Difference between revisions of "1988 IMO Problems/Problem 1"

Revision as of 20:00, 9 May 2011

Problem

Consider 2 concentric circles with radii $R$ and $r$ ( $R>r$ ) with center $O$ . Fix $P$ on the small circle and consider the variable chord $AP$ of the small circle. Points $B$ and $C$ lie on the large circle; $B,P,C$ are collinear and $BC$ is perpendicular to $AP$ .

i.) For which values of $\angle OPA$ is the sum $BC^2+CA^2+AB^2$ extremal?

ii.) What are the possible positions of the midpoints $U$ of $AB$ and $V$ of $AC$ as $A$ varies?

Solution

i.)

We claim that the value $BC^2+CA^2+AB^2$ stays constant as $\angle OPA$ varies, and thus achieves its maximum at all value of $\angle OPA$ . We have from the Pythagorean Theorem that $CA^2=AP^2+PC^2$ and $AB^2=AP^2+PB^2$ and so our expression becomes

$BC^2+PB^2+PC^2+2AP^2=2BC^2+2AP^2-2PB\cdot PC$

Since $PB\cdot PC$ is the power of the point $P$ , it stays constant as $A$ varies. Thus, we are left to prove that the value $BC^2+AP^2$ stays constant as $\angle OPA$ varies. Let $G$ be the midpoint of $AP$ and let $H$ be the midpoint of $BC$ . Since $OG$ is perpendicular to $AP$ , we find that $PG=r\cos OPA$ . Similarly, we find that $OH=r\sin OPC=r\cos OPA$ . Thus, by the Pythagorean Theorem, we have

$BC^2=4(R^2-r^2\cos^2 OPA)$

$AP^2=4r^2\cos^2OPA$

Now it is obvious that $BC^2+AP^2=4R^2$ is constant for all values of $\angle OPA$ .

ii.)

We claim that all points $U,V$ lie on a circle centered at the midpoint of $OP$ , $M$ with radius $\frac{R}{2}$ . Let $T$ be the midpoint of $UV$ . Since $H$ is the midpoint of $BC$ , it is clear that the projection of $T$ onto $BC$ is the midpoint of $H$ and $P$ (the projection of $A$ onto $BC$ ). Thus, we have that $MT$ is perpendicular to $UV$ and thus the triangle $MUV$ is iscoceles. We have $UT=\frac{1}{2}UV=\frac{1}{4}BC$ and $MT=\frac{1}{2}PG=\frac{1}{4}AP$ . Thus, from the Pythagorean Theorem we have $MV^2=MU^2=\frac{1}{16}\left(BC^2+AP^2\right)$ . Since we have shown already that $BC^2+AP^2=4R^2$ is constant, we have that $MV=MU=\frac{R}{2}$ and the locus of points $U,V$ is indeed a circle of radius $\frac{R}{2}$ with center $M$ .

@@ Line 1: / Line 1: @@
+==Problem==
 Consider 2 concentric circles with radii <math>R</math> and <math>r</math> (<math>R>r</math>) with center <math>O</math>.  Fix <math>P</math> on the small circle and consider the variable chord <math>AP</math> of the small circle. Points <math>B</math> and <math>C</math> lie on the large circle; <math>B,P,C</math> are collinear and <math>BC</math> is perpendicular to <math>AP</math>.
@@ Line 6: / Line 7: @@
-'''Solution'''
+==Solution==
 '''i.)'''
@@ Line 12: / Line 13: @@
 We claim that the value <math>BC^2+CA^2+AB^2</math> stays constant as <math>\angle OPA</math> varies, and thus achieves its maximum at all value of <math>\angle OPA</math>.  We have from the Pythagorean Theorem that <math>CA^2=AP^2+PC^2</math> and <math>AB^2=AP^2+PB^2</math> and so our expression becomes
-<math>BC^2+PB^2+PC^2+2AP^2=2BC^2+2AP^2-2PB\cdotPC</math>
+<math>BC^2+PB^2+PC^2+2AP^2=2BC^2+2AP^2-2PB\cdot PC</math>
 Since <math>PB\cdot PC</math> is the power of the point <math>P</math>, it stays constant as <math>A</math> varies.  Thus, we are left to prove that the value <math>BC^2+AP^2</math> stays constant as <math>\angle OPA</math> varies.  Let <math>G</math> be the midpoint of <math>AP</math> and let <math>H</math> be the midpoint of <math>BC</math>.  Since <math>OG</math> is perpendicular to <math>AP</math>, we find that <math>PG=r\cos OPA</math>.  Similarly, we find that <math>OH=r\sin OPC=r\cos OPA</math>.  Thus, by the Pythagorean Theorem, we have

Page

Toolbox

Search

Difference between revisions of "1988 IMO Problems/Problem 1"

Revision as of 20:00, 9 May 2011

Problem

Solution