There is a circle with radius 6 cm. A chord is drawn in it. Find the angle subtended by the minor segment of the chord at the centre of the circle if the area of segment is 22.1 ${c m}^{2}$ .

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120

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180

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Solution

The correct option is C
120

(since OS is perpendicular to PQ)

OQ = OP (radius of the circle)

$∠$ OSP = $∠$ OSQ = $90^{\circ}$

OS is the common side to both the triangles

Thus, $Δ$ PSO is congruent to $Δ$ QSO by RHS congruence.

This means that corresponding $∠$ POS and $∠$ QOS are equal.

So, $∠$ POS = $∠$ QOS = $θ$

$∠$ POQ = $∠$ POS + $∠$ QOS = $2 θ$

Also PS = SQ (corresponding sides of 2 congruent triangles)

Area of segment PSQR = Area of sector POQR - Area of $Δ$ POQ

Area of sector = $\frac{2 θ}{360^{\circ}} \times π r^{2}$ (Where r is radius)

= $\frac{2 θ}{360^{\circ}} \times π {(6)}^{2}$

= $0.63 θ$

In $Δ$ OSQ, $∠$ OSQ = $90^{\circ}$

$s i n θ$ = $\frac{o p p o s i t e}{h y p o t e n u s e}$ (SQ is opposite side for angle θ since the opposite side has no common vertex with angle)

= $\frac{S Q}{O Q}$

$\Rightarrow$ $s i n θ$ = $\frac{S Q}{6}$

Hence, SQ = $6 s i n θ$

Similarly, OS = $6 c o s θ$

PQ = PS + SQ = 2SQ (Since PS = SQ)

⇒ PQ = $12 s i n θ$

Area of triangle OPQ = $\frac{1}{2} \times b a s e \times h e i g h t$

= $\frac{1}{2} \times P Q \times O S$

= $\frac{1}{2} \times 12 s i n θ \times 6 c o s θ$

= $36 (s i n θ) (c o s θ)$

Area of segment = Area of sector – Area of triangle

= $0.63 θ$ - $36 (s i n θ) (c o s θ)$

$22.1$ = $0.63 θ$ - $36 (s i n θ) (c o s θ)$ ...........(1)

Here we can get the value of $θ$ by substituting values of answer options. But take care! The answer is not $θ$ . What is asked is $∠$ POQ = $2 θ$

By substituting $2 θ$ = $120^{\circ}$ , $θ$ = $60^{\circ}$

When $θ$ = $60^{\circ}$ the above equation (1) is satisfied. Hence, the angle subtended by segment at centre is $120^{\circ}$ .

Note that sin ( $120^{\circ}$ ) = sin ( $90^{\circ}$ + $30^{\circ}$ ), which is sin ( $30^{\circ}$ ) = $\frac{1}{2}$ . This is because sin ( $90^{\circ}$ + $θ$ ) = sin( $θ$ )

sin ( $180^{\circ}$ ) = 0, when we substitute $2 θ$ as $180^{\circ}$

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There is a circle with radius 6 cm. A chord is drawn in it. Find the angle subtended by the minor segment of the chord at the centre of the circle if the area of segment is 22.1 cm2.

There is a circle with radius 6 cm. A chord is drawn in it. Find the angle subtended by the minor segment of the chord at the centre of the circle if the area of segment is 22.1 ${c m}^{2}$ .