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Re: In the figure above, each of the four large circles is [#permalink]
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Great Explanation

Now look better, you forgot the tag
Code:
[m][/m]


:wink:
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Re: In the figure above, each of the four large circles is [#permalink]
1
Step 1: Understanding the question
Let A, B and O be the centers of the circles and radius of the smaller circle be x
As the diagonals of the square intersect at right angle, triangle AOB is a right angled at O

AB = 4+4 = 8
AO = (x+4)
BO = (x+4)

Applying Pythagoras
\(AB^2 = AO^2 + BO^2\)
64 = 2* \((x+4)^2\)
32 = \((x+4)^2\)
x + 4 = 4\(\sqrt{2 }\)
x = 4\(\sqrt{2}\) - 4

Hence diameter of the smaller circle = 8\(\sqrt{2}\) - 8
C is correct
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GRE In the figure above, each of the four large circles.png
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Re: In the figure above, each of the four large circles is [#permalink]
Simple way is just joining all the centres of the large circle to form a square of side 8 units.
Joining the diagonal of the square that cuts the smaller circle at its diameter.
so diagonal of a square = sqrroot 2 * a = 8 * sqr root 2

Now diameter of smaller circle = diagonal - (radius of 2 bigger circle) = 8* sqr root 2 - (4+4) = 8 * sqr root 2 - 8
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Re: In the figure above, each of the four large circles is [#permalink]
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