The distance between the centres of equal circles each of radius 3 cm is 10 cm. The length of a transverse tangent AB is

4 cm

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6 cm

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8 cm

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10 cm

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Solution

The correct option is C
8 cm

∠OAC = ∠CBP = $90^{\circ}$

∠OCA = ∠PCB (Vertically opposite angle)

Triangle OAC is similar to PBC

$\frac{O A}{P B}$ = $\frac{O C}{P C}$

$\frac{3}{3}$ = $\frac{O C}{P C}$

OC = PC

But PO = 10 cm

Therefore OC = PC = 5cm

${A C}^{2}$ = ${O C}^{2}$ – ${O A}^{2}$

${A C}^{2}$ = $5^{2}$ – $3^{2}$

AC = 4 cm

Similarly BC = 4 cm

Therefore AB = 8 cm

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