Question

Find the equation of the normal at the point (am², am³ ) for the curve ay² = x³.

Answer 1

The equation of the given curve is ay² = x3 .

On differentiating with respect to x, we have:

2ay\(\frac{dy}{dx}\)=3x²

\(\frac{dy}{dx}\)=\(\frac{3x^2}{2ay}\)

The slope of a tangent to the curve at (x₀, y₀) is \(\frac{dy}{dx}\)]_(x0,y0).

The slope of the tangent to the given curve at (am² , am³ ) is

\(\frac{dy}{dx}\)(am²,am³)=\(\frac{3(m^2)^2}{2a(am^3)}\)=\(\frac{3a^2m^4}{2a^2m^3}\)=\(\frac{3m}{2}\).

Slope of normal at (am² , am³ ) is given by,

y-am³=\(-\frac{2}{3}\)m(x-am²)

3my-3am⁴=-2x+2am²

2x+3my-am²(2+3m²)=0