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प्रश्न
Find the equation of the tangents to the curve x2 + y2 – 2x – 4y + 1 = 0 which is parallel to the X-axis.
उत्तर
Let P(x1.y1) be the point on the curve x2 + y2 – 2x – 4y + 1 = 0 where the tangent is parallel to X-axis.
Differentiating x2 + y2 – 2x – 4y + 1 = 0 w.r.t x, we get
`2x + 2y(dy)/(dx) - 2 xx 1 - 4(dy)/(dx) + 0` = 0
∴ `(2y - 4)(dy)/(dx)` = 2 – 2x
∴ `(dy)/(dx) = (2 - 2x)/(2y - 4) = (1 - x)/(y - 2)`
∴ `(dy/dx)_(at(x_1,y_2)) = (1 - x_1)/(y_1 - 2)`
= Slope of the tangent at (x1, y1)
Since, the tangent is parallel to X-axis,
Slope of the tangent = 0
∴ `(1 - x_1)/(y_1 - 2)` = 0
∴ 1 – x1 = 0
∴ x1 = 1
Since, (x1,y1) lies on x2 + y2 – 2x – 4y + 1 = 0
`x_1^2 + y_1^2 - 2x_1 - 4y_1 + 1` = 0
When x1 = `1,(1)^2 + y_1^2 - 2(1) - 4y_1 + 1` = 0
∴ 1 + y1 – 2 – 4y1 + 1 = 0
∴ `y_1^2 - 4y_1` = 0
∴ y1(y1 – 4) = 0
∴ y1 = 0 or y1 = 4
∴ The coordinates of the point are (1, 0) or (1, 4)
Since, the tangents are parallel to X-axis their equations are of the form y = k
If it passes through the point (1, 0), k = 0 and it passes through the point (1, 4), k = 4
Hence, the equations of the tangents are y = 0 and y = 4.
