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Question

The point P on the ellipse 4x2+9y2=36 is such that the area of the PF1F2=10 sq. units, where F1,F2 are foci. Then the coordinates of P will be

A
(32,2)
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B
(32,2)
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C
(32,2)
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D
(32,2)
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Solution

The correct option is D (32,2)
Given, equation of ellipse
x29+y24=1e=149e=53

Coordinates of foci F1 and F2 are
(±5,0)
Let P(h,k)
Now, the area of
PF1F2=1012×25×|k|=10|k|=2k=2 or 2y=2 or 2

Putting value of y in equation of ellipse
4x2+9(2)2=36x2=92x=32,32

Hence, possible points are
(32,2), (32,2), (32,2), (32,2)

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