Let P be a point on the circle S with both coordinates being positive. Let the tangent to S at P intersect thecoordinate axes at the points M and N. Then, the mid-point of the line segment MN must lie on the curvea)(x + y)2 = 3xyb)x2/3 + y2/3 = 24/3c)x2 + y2 = 2xyd)x2 + y2 = x2y2Correct answer is option 'D'. Can you explain this answer?

Question

Answer

Explanation:

We are given a circle S with a point P on it, and the tangent to the circle at point P intersects the coordinate axes at points M and N. We need to determine the curve on which the midpoint of MN lies.

Step 1: Finding the coordinates of points M and N
Since the tangent to the circle at point P is perpendicular to the radius at that point, the tangent will be parallel to the coordinate axes. Therefore, the tangent will intersect the x-axis at point M and the y-axis at point N.

Let the coordinates of point P be (a, b). Since point P lies on the circle, we have the equation of the circle as:

(x - a)^2 + (y - b)^2 = r^2

where r is the radius of the circle.

Step 2: Finding the equation of the tangent at point P
The equation of the tangent to the circle at point P can be found by differentiating the equation of the circle with respect to x and y and substituting the coordinates of point P.

Differentiating the equation of the circle with respect to x:

2(x - a) + 2(y - b) * dy/dx = 0
dy/dx = (a - x) / (y - b)

Substituting the coordinates of point P (a, b):

dy/dx = (a - a) / (b - b) = 0

Therefore, the equation of the tangent at point P is y = b.

Step 3: Finding the coordinates of points M and N
Since the tangent is parallel to the x-axis, the y-coordinate of point M is the same as the y-coordinate of point P, which is b. Therefore, point M has coordinates (x, b).

Similarly, since the tangent is parallel to the y-axis, the x-coordinate of point N is the same as the x-coordinate of point P, which is a. Therefore, point N has coordinates (a, y).

Step 4: Finding the midpoint of MN
The midpoint of a line segment with coordinates (x1, y1) and (x2, y2) can be found using the midpoint formula:

Midpoint coordinates = ((x1 + x2) / 2, (y1 + y2) / 2)

Applying this formula to points M(x, b) and N(a, y):

Midpoint coordinates = ((x + a) / 2, (b + y) / 2)

Step 5: Determining the curve on which the midpoint lies
To find the equation of the curve on which the midpoint of MN lies, we substitute the coordinates of the midpoint into the options given.

a) (x^2 + y^2)^2 = 3xy
b) (x^2/3 + y^2/3) = 24/3
c) x^2 + y^2 = 2xy
d) x^2 - y^2 = x^2y^2

Substituting the midpoint coordinates ((x + a) / 2, (b + y) / 2) into each option:

a) (((x + a) / 2)^2 + ((b + y) / 2)^2)^

Similar JEE Doubts

A point R with x-coordinate 1 lies on the line segment joining the points P(-2, 3,5) and Q (7, 0, -1). The coordinates of the point R are

Tangents are drawn from the points on the line x – y + 3 = 0 to parabola y2 = 8x. Then the variable chords of contact pass through a fixed point whose coordinates are

The tangents to the curve y=(x−2)2−1at its points of intersection with the line x−y=3, intersect at the poinT?

Top Courses for JEEView all

Physics for JEE Main & Advanced

Mock Tests for JEE Main and Advanced 2025

Mathematics (Maths) for JEE Main & Advanced

Chemistry for JEE Main & Advanced

Study Plan for JEE

Top Courses for JEE

Top Courses for JEE

Related Content

JEE Courses

Mock Test Series

Past Year Papers

Additional Courses

Company