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- Thread starter axwe7
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In Triangle ACE:
Angle E = 90°(given)
=>Angle ACD+Angle BAC = 90° (Angle sum of a triangle)
Angle AOD = 2 Angle ACD (The angle at centre must be equal to twice the angle at circumference)
So Angle BOC = 2 Angle BAC (The angle at centre must be equal to twice the angle at circumference)
Angle AOD + Angle BOC = 180°
Angle E = 90°(given)
=>Angle ACD+Angle BAC = 90° (Angle sum of a triangle)
Angle AOD = 2 Angle ACD (The angle at centre must be equal to twice the angle at circumference)
So Angle BOC = 2 Angle BAC (The angle at centre must be equal to twice the angle at circumference)
Angle AOD + Angle BOC = 180°
Say you have the diagram, appropriately labelled. (I have chord AB horizontal, below O, and vertical chord CD, to the right of O, with C on top) Draw the line AC.
Then: angle AOD = 2 x angle ACD = 2 x @ say
and angle BOC = 2 x angle BAC = 2 x & say.
Now in right-angled triangle ACE: @ + & = 90 deg
.: angle AOD + angle BOC = 2 x (@ + &) = 2 x 90 deg = 180 deg
Then: angle AOD = 2 x angle ACD = 2 x @ say
and angle BOC = 2 x angle BAC = 2 x & say.
Now in right-angled triangle ACE: @ + & = 90 deg
.: angle AOD + angle BOC = 2 x (@ + &) = 2 x 90 deg = 180 deg
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