Wednesday, September 26, 2012

Problem 806: Triangle, Points on sides or Extension, Circle, Circumcenters, Similar triangles

Geometry Problem
Level: Mathematics Education, High School, Honors Geometry, College.

Click the figure below to see the complete problem 806.

Online Geometry Problem 806: Triangle, Points on sides or Extension, Circle, Circumcenters, Similar triangles.

Posted by Antonio Gutierrez at 1:00 PM
Labels: , ,

3 comments:

  1. Jacob HA (EMK2000)September 26, 2012 at 5:21 PM

    Let the intersection of the three circles be P.

    Since
    A'B' bisects arc DP, A'C' bisects arc PF,
    thus
    ∠B'A'P = 1/2 ∠DA'P
    ∠C'A'P = 1/2 ∠FA'P

    So
    ∠B'A'C' = 1/2 ∠DA'F = ∠BAC

    Similarly,
    ∠B'C'A' = ∠BCA
    ∠A'B'C' = ∠ABC

    Hence,
    ∆ABC ~ ∆A'B'C'

    ReplyDelete
    Replies
    1. Peter TranSeptember 26, 2012 at 11:23 PM

      To Jacob
      your statement "Let the intersection of the three circles be P" may need some explanation.

      Delete
    2. Jacob HA (EMK2000)September 27, 2012 at 8:34 AM

      Let P be the intersection of circle A' and circle C'.

      A,F,P,D concyclic => ∠DPF = 180 - ∠A
      C,F,P,E concyclic => ∠EPF = 180 - ∠C

      ∠DPE
      = 360 - (180 - ∠A) - (180 - ∠C)
      = ∠A + ∠C
      = 180 - ∠B

      => B,D,P,E concyclic
      => Circle C' passes through P
      => Three circles concurrent at P

      Special thanks to W Fung for the proof.

      Delete

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