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Question

If at least one value of the complex number z = x + iy satisfy the condition |z+2|=a23a+2 and the inequality |z+i2|=a2, then

A
a > 2
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B
a = 12
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C
a < 2
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D
None of these
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Solution

The correct option is A a > 2
If z = x + iy is a complex number satisfying the given conditions, then
a23a+2=|z+2|=|z+i2+2i2||z+i2|+2|1i|<a2+2
3a<0a>0
.....(i)

Since |z+2=a23a+2| represents a circle with centre at A(2,0) and radius a23a+2,and|z+2i|<a2 represents the interior of the circle with centre at B(0,2) and radius a, therefore there will be a complex number satisfying the given condition and the given inequality if the distance AB is less than the sum or difference of the radii of the two circles, i.e., if
(20)2+(0+2)2<a23a+2±a
2±a<a23a+2
4+a2±4a<a23a+2
-a < -2 or 7a < -2 a > 2 or a < 72

But a > 0 from (i), therefore a > 2.
Area of the triangle = 12 |z|2


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