Circumcenter lies on line parallel to BC

by math_pi_rate, Aug 20, 2018, 12:14 PM

Here is a problem I made a few days ago (which I'll later be using as a lemma).
LEMMA Let $ABC$ be an acute-angled triangle with circumcircle $\omega$. Let $D$ be the midpoint of arc $\overarc{BC}$ (not containing $A$), and let $K$ be the antipode of $D$ in $\omega$. Let $AK \cap CD = T$. Finally let $O$ be the circumcenter of $\triangle ABT$. Then $OD$ is tangent to $\omega$.

Solution 1 (My solution, along with some motivation)

Solution 2 (Solution by TheDarkPrince)

Anyway, here's a problem that uses this lemma.
Problem (Polish MO 2018 P5): Point $O$ is a center of circumcircle of acute triangle $ABC$, bisector of angle $BAC$ cuts side $BC$ in point $D$. Let $M$ be a point such that, $MC \perp BC$ and $MA \perp AD$. Lines $BM$ and $OA$ intersect in point $P$. Show that circle of center in point $P$ passing through a point $A$ is tangent to line $BC$.

Solution
This post has been edited 6 times. Last edited by math_pi_rate, Sep 27, 2018, 12:58 PM
geometry
Circumcenter
external angle bisector
arc midpoint

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Circumcenter
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IMOSL 2002 G7
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