Tangents PA and PB are drawn to x2+y2=4 from the point P(3,0). Area of △PAB is equal to
A
59√5 sq unit
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B
13√5 sq unit
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C
109√5 sq unit
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D
203√5 sq unit
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Solution
The correct option is C109√5 sq unit Length of tangent from P to the given circle is L=√S1=√5 units So required area of triangle is =L3rL2+r2 =10√59 sq. units
Alternate Solution: Equation of AB is, T=0, i.e, 3x+y⋅0=4 ⇒x=43,OD=43. Hence DP=3−4/3=5/3 In right angled triangle △ADO, AD2=OA2−OD2 ⇒AD2=4−169 ⇒AD=2√53 ⇒AB=4√53 ⇒ Area of △PAB=12⋅4√53⋅53 =109√5 sq unit