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Question

The equation(s) of the normal(s) to the hyperbola 3x2y2=1 having slope 13 is/are:

A
2(x3y)=4
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B
2(x3y)=4
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C
2(x3y)=8
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D
2(x3y)=8
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Solution

The correct option is B 2(x3y)=4
Differentiating the equation of thehyperbola w.r.t x, we get:
6x2ydydx=0or dydx=3xyLet the point on the curve where the normal has slope 1/3 be P(x1,y1).Hence, dxdy=y13x1=13 or y1=x1Also, P lies on the hyperbola3x12y12=13x12x12=1x1=±12Also, y1=12Hence, the points on the curve are(±1/2, 1/2)Hence, the equations of the normals are:y12=13(x+12)and y+12=13(x12)2(x3y)=4 and 2(x3y)=4

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