Question

Question 4
a) In the given diagram 'O' is the centre of the circle. Chord AB is parallel to chord CD.
AB = 64 cm, CD = 48 cm and radius of the circle is 40 cm. Find the distance between
the two chords.​

Answer 1

Answer:

ok i can

Step-by-step explanation

consider AB and CD are the chords parallel to each other

AB = 64 cm

CD = 48 cm

radius of the circle = 40 cm

construct OL ⊥  AB and  OM⊥ CD

join the diagonals OA and  OC

we know that  OA = OC=  40 cm

perpendicular from the center of the circle to a chord bisects the chord

therfore

AL =

AL=

AL = 32 cm

similarly,

CM = 24 cm

consider

using pythagoras theorem

OA²= AL²+ OL²

(40)²= (32)²+OL²

OL²= (40)²-(32)² = 1600 - 1024 = 576

OL²= 576

OL = 24 cm

similarly

consider OMC

using again pythagoras theorem

OC²= CM² + OM²

(40)² = (24)² + OM²

OM² = (40)²- (24)²= 1600 - 576 = 1024

OM²= 1024

OM= 32 cm

distance between the chords = OM+OL

= 24 + 32 cm

= 56 cm

hence,