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Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce PDF Download

Definition

A circle is characterized as the locus of a point undergoing planar motion, whereby its distance from a fixed point, termed the center, remains invariant. The constant distance is precisely identified as the radius of the circle.

Basic Theorems and Results of Circles

  • Concentric circles: Circles having same centre.
    Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce
  • Congruent circles: Iff their radii are equal.
    Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce
  • Congruent arcs: Iff they have same degree measure at the centre.
    Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Theorem 1 

  • If two arcs of a circle (or of congruent circles) are congruent, the corresponding chords are equal.
    Converse : If two chords of a circle are equal then their corresponding arcs are congruent.
  • Equal chords of a circle (or of congruent circles) subtend equal angles at the centre.
    Converse : If the angle subtended by two chords of a circle (or of congruent circle) at the centre are equal, the chords are equal.

Theorem 2 

  • The perpendicular from the centre of a circle to a chord bisects the chord.
    Converse : The line joining the mid point of a chord to the centre of a circle is perpendicular to the chord.
  • Perpendicular bisectors of two chords of a circle intersect at tis centre.

Theorem 3 

  • There is one and only one circle passing through three non collinear points.
  • If two circles intersects in two points, then the line joining the centres is perpendicular bisector of common chords.

Theorem 4

  • Equal chords of a circle (or of congruent circles) are equidistant from the centre.
    Converse: Chords of a circle (or of congruent circles) which are equidistant from the centre are equal.
  • If two equal chords are drawn from a point on the circle, then the centre of circle will lie on angle bisector of these two chords.
  • Of any two chords of a circle larger will be near to centre.

Theorem 5

  • The degree measure of an arc or angle subtended by an arc at the center is double the angle subtended by it at any point of alternate segment.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

  • Angle in the same segment of a circle are equal.   

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

  • The angle in a semi circle is right angle.
    Converse: The arc of a circle subtending a right angle in alternate segment is semi circle.

Theorem 6

An angle subtended by a minor arc in the alternate segment is acute and any angle subtended by a major arc in the alternate segment is obtuse.

Theorem 7

If a line segment joining two points subtends equal angles at two other points lying on the same side of the line segment, the four points are concyclic, i.e. lie on the same circle.

Cyclic Quadrilaterals

A quadrilateral is called a cyclic quadrilateral if its all vertices lie on a circle.

Theorem 1

The sum of either pair of opposite angles of a cyclic quadrilateral is 180º.

OR

The opposite angles of a cyclic quadrilateral are supplementary.

Converse : If the sum of any pair of opposite angle of a quadrilateral is 180º, then the quadrilateral is cyclic.

Theorem 2 

If a side of a cyclic quadrilateral is produced, then the exterior angle is equal to the interior opposite angle.

Theorem 3

The quadrilateral formed by angle bisectors of a cyclic quadrilateral is also cyclic.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Theorem 4

If two sides of cyclic quadrilateral are parallel then the remaining two sides are equal and the diagonals are also equal.

OR

A cyclic trapezium is isosceles and its diagonals are equal.

Converse : If two non-parallel sides of a trapezium are equal then it is cyclic.

OR

An isosceles trapezium is always cyclic.

Theorem 5 

The bisectors of the angles formed by producing the opposite sides of a cyclic quadrilateral (provided they are not parallel), intersect at right angle.

Tangents to a Circle

Theorem 1

A tangent to a circle is perpendicular to the radius through the point of contact.

Converse: A line drawn through the end point of a radius and perpendicular to it is a tangent to the circle.

Theorem 2

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

If two tangents are drawn to a circle from an external point, then:

  • They are equal.
  • The subtend equal angles at the centre.
  • They are equally inclined to the segment, joining the centre to that point.

Theorem 3

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

If two chords of a circle intersect inside or outside the circle when produced, the rectangle formed by the segments of one chord is equal in area to the rectangle formed by the two segments of the other chord

PA × PB = PC × PD

Theorem 4

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

If PAB is a secant to a circle intersecting the circle at A and B and PT is tangent segment, the PA × PB = PT2

OR

Area of the rectangle formed by the two segments of a chord is equal to the area of the square of side equal to the length of the tangent from the point on the circle.

Theorem 5

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

If a chord is drawn through the point of contact of tangent to a circle, then the angles which this chord makes with the given tangent are equal respectively to the angles formed in the corresponding alternate segments.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Converse 

If a line is drawn through an end point of a chord of a circle so that the angle formed with the chord is equal to the angle subtended by the chord in the alternate segment, then the line is a tangent to the circle.


Standard equations of the circle 

Central Form

If (h, k) is the centre and r is the radius of the circle then its equation is (x - h)2 + (y - k)2 = r2

Special Cases

(i) If centre is origin (0, 0) and radius is `r' then equation of circle is x2 + y2 = r2 and this is called the standard form.

(ii) If radius of circle is zero then equation of circle is (x - h)2 + (y - k)2 = 0.

Such circle is called zero circle or point circle.

(iii) When circle touches x-axis then equation of the circle is

(x - h)2 + (y - k)2 = k2.

or x2 + y2 - 2hx - 2ky + h2 = 0

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

(iv) When circle touches y-axis then equation of the circle is

(x - h)2 + (y - k)2 = h2

or x2 + y2 - 2hx - 2ky + k2 = 0

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

(v) When circle touches both the axes (x-axis and y-axis) then equation of the circle is

(x - h)2 + (y - h)2 = h

or x2 + y2 - 2hx - 2hy + h2 = 0

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

(vi) When circle passes through the origin and centre of the circle is (h, k) then radius Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce = r and intercept cut on x-axis OP = 2h, and intercept cut on y-axis is OQ = 2k and equation of circle is

(x - h)2 + (y - k)2 = h2 + k2 or x2 + y2 - 2hx - 2hy = 0

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Note : Circle may exist in any quadrant hence for general cases use ± sign before h and k.


General equation of circle 

x2 + y2 + 2gx + 2fy + c = 0. where g, f, c are constants and centre is (-g, -f)

i.e. Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and radius r = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Notes : 

(i) If (g2 + f2 - c) > 0, then r is real and positive and the circle is a real circle.

(ii) If (g2 + f2 - c) = 0, then radius r = 0 and circle is a point circle.

(iii) If (g2 + f2 - c) < 0, then r is imaginary then circle is also an imaginary circle with real centre.

(iv) x2 + y2 + 2gx + 2fy + c = 0, has three constants and to get the equation of the circle at least three conditions should be known ⇒ A unique circle passes through three non collinear points.

(v) The general quadratic equation in x and y, ax2 + by2 + 2hxy + 2gx + 2fy + c = 0 

represents a circle if :

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce


Intercepts cut by the circle on axes

The intercepts cut by the circle x2 + y2 + 2gx + 2fy + c = 0 on :

(i) x-axis = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(ii) y-axis = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce


Notes :

(i) If the circle cuts the x-axis at two distinct point then g2 - c > 0

(ii) If circle touches x-axis then g2 = c.

(iii) If circle touches y-axis f2 = c.

(iv) Circle lies completely above or below the x-axis then g2 < c.

(v) Intercept cut by a line on the circle x2 + y2 + 2gx + 2fy + c = 0 or length of chord of the circle = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce where a is the radius and P is the length of perpendicular from the centre to the chord.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

Diametrical form of circle

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

If A(x1, y1) and B(x2, y2) are the end points of the diameter of the circle and P(x, y) is the point other then A and B on the circle then from geometry we know that Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce = 90º.

⇒ (Slope of PA) × (Slope of PB) = -1

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

⇒ (x - x1) (x - x2) + (y - y1) (y - y2) = 0

Note : This will be the circle of least radius passing through (x1, y1) and (x2 , y2)


The parametric forms of the circle

(i) The parametric equation of the circle x2 + y2 = rare x = r cosθ, y = r sinθ; Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(ii) The parametric equation of the circle (x - h)2 + (y - k)2 = r2 is

x = h + r cosθ, y = k + r sinθ where θ is parameter.

(iii) The parametric equation of the circle x2 + y2 + 2gx + 2fy + c = 0 are x = - g + Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce cosθ

y = - f + Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce sinθ where θ is parameter.

Note that equation of a straight line joining two point Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce on the circle x2 + y2 = a2 is

x cos Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.


Example 1. Find the centre and the radius of the circles 

(A) Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(B) Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(C) Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce, for some l.

 

Sol. (A) We rewrite the given equation as Circle: Theorems and Equation | Mathematics (Maths) Class 11 - CommerceCircle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Hence the centre is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and the radius is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

(B)Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Centre of this circle is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce. Radius Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

(C)Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

We rewrite the equation as Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce ...(i)

Since, there is no term of xy in the equation of circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

So, equation (i) reduces to Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce centre is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce & RadiusCircle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

Example 2. If the lines Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce are tangents to a circle, then the radius of the circle is

Sol. The diameter of the circle is perpendicular distance between the parallel lines (tangents) Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and so it is equal to Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce. Hence radius is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.


Example 3. If y = 2x + m is a diameter to the circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce, then find m

Sol. Centre of circle = (-3/2, - 2). This lies on diameter y = 2x + m Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

Example 4. The equation of a circle which passes through the point (1, - 2) and (4, -3) and whose centre lies on the lies 3x + 4y = 7 is

Sol. Let the circle be Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce             ...(i)

Hence, substituting the points, (1, - 2) and (4, -3) in equation (i)

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce...(ii)

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce  ...(iii)

= centre (-g, -f) lies on line Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce. Hence Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

solving for g, f, c, we get Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Hence the equation is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

Example 5. A circle has radius equal to 3 units and its centre lies on the line y = x - 1. Find the equation of the circle if it passes through (7, 3).

Sol. Let the centre of the circle be Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce It lies on the line y = x - 1

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce. Hence the centre is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce The equation of the circle is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

It passes through (7, 3)              

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce           

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce               

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce                   

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Hence the required equations are Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce


Position of A Point W.R.T. Circle

  • Let the circle is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and the point is (x1, y1) then point (x1, y1) lies out side the circle or on the circle or inside the circle according as

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce or Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce                

  Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

  • The greatest & the least distance of a point A from a circle with centre C & radius r is AC + r & AC - r respectively.

Example 6. If P(2, 8) is an interior point of a circle x2 + y2 - 2x + 4y - p = 0 which neither touches nor intersects the axes, then set for p is

Sol. For internal point P(2, 8), 4 + 64 - 4 + 32 - p < 0 ⇒ p > 96 and x intercept Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce therefore 1+p<0

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and y intercept Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce


Tangent Line of Circle

When a straight line meet a circle on two coincident points then it is called the tangent of the circle.

➢ Condition of Tangency  

The line L = 0 touches the circle S = 0 if P the length of the perpendicular from the centre to that line and radius of the circle r are equal i.e. P = r.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Example 7. Find the range of parameter `a' for which the variable line y = 2x + a lies between the circle x2 + y2 - 2x - 2y + 1 = 0 and x2 + y2 - 16x - 2y + 61 = 0 without intersecting or touching either circle.
Sol. The given circles are Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

The line Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce will lie between these circle if centre of the circles lie on opposite sides of the line, i.e. Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Line wouldn't touch or intersect the circles if, Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce or Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce or Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Hence common values of `a' are Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.


Example 8. The equation of a circle whose centre is (3, -1) and which cuts off a chord of length 6 on the line

2x - 5y + 18 = 0.
Sol.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Let AB(= 6) be the chord intercepted by the line 2x - 5y + 18 = 0 from the circle and let CD be the perpendicular drawn from centre (3, - 1) to the chord AB.

i.e., Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Therefore, Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce. Hence required equation is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce


Example 9. The area of the triangle formed by line joining the origin to the points of intersection(s) of the line Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and circle x2 + y2 = 10 is

Sol.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Length of perpendicular from origin to the line Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Radius of the given circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.

Thus area of Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

➢ Equation of the tangent (T = 0) 

  • Tangent at the point (x1, y1) on the circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.
  • The tangent at the point (acos t, asin t) on the circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce
  • The point of intersection of the tangents at the points Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is
    Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce
  • The equation of tangent at the point (x1, y1) on the circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce isCircle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce
  • If line y = mx + c is a straight line touching the circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce, then Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and contact points are Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce or Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and equation of tangent is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce
  • The equation of tangent with slope m of the circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce isCircle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Note : To get the equation of tangent at the point (x1, y1) on any curve we replace xx1 in place of x2, yy1 in place of Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce in place of Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce in place of y, Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce in place of xy and c in place of c.


➢ Length of tangent Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce :

The length of tangent draw from point (x1, y1) out side the circle

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is,

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce


Note : When we use this formula the coefficient of x2 and y2 must be 1.


➢ Equation of Pair to tangents (SS1 = T2

Let the equation of circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is any point outside the circle.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

From the point we can draw two real and distinct tangent PQ & PR and combine equation of pair of

tangents is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce or Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce


Example 10. Let A be the centre of the circle x2 + y2 - 2x - 4y - 20 = 0 and B(1, 7) and D(4, -2) are points on the circle then, if tangents be drawn at B and D, which meet at C, then area of quadrilateral ABCD is

Sol.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce or y = 7             ...(i)

Tangent at Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce                    ...(ii)

Solving (i) and (ii), C is (16, 7)

Area ABCD = AB × BC = 5 × 15 = 75 units.


Normal of Circle

Normal at a point of the circle is the straight line which is perpendicular to the tangent at the point of contact and passes through the centre of circle.

(a) Equation of normal at point (x1, y1) or circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(b) The equation of normal on any point (x1, y1) of circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(c) If Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is the equation of the circle then at any point `t' of this circle (a cos t, a sin t), the equation of normal is x sin t - y cos t = 0.


Example 11. Find the equation of the normal to the circle x2 + y2 - 5x + 2y - 48 = 0 at the point (5, 6).

Sol. Since normal to the circle always passes through the centre so equation of the normal will be the line passing through (5, 6) & Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce i.e. y + 1 = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - CommerceCircle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

⇒ 5y + 5 = 14x - 35

⇒ 14x - 5y - 40 = 0


Example 12. If the straight line ax + by = 2; a, Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce touches the circle x2 + y2 - 2x = 3 and is normal to the circle x2 + y2 - 4y = 6, then the values of a and b are respectively

Sol. Given x2 + y2 - 2x = 3

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce centre is (1, 0) and radius is 2 and x2 + y2 - 4y = 6

Given x2 + y2 - 4y = 6

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce centre is (0, 2) and radius is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce. Since line ax + by = 2 touches the first circle

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - CommerceCircle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce = 2 or (a - 2) = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce .............(i)

Also the given line is normal to the second circle. Hence it will pass through the centre of the second circle.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce a(0) + b(B) = 2 or 2b = 2 or b = 1

Putting this value in equation (i) we get a - 2 = or (a - 2)2 = 4(a2 + 1)

or a2 + 4 - 4a = 4a2 + 4 or 3a2 + 4a = 0  or a(3a + 4) = 0 or  = 0, -4/3

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce values of a and b are respectively according to the given choices.


Power of the point 

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Square of the length of the tangent from the point P is defined as

power of the point `p' w.r. to given circle ⇒ PT2 = S


Note: Power of a point remains constant w.r. to a circle PA.PB = PT2


Chord of contact

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

A line joining the two points of contacts of two tangents drawn from a point out side the circle, is called chord of contact of that point.

If two tangents PT1 & PT2 are drawn from the point P(x1, y1) to the circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce x2 + y2 + 2gx + 2fy + c = 0, then the equation of the chord of contact T1T2 is : xx1 + yy1 + g (x + x1) + f (y + y1) + c = 0

(i.e. T = 0 same as equation of tangent).


Remember

(a) Length of chord of contact T1 T2 = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.

(b) Area of the triangle formed by the pair of the tangents & its chord of contact = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce Where R is the radius of the circle & L is the length of the tangent from (x1, y1) on S = 0.

(c) Angle between the pair of tangents from P(x1, y1) = tan-1Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(d) Equation of the circle circumscribing the triangle PT1T2 or quadrilateral CT1PT2 is :

(x - x1) (x + g) + (y - y1) (y + f) = 0.

(e) The joint equation of a pair of tangents drawn from the point A (x1, y1) to the circle

x2 + y2 + 2gx + 2fy + c = 0 is : SS1 = T2.

Where Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce'

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Example 13. The chord of contact of tangents drawn from a point on the circle x2 + y2 = a2 to the circle x2 + y2 = b2 touches the circle x2 + y2 = c2. Show that a, b, c are in G.P.

Sol. 

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Let P(a cosθ, a sinθ) be a point on the circle x2 + y2 = a2.

The equation of chord of contact of tangents drawn from

P(a cosθ, asinθ) to the circle x2 + y2 = b2 is axcosθ + aysinθ = b2 .....(i)

This touches the circle x2 + y2 = c2                                             .....(ii)

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce Length of perpendicular from (0, 0) to (i) = radius of (ii)

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - CommerceCircle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce = c      or          b2 = ac       ⇒        a, b, c are in G.P.

 

Equation of the chord with a given middle point (t = s1)

The equation of the chord of the circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce+ y2 + 2gx + 2fy + c = 0 in terms of its mid point M(x1, y1) is

y - y1 = - Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce(x - x1). This on simplification can be put in the form

xx1 + yy1 + g (x + x1) + f (y + y1) + c = x12 + y12 + 2gx1 + 2fy1 + c which is designated by T = S1.


Note: The shortest chord of a circle passing through a point `M' inside the circle, is one chord whose middle point is M.

 

Example 14. Let a circle be given by 2x(x - a) + y(2y - b) = 0 Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce Find the condition on a and b if two chords, each bisected by the x-axis, can be drawn to the circle from (a, b/2).

Sol. The given circle is 2x(x - a) + y(2y - b) = 0    or      x2 + y2 - ax - by/2 = 0

Let AB be the chord which is bisected by x-axis at a point M. Let its co-ordinates be M(h, 0).

and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce             Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce         Equation of chord AB is T = S1

hx + 0 - Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce(x + h) - Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce(y + 0) = h2 + 0 - ah - 0

Since its passes through (a, b/2) we have

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Now there are two chords bisected by the x-axis, so there must be two distinct real roots of h.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce       B2 - 4AC > 0

 ⇒ Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce - 4.1.Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce > 0  

⇒       a2 > 2b2.

Director Circle

The locus of point of intersection of two perpendicular tangents to a circle is called director circle. Let P(h, k) is the point of intersection of two tangents drawn on the circle x2 + y2 = a2. Then the equation of the pair of tangents is SS1 = T2.        

 i.e.  (x2 + y2 - a2) (h2 + k2 - a2) = (hx + ky - a2)2

As lines are perpendicular to each then, coefficient of x2 + coefficient of y2 = 0.

⇒ [(h2 + k2 - a2) - h2] + [(h2 + k- a2) - k2] = 0 

⇒ h2 + k2 = 2a2

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce locus of (h, k) is x2 + y2 = 2a2 which is the equation of the director circle.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce director circle is a concentric circle whose radius is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce times the radius of the circle.


Note : The director circle of x2 + y2 + 2gx + 2fy + c = 0 is x2 + y2 + 2gx + 2fy + 2c - g2 - f2 = 0


Example 15. Let P be any moving point on the circle x2 + y- 2x = 1, from this point chord of contact is drawn w.r.t the circle x2 + y2 - 2x = 0. Find the locus of the circumcentre of the triangle CAB, C being centre of the circle.

Sol.  The two circles are (x - 1)2 + y2 = 1 ........(i)

(x - 1)2 + y2 = 2 ........(ii)

So the second circle is the director circle of the first. So Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Now circumcentre of the right angled triangle CAB would lie on the mid point of AB

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

So let the point be Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Now, CM = CB sin 45º = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

So, (h - 1)2 + k2 = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

So, locus of M is (x - 1)2 + y2 = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.

 

Pole and Polar

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Let any straight line through the given point A(x1 , y1) intersect the given circle S = 0 in two points P' and Q and if the tangent of the circle at P and Q meet at the point R then locus of point R is called polar of the point A and point A is called the pole, with respect to the given circle.

➢ The equation of the polar of point (x1 , y1) w.r.t. circle x2 + y2 = a2.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Let PQR is a chord which passes through the point P(x1, y1) which intersects the circle at point Q and R and the tangents are drawn at points Q and R meet at point S(h, k) then equation of QR the chord of contact is

x1h + y1k = a2

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce locus of point S(h, k) is xx1 + yy1 = a2 which is the equation of the polar.


Notes :

(i) The equation of the polar is the T = 0, so the polar of point (x1, y1) w.r.t. circle

x+ y2 + 2gx + 2fy + c = 0 is xx1 + yy1 + g(x + x1) + f(y + y1) + c = 0.

(ii) If point is outside the circle then equation of polar and chord of contact is same. So the chord of contact is polar.

(iii) If point is inside the circle then chord of contact does not exist but polar exists.

(iv) If point lies on the circle then polar, chord of contact and tangent on that point are same.

(v) If the polar of P w.r.t. a circle passes through the point Q, then the polar of point Q will pass through P and hence P and Q are conjugate points of each other w.r.t. the given circle.

(vi) If pole of a line w.r.t. a circle lies on second line. Then pole of second line lies on first line and hence both lines are conjugate lines of each other w.r.t. the given circle.


➢ Pole of a given line with respect to a circle.

To find the pole of a line we assume the coordinates of the pole then from these coordinates we find the polar. This polar and given line represent the same line. Then by comparing the coefficients of similar terms we can get the coordinates of the pole. The pole of lx + my + n = 0.

w.r.t. circle x2 + y2 = a2 will be Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.


Family of Circles 

  • The equation of the family of circles passing through the points of intersection of two circles
    S1 = 0 and S2 = 0 is ; S1 + KS2 = 0 (Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce).
  • The equation of the family of circles passing through the point of intersection of a circle S = 0 and line L = 0 is given by S + KL = 0.
  • The equation of a family of circles passing through two given points (x1 , y1) and (x2 , y2) can be written in the form (x - x1) (x - x2) + (y - y1) (y - y2) + K Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce = 0 where K is a parameter.
  • The equation of a family of circles touching a fixed line y - y1 = m (x - x1) at the fixed point (x1, y1) is (x - x1)2 + (y - y1)2 + K [y - y1 - m (x - x1)] = 0, where K is a parameter.
  • Family of circles cicumscribing a triangle whose sides are given by L1 = 0; L2 = 0 and L3 = 0 is given by ; L1L2 + λ L2L3 +µ L3L1 = 0 provided coefficient of xy = 0 and coefficient of x= coefficient of y2.
  • Equation of circle circumscribing a quadrilateral whose side in order are represented by the line L1=0, L2 = 0, L3 = 0 and L4 = 0 are L1L3 + λL2L4 = 0 provided coefficient of x2 = coefficient of yand coefficient of xy = 0.

Example 16. The equation of the circle through the points of intersection of x2 + y2 - 1 = 0, x2 + y2 - 2x - 4y + 1 = 0 and touching the line x + 2y = 0, is

Sol. Family of circle is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 or           

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Centre is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and radius = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Since it touches the line x + 2y = 0, hence, Radius = Perpendicular distance from centre to the line.

i.e., Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce cannot be possible in case of circle. So λ = 1. Thus, we get the equation of circle.


Direct and Transverse Common Tangents

Let two circles having centre C1 and C2 and radii, r1 and r2 and C1C2 is the distance between their centres then

(a) Both circles will touch 

(i) Externally : If c1c2 = r1 + r2 i.e. the distance between their centres is equal to sum of their radii and point P divides C1C2 in the ratio r1 : r2 (internally). In this case there will be three common tangents. 

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(ii) Internally : If C1C2 = |r1 - r2| i.e. the distance between their centres is equal to difference between their radii and point P divides C1C2 in the ratio r1 : r2 externally and in this case there will be only one common tangent.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(b) The circles will intersect : when |r1 - r2| < C1C2 < r1 + rin this case there will be two common tangents.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(c) The circles will not intersect :

 

(i) One circle will lie inside the other circle if C1C2 < |r1 - r2| In this case there will be no common tangent.

(ii) When circle are apart from each other the C1C2 > r1 + r2 and in this case there will be four common tangents. Lines PQ and RS are called transverse or indirect or internal common tangents and these lines meet line C1C2 on T1 and T1 divides the line C1C2 in the ratio r1 : r2 internally and lines AB & CD are called direct or external common tangents.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

These lines meet C1C2 produced on T2. Thus T2 divides C1C2 externally in the ratio r1: r2.

 

Note: Length of direct common tangent = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Length of transverse common tangent = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

Example 17. Prove that the circles x2 + y2 + 2ax + c2 = 0 and x2 + y2 + 2by + c2 = 0 touch each other, if Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce.

Sol. Given circles are Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce ...(i)      and

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce ...(ii)

Let C1 and C2 be the centre of circle (i) and (ii), respectively and r1 and r2 be their radii, then

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce, Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce, Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Here we find the two circles touch each other internally or externally.

For touch, |C1C2| = |r1 ± r2|  or  Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce  

On squaring Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce     

or  Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Again squaring,    Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce or   Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce    or       Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 

The Angle of Intersection of Two Circles

Definition: The angle between the tangents of two circles at the point of intersection of the two circles is called angle of intersection of two circles. If two circles are

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and θ is the angle between them

then     Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce   or   Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Here a1 and a2 are the radii of the circles and d is the distance between their centres.

If the angle of intersection of the two circles is a right angle then such circles are called "Orthogonal circles" and conditions for the circles to be orthogonal is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce


Radical Axis of the Two Circles (S1 - S2 = 0)

➢ Definition : The locus of a point, which moves in such a way that the length of tangents drawn from it to the circles are equal and is called the radical axis.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

It two circles are -

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Let P(h, k) is a point and PA, PB are length of two tangents on the circles from point P. Then from definition : Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce = Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce      or          Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce locus of (h, k)     

⇒  Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce    ⇒S1 - S2 = 0

which is the equation of radical axis.

Notes :

(i) To get the equation of the radical axis first of all make the coefficient of x2 and y2 = 1

(ii) If circles touch each other then Radical axis is the common tangent to both the circles.

(iii) When the two circles intersect on real points then common chord is the Radical axis of the two circles.

(iv) The Radical axis of the two circles is perpendicular to the line joining the centre of two circle of two circles but not always pass through mid point of it.

(v) The Radical axis of three circles (Taking two at a time) meet on a point.

(vi) If circles are concentric then the Radical axis does not always exist but if circles are not concentric then Radical axis always exists.
(vii) If two circles are orthogonal to the third circle then Radical axis of both circles passes through the centre of the third circle.

(viii) A system of circle, every pair of which have the same radical axis, is called a coaxial system of circles.

➢ Radical centre

  • The radical centre of three circles is the point form which length of tangents on three circles are equal i.e. the point of intersection of radical axis of the circles is the radical centre of the circles. To get the radical axis of three circles S1 = 0, S2 = 0, S3 = 0 we have to solve any two S1 - S2 = 0, S2 - S3 = 0, S3 - S1 = 0

Notes :

(i) The circle with centre as radical centre and radius equal to the length of tangent from radical centre to any of

the circle, will cut the three circles orthogonally.

(ii) If three circles are drawn on three sides of a triangle taking them as diameter then its orthocentre will be its radical centre.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

(iii) Locus of the centre of a variable circle orthogonal to two fixed circles is the radical axis between the two fixed circles.

(iv) If two circles are orthogonal, then the polar of a point `P' on first circle w.r.t. the second circle passes through the point Q which is the other end of the diameter through P. Hence locus of a point which moves such that its polars w.r.t. the circles, S1 = 0, S2 = 0 & S3 = 0 are concurrent is a circle which is orthogonal to all the three circles.


Example 18. A and B are two fixed points and P moves such that PA = nPB where Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce Show that locus of P is a circle and for different values of n all the circles have a common radical axis.

Sol. Let Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce       so PA = nPB       

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce         

   Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Hence locus of P is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce, which is a circle of different values of n.

Let n1 and n2 are two different values of n so their radical axis is x = 0 i.e. y-axis. Hence for different values of n the circle have a common radical axis.


Example 19. Find the equation of the circle through the points of intersection of the circles x2 + y2 - 4x - 6y - 12 = 0 and x2 + y2 + 6x + 4y - 12 = 0 and cutting the circle x2 + y2 - 2x - 4 = 0 orthogonally.

Sol. The equation of the circle through the intersection of the given circles is

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce                   ...(i)

where Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is the equation of radical axis for the circle

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce  and                    

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Equation (i) can be rearranged as Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

It cuts the circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce orthogonally.

Hence Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce 

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Hence the required circle is

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce    i.e., Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce


Example 20. Find the radical centre of circle Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce, Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce. Also find the equation of the circle cutting them orthogonally.

Sol. Given circles are          

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

 Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce      

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Equation of two radical axes are  Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce  or   Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

and   Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce  or Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Solving them the radical centre is (3, 2) also, if r is the length of the tangent drawn from the radical centre (3, 2) to any one of the given circles, S1, we have Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Hence (3, 2) is the centre and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is the radius of the circle intersecting them orthogonally.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce Its equation is 

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce         

⇒    x2 + y2 - 6x - 4y - 14 = 0

Alternative Method : 

Let Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce be the equation of the circle cutting the given circles orthogonally.

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce or  Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce              ...(i)

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce    or  Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce            ...(ii)

and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce or   Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce           ...(iii)

Solving (i), (ii) and (iii) we get Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce and Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce equation of required circle is Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce

The document Circle: Theorems and Equation | Mathematics (Maths) Class 11 - Commerce is a part of the Commerce Course Mathematics (Maths) Class 11.
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FAQs on Circle: Theorems and Equation - Mathematics (Maths) Class 11 - Commerce

1. What are the basic theorems and results of circles?
Ans. The basic theorems and results of circles include the theorem on cyclic quadrilaterals, the concept of tangents to a circle, and the standard equations of a circle.
2. What is Theorem 4 related to circles?
Ans. Theorem 4 in the context of circles is not specified in the given article. It is recommended to refer to the article or textbook for the specific details of Theorem 4.
3. How are tangents related to circles?
Ans. Tangents to a circle are lines that intersect the circle at exactly one point. They are perpendicular to the radius drawn to the point of tangency. Tangents play a crucial role in understanding the properties and geometry of circles.
4. What are cyclic quadrilaterals?
Ans. Cyclic quadrilaterals are quadrilaterals whose four vertices lie on a single circle. The opposite angles of a cyclic quadrilateral are supplementary, meaning that they add up to 180 degrees.
5. What are the standard equations of a circle?
Ans. The standard equation of a circle in the coordinate plane is given by (x - h)^2 + (y - k)^2 = r^2, where (h, k) represents the coordinates of the center of the circle and r represents the radius. This equation helps in describing the position, size, and shape of a circle.
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