In the adjoining figure, two circles with centres at A and B, and of radii 5 cm and 3 cm touch each other internally. If the perpendicular bisector of AB meets the bigger circle in P and Q, find the length of PQ.

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Solution

Two circles with centres A and B of respective radii 5 cm and 3 cm touch each other internally.
The perpendicular bisector of AB meets the bigger circle at P and Q.
Join AP.
Let PQ intersect AB at point L.
Here, AP = 5 cm
Then AB = (5 - 3) cm = 2 cm
Since PQ is the perpendicular bisector of AB, we have:
AL= $\frac{A B}{2} = 1 c m$
Now, in right angled Δ PLA, we have:
$A P^{2} = A L^{2} + P L^{2}$
⇒ $P L^{2} = A P^{2} - A L^{2} = 24$
⇒ $P L = 2 \sqrt{6}$
Thus $P Q = 2 \times P L = 4 \sqrt{6}$

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