The distance, from the origin, of the normal to the curve, $x = 2 cos t + 2 t sin t, y = 2 sin t - 2 t cos t, at t = \frac{π}{4}$ ,is:

4

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\sqrt{2}

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2

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2 \sqrt{2}

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Solution

The correct option is C $2$
$x = 2 cos t + 2 t sin t, \frac{d x}{d t} = 2 t cos t y = 2 sin t - 2 t cos t \frac{d y}{d t} = 2 t sin t \Rightarrow \frac{d y}{d x} = tan t$
So, slope of normal at $t = \frac{π}{4}$ is $- \frac{1}{tan t} = - 1$
Equation of normal at
$t = \frac{π}{4} x + y - 2 \sqrt{2} = 0$
Distance of normal form the Origin= $∣ ∣ ∣ \frac{- 2 \sqrt{2}}{\sqrt{1 + 1}} ∣ ∣ ∣ = 2$ units

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Similar questions

x = 2 cos t + 2 t sin t, y = 2 sin t - 2 t cos t, at t = \frac{π}{4}

x = 2 cos t + 2 t sin t, y = 2 sin t - 2 t cos t

t = \frac{π}{4}

x = 2 cos t + 2 t sin t,

y = 2 sin t - 2 t cos t

t = \frac{π}{4}

x = 2 cos t + 2 t sin t, y = 2 sin t - 2 t cos t, at t = \frac{π}{4}

t = \frac{π}{2}

x = 2 sin t, y = 2 cos t

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