NCERT Solution for Circles
What is the Chord of a Circle?
A line segment, which joins any two points on the circle’s circumference, is known as a chord of the circle. Diameter is the largest chord which passes through the centre of the circle.
Let us consider a circle, which has AB as diameter, CD is the chord of the circle and OE is the radius. See the figure below.
Let us see the different circle theorems.
Circles Theorem Class 9
In Class 9, students will come across the basics of circles. Here, we will learn different theorems based on the circle’s chord. The theorems will be based on these topics:
- Angle Subtended by a Chord at a Point
- The perpendicular from the Centre to a Chord
- Equal Chords and their Distances from the Centre
- Angle Subtended by an Arc of a Circle
- Cyclic Quadrilaterals
Now let us learn all the circle theorems and proofs.
Circle Theorems and Proofs
Theorem 1:
“Two equal chords of a circle subtend equal angles at the centre of the circle.
Proof: Given, in ∆AOB and ∆POQ,
AB = PQ (Equal Chords) …………..(1)
OA = OB= OP=OQ (Radii of the circle) ……..(2)
From eq 1 and 2, we get;
∆AOB ≅ ∆POQ (SSS Axiom of congruency)
Therefore, by CPCT (corresponding parts of congruent triangles), we get;
∠AOB = ∠POQ
Hence, Proved.
Converse of Theorem 1:
“If two angles subtended at the center by two chords are equal, then the chords are of equal length.”
Proof: Given, in ∆AOB and ∆POQ,
∠AOB = ∠POQ (Equal angle subtended at centre O) ……………(1)
OA = OB = OP = OQ (Radii of the same circle) ……………(2)
From eq. 1 and 2, we get;
∆AOB ≅ ∆POQ (SAS Axiom of congruency)
Hence,
AB = PQ (By CPCT)
Theorem 2:
“The perpendicular to a chord bisects the chord if drawn from the centre of the circle.”
In the above figure, as per the theorem, OD ⊥ AB, therefore, AD = DB.
Proof: Given, in ∆AOD and ∆BOD,
∠ADO = ∠BDO = 90° (OD ⊥ AB) ………(1)
OA = OB (Radii of the circle) ……….(2)
OD = OD (Common side) ………….(3)
From eq. (1), (2) and (3), we get;
∆AOB ≅ ∆POQ (R.H.S Axiom of congruency)
Hence, AD = DB (By CPCT)
Converse of Theorem 2:
“A straight line passing through the centre of a circle to bisect a chord is perpendicular to the chord.”
Proof: Given, in ∆AOD and ∆BOD,
AD = DB (OD bisects AB) ………….(1)
OA = OB (Radii of the circle) ………….(2)
OD = OD (Common side) …………..(3)
From eq. 1, 2 and 3, we get;
∆AOB ≅ ∆POQ (By SSS Axiom of congruency)
Hence,
∠ADO = ∠BDO = 90° (By CPCT)
EXERCISE 10.2 class IX
Theorem 3:
“Equal chords of a circle are equidistant (equal distance) from the centre of the circle.”
Construction: Join OB and OD
Proof: Given, In ∆OPB and ∆OQD
BP = 1/2 AB (Perpendicular to a chord bisects it) ……..(1)
DQ = 1/2 CD (Perpendicular to a chord bisects it) ……..(2)
AB = CD (Given)
BP = DQ (from eq 1 and 2)
OB = OD (Radii of the same circle)
∠OPB = ∠OQD = 90° (OP ⊥ AB and OQ ⊥ CD)
∆OPB ≅ ∆OQD ( By R.H.S Axiom of Congruency)
Hence,
OP = OQ ( By CPCT)
EXERCISE 10.2 class IX
Converse of Theorem 3:
“Chords of a circle, which are at equal distances from the centre are equal in length, is also true.”
Proof: Given, in ∆OPB and ∆OQD,
OP = OQ ………….(1)
∠OPB = ∠OQD = 90° ………..(2)
OB = OD (Radii of the same circle) ………..(3)
Therefore, from eq. 1, 2 and 3, we get;
∆OPB ≅ ∆OQD (By R.H.S Axiom of Congruency)
BP = DQ ( By CPCT)
1/2 AB = 1/2 CD (Perpendicular from center bisects the chord)
Hence,
AB = CD
Theorem 4:
“Measure of angles subtended to any point on the circumference of the circle from the same arc is equal to half of the angle subtended at the center by the same arc.”
From the above figure,
∠AOB = 2∠APB
Construction: Join PD passing through centre O
Proof: In ∆AOP,
OA = OP (Radii of the same circle) ………..(1)
∠OAP = ∠OPA (Angles opposite to equal sides of a triangle) …………(2)
∠AOD = ∠OAP + ∠OPA (Exterior Angle Property of the triangle) …………(3)
Hence, from eq. 2 and 3 we get;
∠AOD = 2∠OPA ………….(4)
Similarly in ∆BOP,
Exterior angle, ∠BOD = 2 ∠OPB …………(5)
∠AOB = ∠AOD + ∠BOD
From eq. 4 and 5, we get;
⇒ ∠AOB = 2∠OPA + 2∠OPB
⇒ ∠AOB = 2(∠OPA + ∠OPB)
⇒ ∠AOB = 2∠APB
Hence, proved.
EXERCISE 10.2 class IX
Theorem 5:
“The opposite angles in a cyclic quadrilateral are supplementary.”
Proof:
Suppose, for arc ABC,
∠AOC = 2∠ABC = 2α (Theorem 4) …………….(1)
Consider for arc ADC,
Reflex ∠AOC = 2 ∠ADC = 2β (Theorem 4) …………..(2)
∠AOC + Reflex ∠AOC = 360°
From eq. 1 and 2, we get;
⇒ 2 ∠ABC + 2∠ADC = 360°
⇒ 2α + 2β = 360°
⇒α + β = 180°