Circle Measures

The figure is given below:

Let ABC be a triangle

AD, BE and CF are medians intersecting at point O.

In triangles ABD and ACD,

BD = CD (AD is the median)

∠ABD = ∠ACD = 60°

AB = AC (Equilateral Triangle)

∴ triangles ABD and ACD are congruent.

∴ ∠BAD = ∠CAD = 30°

In triangle ABD

Sum of all angles of a triangle = 180°

∴ ∠ABD + ∠DAB + ∠ADB = 180°

∴ 60° + 30° + ∠ADB = 180°

90° + ∠ADB = 180°

∴ ∠ADB = 180° – 90° = 90°

∴ ∠ADC = 180 – ∠ADB (Supplementary angles)

= 180 – 90°

= 90°

Similarly,

∠OBD = ∠OCD = 30° …(eq)1

In triangles OBD and OCD,

∠OBD = ∠OCD = 30° (from eq 1)

∠ADB = ∠ADC = 90°

OD = OC is a common side

By RHS criterion,

Triangles OBD and OCD are congruent.

∴ OB = OC

Similarly, OC = OA and OA = OB

∴ OA = OB = OC

Hence, pt. O is a circumcentre and also a intersection of medians.

Hence, the circumcentre of an equilateral triangle is the same

as its centroid.

i)

Diameter of circle = 1 centimetre

∴ Radius of circle = cm = 0.5 cm

As proved above, the circumcentre of an equilateral triangle is the same as its centroid.

Also, centroid divides equilateral in the ratio 2:1

∴ radius

∴

∴ = × 0.5 =

But, for an equilateral triangle,

Height of triangle =

=

∴ side of triangle =

ii) Perimeter of triangle = Sum of all sides of triangle

As for an equilateral triangle, all sides are equal

Let a = side of triangle =

Perimeter of triangle = a + a + a = 3a = cm

The figure is shown below:

The square ABCD is inscribed within the circle.

Diameter of circle, DB = 1 cm

∴ Radius of circle = cm = 0.5 cm

As seen in figure,

Diameter of circle = side of square

∴ the diagonal of the square = 1 cm

For a square,

If side = “s” cm, then,

Diagonal of square, AC² = s² + s²

⇒ AC² = 2s²

⇒ AC = √2 = 1

∴ a =

Perimeter of a square = 4 × Side of square

=

=

=

The figure is shown below:

Diameter of circle, CF = 1 centimetre

∴ Radius of circle = cm = 0.5 cm

As can be seen from figure,

Radius of circle = Side of Hexagon

∴ Side of Hexagon = 0.5 cm

Perimeter of Hexagon = 6 × Side of Hexagon

= 6 × 0.5

= 3 cm

Given:

Perimeter of Hexagon = 24 cm

Let a = side of Hexagon

But, Perimeter of Hexagon = 6 × side of Hexagon

24 = 6 × a

∴ a = 24/6=4

As can be seen from figure,

Radius of circle = Side of Hexagon

∴ Radius of circle = a = 4 cm

i) Diameter of circle = 2 × radius

= 2 × 4

= 8 cm

As seen in figure,

Diameter of circle = Diagonal of square

Diagonal of square = 8 cm

For a square,

If side = a cm

Diagonal of square = = 8

∴

Perimeter of square = 4 × side of square

=

=

= cm

ii) Diameter of circle =2 × Initial diameter

=2 × 8=16 cm

As seen in figure,

Diameter of circle = Diagonal of square

Diagonal of square = 16 cm

For a square,

If side = a cm

Diagonal of square = √2a = 16

∴

Perimeter of square = 4 × side of square

=

=

= cm

iii)

Diameter of circle =1/2 × Initial diameter

=

∴ Radius of circle = cm = 2 cm

As proved earlier, the circumcentre of an equilateral triangle is the same as its centroid.

Also, centroid divides equilateral in the ratio 2:1

∴ radius =

∴ 2 =

∴ height of triangle = × 2 = 3

But, for an equilateral triangle,

Height of triangle =

3 =

∴ side of triangle = 3

Perimeter of equilateral triangle =

=

=

= cm

Diameter of circle = 4 cm

Length of wire = Circumference of circle

If r = radius of circle

Circumference of circle = 2 × π × r=2 × π × 4

=8 × π

If length of wire is halved,

Circumference is also halved

∴ New Circumference = 1/2 × (8 × π)= 4 × π

Let r^’be new radius

∴ 2 × π × r'= New Circumference = 4 × π

∴ r^’ =

Hence, New diameter = 2 × r'= 2 × 2=4 cm

If r = radius of circle

Perimeter = Circumference of circle = 2 × π × r

When, diameter=2 m

Radius =

Perimeter = 2 × π × 1=6.28 …(eq)1

When, diameter=3 m

Radius =

Perimeter = 2 × π × 1.5=1.5 × (2 × π × 1)

= 1.5 × 6.28 …from (eq)1

= 9.42 m

Case (i) for regular hexagon:

In the figure given below:

Side of regular hexagon = 2 cm

In this figure,

Radius of circle = Side of hexagon = 2cm

In triangle OAB,

∠OAB = ∠OBA = 60° (OA = OB = radius = 2 cm)

If r = radius of circle

Circumference = 2 × π × r

Hence, perimeter of each circle = 2 × π × 2≈4 × 3.14 = 12.56 cm

Case (ii) for square:

The figure is shown below:

In triangle OAB,

OA = OB = radius

In triangle OAB,

∠OAB = ∠OBA = 45°

Sum of all angles of a triangle = 180°

∠OAB + ∠OBA + ∠AOB = 180°

45° + 45° + ∠AOB = 180°

90° + ∠AOB = 180°

∴ ∠AOB = 180-90 = 90°

By Pythagoras theorem,

(Hypotenuse)² = (One side)² + (Other side)²

(AB)² = (OA)² + (OB)²

2² = 2 × (OA)² (OA = OB)

∴ (OA)² =

OA = √2 = radius

If r = radius of circle

Circumference = 2 × π × r

Hence, perimeter of each circle = 2 × π × √2

≈4 × 3.14 = 8.87 cm

Case (iii) for rectangle drawn within the circle. The figure is displayed below:

In triangle ABC,

∠ABC = 90° (angle subtended in the semicircle is right angle).

By pythagoras theorem,

(Hypotenuse)² = (One side)² + (Other side)²

∴ (AC)² = (AB)² + (AC)²

∴ (AC)² = 2² + 1.5²

∴ (AC)² = 4 + 2.25 = 6.25

∴ AC = √6.25 = 2.5 = Diameter of circle.

∴ Radius =

If r = radius of circle

Circumference = 2 × π × r

∴ Perimeter = 2 × π × r≈2 × 3.14 × 1.25 = 7.85 cm

The figure is shown below:

Let OA = radius of circle.

AD = 1 cm

OA = r

∴ OD = 1-r

OA = OB = r

In triangle OBD,

∠ODB = 90°

AB = AC and AD is perpendicular on BC from point A.

∴ BD = DC =

∴ By pythagoras theorem,

(Hypotenuse)² = (One side)² + (Other side)²

∴ (OB)² = (OD)² + (BD)²

∴ r² = (1-r)² + ()²

∴ r²- (1-r)² =

∴ (r + {1-r})(r-{1-r}) = {a²-b² = (a + b) × (a-b)}

∴ 1 × (2r-1) =

∴ 2r =

∴ r =

If r = radius of circle

Circumference =

∴ Perimeter =

Let R = radius of larger circle in all figures.

If r = radius of circle

Circumference =

∴ Perimeter of large circle = …(eq)1

In first figure,

Diameter of larger circle = 2 × Diameter of smaller circle(as seen from figure)

Hence,

Diameter of smaller circle =

∴ Radius of smaller circle = (Radius = )

Let r = Radius of smaller circle

∴ r =

Perimeter of a smaller circle = 2 × π × r

= 2 × π × = π × R

Perimeter of 2 smaller circles = 2 × (π × R) = …(eq)1

Hence, proved.

In second figure,

Diameter of larger circle = 3 × Diameter of smaller circle(as seen from figure)

Hence,

Diameter of smaller circle =

∴ Radius of smaller circle = (Radius = )

Let r = Radius of smaller circle

∴ r =

Perimeter of a smaller circle = 2 × π × r

= 2 × π × R

Perimeter of 3 smaller circles = 3 × ( × π × R) = …(eq)1

Hence, proved.

In 3^rd figure,

There are 3 small circles.

Right half has radius =

Perimeter of right half = 2 × π × = π × R …(eq)2

The left half’s radius is divided in the ratio 1:2

Hence, radius of smallest circle =

Hence, radius of middle circle =

Perimeter of smallest circle = 2 × π × …(eq)3

Perimeter of middle circle = …(eq)4

Sum of perimeter of all circles = (eq)2 + (eq)3 + (eq)4

= (π × R) + (π × ) + (2 × π × )

= π × R …(same as (eq)1)

Hence, proved.

The figure is shown below:

Diameter of larger circle = 1 cm

Hence, diameter of smaller circle = cm

Let r = Radius of smaller circle =

If r = radius of circle

Circumference =

As seen from figure,

Radius of Larger circle = 2r

Perimeter of smaller circle = 2 × π × r …(eq)2

Perimeter of larger circle = 2 × π × (2r) = 4 × π × r …(eq)1

Perimeter of larger circle is = (eq)1 – (eq)2

More then smaller circle by

= (4 × π × r) – (2 × π × r)

= 2 × π × r

As seen in figure 1,

Diameter of circle = Diagonal of square

∴ Diameter of circle = 4 cm

∴ Radius of circle =

If r = radius of circle

Area of circle = r² cm²

= 2²

= cm²

As seen in figure 2,

Diameter of circle = 4 cm

∴ Radius of circle =

As can be seen from figure 2,

Radius of circle = Side of Hexagon

∴ Side of Hexagon = 2 cm

The regular hexagon is made of 6 equilateral triangles.

Area of polygon (here, regular hexagon) = 6 × Area of triangle

Side of Hexagon = Side of triangle = 2 cm

Area of equilateral triangle = (side)²

= 2²

= cm²

Area of polygon (here, regular hexagon) = 6 × Area of triangle

= cm²

∴ Difference between = Area of circle – Area of polygon

Areas

= (4 × π)-(6 × √3)

= (3.14159)-(1.73205)

= 12.56636-10.3923

= 2.17406

≈2.17(upto 2 decimal places).

For figure 1,

Side of square = 3 cm

If, Side of square = a cm

Diagonal of square = =

As seen in figure,

Diameter of circle = Diagonal of square

∴ Diameter of circle = √2 × 3 cm

∴ Radius of circle =

If r = radius of circle

Area of circle = π × r² cm²

= ()²

= cm²

≈3.144.5

≈14.13 cm²

For figure 2,

From Pythagoras theorem,

(Hypotenuse)² = (one side)² + (other side)²

Diagonal of rectangle = (4² + 2²)^1/2

= (16 + 4)^1/2

= √20 cm

As seen from figure,

Diagonal of rectangle = Diameter of circle = √20 cm

∴ Radius of circle =

If r = radius of circle

Area of circle = π × r² cm²

= ()²

= cm²

≈3.1415200

≈628.3 cm²

X = 40°

Length of arc = 3cm

In a circle of radius r,

If central angle = x°

Length of arc =

Putting in above equation,

3 =

∴ 3 =

∴ = r

∴ r≈3 cm

If r = radius of circle,

Perimeter = 2 × π × r

Hence, Perimeter = 2 × π × 3 ≈18.84 cm

In a circle of radius r,

If central angle = x°

Length of arc =

Here,

x = 25°

r = 4 cm

Length of arc =

i) Here,

x = 75°

r = 4 cm

Length of arc =

ii) Here,

x = 25°

r = 1.5 × 4 = 6 cm

Length of arc =

i) Radius of bangle = 3 cm

Radius of ring =

If r = radius of circle

Circumference of circle = 2 × π × r cm

∴ Length of ring = 2 × π × = π cm

Hence, length of arc = π cm

In a circle of radius r,

If central angle = x°

Length of arc =

Here r = 3 cm

π =

∴ = x

∴ x =

ii) Length of remaining part = Length of bangle-Length of smaller part

= (2 × π × 3)-(π)

= 5 × π ≈15.7 cm

Let a be the new radius

Since,

Circumference = 2 × π × a

15.7 = 2 × π × a

∴ a =

Radius = r = 3 cm

If x° is the angle at subtended at the sector,

Area of sector = r²

Here, x = 120°

∴ Area = π× 3²cm²

If r₂ = 6 cm

∴ Area = π× 6² = cm²

Inner radius = r = 2 cm

Outer radius = R = 4 cm

Area of shaded part = Area of larger sector –Area of smaller sector

If x° is the angle at subtended at the sector,

Area of sector = r²

Here, x = 120°

Area of larger sector = 4²× π =

Area of smaller sector = 2²× π =

Area of shaded part = Area of larger sector –Area of smaller sector

= –

cm²

As seen from the figure,

Radius of each arc =

For a regular polygon with n sides,

Sum of angles = (n-2)× 180°

Here, n = 6

∴ Sum of angles = (6-2)× 180

= 4× 180

= 720°

Hence, each angle =

Thus for each sector,

X = 120°

r = 1 cm

If x° is the angle at subtended at the sector,

Area of sector = r²

∴ Area of sector = 1² = cm²

Area of 6 sectors = cm²

As the hexagon is made up of 6 equilateral triangles,

Area of polygon = 6× Area of equilateral triangle with side as 2 cm

If a = side

Then area of triangle = (side)²

Here, side = 2 cm

∴ area of a triangle = (2)² = cm²

∴ area of polygon = 6× √3 = 6√3 cm²

∴ area of shaded region = area of polygon-area of 6 sectors

= 6√3 – 2π = 4.112 cm²