In a circle of radius $'r'$ , chords of lengths $a$ and $b$ cms, subtend angles $q$ and $3q$ respectively at the centre, then $r = asqrt(a/(2a-b))$ cm. True or False?

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In a circle of radius $'r'$ , chords of lengths $a$ and $b$ cms, subtend angles $q$ and $3q$ respectively at the centre, then $r = asqrt(a/(2a-b))$ cm. True or False?

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Answer 1 · 2017-12-13T11:55:54

The given relation is false

Explanation:

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We know that perpendicular dropped from the centre of the circle to a chord bisects the chord and the angle subtended by the chord at the centre of the circle.

So here we have

$/_AOM=1/2/_AOB and AM=1/2AB$
If $/_AOB=x , OA =r and AB=d$ then $sin(x/2)=(AM)/(OA)=(d/2)/r=d/(2r)$
By the problem

When $d=a and x=q$

We get

$sin(q/2)=a/(2r)......(1)$

Again when $d=b and x=3q$

We get

$sin((3q)/2)=b/(2r)......(2)$

Dividing (2) by (1) we get

$sin((3q)/2)/sin(q/2)=b/a$

$=>(3sin(q/2)-4sin^3(q/2))/sin(q/2)=b/a$

$=>3-4sin^2(q/2))=b/a$

$=>3-4(a/(2r))^2=b/a$

$=>3-a^2/r^2=b/a$

$=>a^2/r^2=3-b/a$

$=>a^2/r^2=(3a-b)/a$

$=>r^2=a^3/(3a-b)$

$=>r=asqrt(a/(3a-b))$

Hence the given relation is false

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In a circle of radius $'r'$ , chords of lengths $a$ and $b$ cms, subtend angles $q$ and $3q$ respectively at the centre, then $r = asqrt(a/(2a-b))$ cm. True or False?

1 Answer

Explanation:

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In a circle of radius 'r''r', chords of lengths aa and bb cms, subtend angles qq and 3q3q respectively at the centre, then r = asqrt(a/(2a-b))r = asqrt(a/(2a-b)) cm. True or False?

1 Answer

Explanation:

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In a circle of radius $'r'$ , chords of lengths $a$ and $b$ cms, subtend angles $q$ and $3q$ respectively at the centre, then $r = asqrt(a/(2a-b))$ cm. True or False?