Archimedes found found an interesting property of arbelos, that is the area of the circle whose diameter is AH and has common tangent line to the two smaller semicircles at point A is equal to the shaded area. Prove it?

enter image source here

1 Answer
CW
Nov 1, 2016

see explanation.

Explanation:

enter image source here

Let the three respective semicircles be X,Y, and ZX,Y,andZ, as shown in the diagram.
Let the areas of X,Y,ZX,Y,Z be A_X,A_Y, A_ZAX,AY,AZ, respectively.
Let the shaded area be A_SAS
=> A_S=A_X-(A_Y+A_Z)AS=AX(AY+AZ)
A_X=1/2(piD^2)/4AX=12πD24, where DD=diameter=r+1-r=1=r+1r=1
=> A_X=1/2*pi/4=pi/8AX=12π4=π8
A_Y=1/2*(pir^2)/4=(pir^2)/8AY=12πr24=πr28
A_Z=1/2*(pi(1-r)^2)/4=(pi(1-2r-r^2))/8AZ=12π(1r)24=π(12rr2)8
=> A_S=pi/8-((pir^2)/8 +(pi/8(1-2r+r^2)))AS=π8(πr28+(π8(12r+r2)))
=> A_S= pi/8(1-r^2-1+2r-r^2)AS=π8(1r21+2rr2)
=> A_S=pi/4(r-r^2)AS=π4(rr2)

Now let the circle centered at oo be WW, AHAH is its diameter.
Let o' be the center of X
o'H= radius ofX=1/2
a=1-r-1/2=1/2-r
AH^2=o'H^2-a^2=(1/2)^2-(1/2-r)^2
AH^2=(1/4-1/4+r-r^2)=(r-r^2)

Another way to find AH^2 is :
AH^2=BA*AC=r*(1-r)=(r-r^2)

Now let the area of W be A_W
=> A_W=pi(AH)^2/4=pi/4(r-r^2)

Hence, A_S=A_W=pi/4(r-r^2) (proved)

Related questions
See all questions in Perimeter and Area of Triangle
Impact of this question
4260 views around the world
You can reuse this answer
Creative Commons License