X</math>, <math>Y</math>, and <math>Z</math>. Let the centre of the circle tangent to those three circles be P. A [[homothety]] centered at <math>I</math> takes <math>XYZ</math> to <math>ABC</math> with factor <math>\frac{4 - r}{4}</math>. The same homothety takes <math>P</math> to the circumcentre of <math>\triangle ABC</math>, so <math>\frac{PX}R = \frac{2r}R = \frac{4 - r}4</math>, where <math>R</math> is the [[circumradius]] of <math>\triangle ABC</math>. The circumradius of <math>\triangle ABC</math> can be easily computed by <math>R = \frac a{2\sin A}</math>, so doing that reveals <math>R = \frac{65}8</math>. Then <math>\frac{2r}{\frac{65}{8}} = \frac{(4-r)}4 \Longrightarrow \frac{16r}{65} = \frac{4 - r}4 \Longrightarrow \frac{129r}{260} = 1 \Longrightarrow r = \frac{260}{129}</math>, so the answer is <math>\boxed{389}</math>.
 === Solution 2 ===
@@ Line 32: / Line 32: @@
 :<math>4u=\frac{260}{129}</math>
-The solution is <math>260+129=389</math>.
+The solution is <math>260+129=\boxed{389}</math>.
 == See also ==

2007 AIME II (Problems • Answer Key • Resources)
Preceded by Problem 14	Followed by Last question
1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15
All AIME Problems and Solutions

Page

Toolbox

Search