Question
Download Solution PDFIn a circle of radius 3 cm, two chords of length 2 cm and 3 cm lie on the different side of a diameter. What is the perpendicular distance between the two chords?
Answer (Detailed Solution Below)
Detailed Solution
Download Solution PDFGiven:
the radius of circle = 3 cm
length of chord AB = 2 cm
length of chord CD = 3 cm
Formula used:
Hypotenuse2 = Perpendicular2 + Base2
Calculation:
Now from △OFB,
⇒ OF2 = 32 − 12
⇒ OF2 = 9 - 1
⇒ OF2 = 8
⇒ OF = \(2\sqrt2\)
From △OEC,
⇒ OE2 = 32 − \(({3\over 2})^2\)
⇒ OE2 = 9 - \(({9\over 4})\)
⇒ OE2 = \({27\over 4}\)
⇒ OE = \(3\sqrt3\over2\)
So, the distance between AB and CD,
⇒ FE = OF + OE
⇒ FE = \(2\sqrt2\) + \(3\sqrt3\over2\)
⇒ FE = \(\bf \frac{{4\sqrt 2 + 3\sqrt 3 }}{2} \) cm
∴ The perpendicular distance between the two chords is \(\bf \frac{{4\sqrt 2 + 3\sqrt 3 }}{2} \) cm.
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