Question 10
In a figure, the common tangents AB and CD to two circles with centres O and O’ intersect at E. Prove that the points O, E and O’ are collinear.

Open in App

Solution

Joint AO, OC, O’D and O’B
In $Δ$ EO’D and $Δ$ EO’B
O’D = O’B [radius]
O’E = O’E [ common side]
ED = EB
[Since, tangents drawn from an external point to the circle are equal In length]

$Δ E O^{'} D ≅ Δ E O^{'} B$ [by SSS congruence rule]
$∠ O^{'} E D = ∠ O^{'} E B$
O'E is the angle bisector of $∠$ DEB
Similarly, OE is the angle bisector of $∠$ AEC.
Now, in quadrilateral DEBO',
$∠ O^{'} D E = ∠ O^{'} B E = 90^{\circ}$ ...(i)
Since, AB is a straight line.
$∴ ∠ A E D + ∠ D E B = 180^{\circ}$ ...(ii)
$\Rightarrow ∠ A E D + 180^{\circ} - ∠ D O^{'} B = 180^{\circ}$
[From Eq. (ii)]
$\Rightarrow ∠ A E D = ∠ D O^{'} B$ (iii)
Similarly $∠ A E D = ∠ A O C$ (iv)
Again from Eq. (ii) $∠ D E B = 180^{\circ} - ∠$ DO'B
Divided by 2 on both sides, we get
$\frac{1}{2} ∠ D E B = 90^{\circ} - \frac{1}{2} ∠ D O^{'} B$
$\Rightarrow ∠ D E O^{'} = 90^{\circ} - \frac{1}{2} ∠ D O^{'} B$ (v)
[Since, O'E is the angle bisector of $∠ D E B i . e ., \frac{1}{2} ∠ D E B = ∠ D E O^{'}$ ]
Similarly, $∠ A E C = 180^{\circ} - ∠ A O C$
Divided by 2 on both sides, we get
$\frac{1}{2} ∠ A E C = 90^{\circ} - \frac{1}{2} ∠ A O C$
$\Rightarrow ∠ A E O = 90^{\circ} - \frac{1}{2} ∠ A O C$
[Since, OE is the angle bisector of $∠$ AEC i.e., $\frac{1}{2} ∠ A E C = ∠ A E O$ ]
Now, $∠ A E D + D E O^{'} + ∠ A E O = ∠ A E D + (90^{\circ} - \frac{1}{2} D O^{'} B) + (90^{\circ} - \frac{1}{2} ∠ A O C)$
$= ∠ A E D + 180^{\circ} - \frac{1}{2} (∠ D O^{'} B + ∠ A O C)$
$= ∠ A E D + 180^{\circ} - \frac{1}{2} (∠ A E D + ∠ A E D)$ [from eqs. (iii) and (iv)]
$= ∠ A E D + 180^{\circ} - \frac{1}{2} (2 \times ∠ A E D)$
$= ∠ A E D + 180^{\circ} - ∠ A E D = 180^{\circ}$
$∴ ∠ A E O + ∠ A E D + ∠ D E O^{'} = 180^{\circ}$
So. OEO; is straight line.
Dence O. E and O' are collinear
Hence proved

Suggest Corrections

Similar questions

O_{1}

O_{2}

Join BYJU'S Learning Program