Trigonometry

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12

EVALUATING π

The area of a circle

An inscribed polygon

The ratio of a chord to the diameter

The area of a circle

π IS THE RATIO of the circumference of a circle to the diameter. But how shall we compare a curved line to a straight line? The answer is that we cannot do it directly. We can only relate straight lines to straight lines, and so we must approximate a curved line by a series of straight lines.  In this case, we approximate the circle by an inscribed polygon or a circumscribed polygon.

Inscribed and circumscribed polygons.

The perimeter of the inscribed polygon will be less than the circumference of the circle, while the perimeter of the circumscribed polygon will be greater. We can then form the ratio of each perimeter to the diameter. That will produce a lesser and a greater approximation to π. Clearly, the more sides we take, the better the value.

An inscribed polygon

Each side of an inscribed polygon is a chord of the circle.  The perimeter of the polygon will be the sum of all the chords.  From the following theorem we are able to evaluate π:

The ratio of a chord of a circle to the diameter
is given by the sine of half the central angle
that the chord subtends.

The ratio of chord to diameter

We say that a chord subtends -- literally, stretches under -- a central angle.

Thus if AB is a chord of a circle, and CD its diameter, then

AB
CD
  =  sin  θ
2
.

Before proving this theorem, let us give some examples.

Example 1.   A chord subtends a central angle of 100°.  What ratio has the chord to the diameter?

Answer.  According to the theorem,

  Chord  
Diameter
  =  sin ½(100°)
  Chord  
Diameter
  =  sin 50°
  Chord  
Diameter
  =  .766,   from the Table.

This means that the chord is 766 thousandths -- or a bit more than three fourths -- of the diameter.

Problem 1.   What ratio to the diameter has a chord that subtends a central angle of 60°?

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  Chord  
Diameter
  =  sin ½(60°) = sin 30° = ½

This chord is half of the diameter.  This chord is equal to the radius!

Example 2.   A regular polygon of 8 sides is inscribed in a circle.  What central angle does each side subtend?  What ratio has each side to the diameter?  What ratio has the entire perimeter to the diameter?

Answer.  Since the polygon has 8 sides, then each central angle is an eighth of the entire circle, that is, an eighth of 360°.   360° ÷ 8 = 45°.

Next,

  Chord  
Diameter
  =  sin ½(45°)
  Chord  
Diameter
  =  sin 22.5°
  Chord  
Diameter
  .383,   from the Table.

As for the entire perimeter, it is made up of 8 such chords.  Therefore, the ratio of the perimeter to the diameter will be

8 × .383 = 3.064

This is an approximation to π!  Although not a very good one, because we have approximated the circumference with a polygon of only 8 sides.

Problem 2.   Let a regular polygon of 20 sides be inscribed in a circle.

a)  Each side subtends what central angle?   360° ÷ 20 = 18°

b)  What ratio has each side to the diameter?  (Table)

  Chord  
Diameter
  =  sin ½(18°) = sin 9° = .156
  c)   What ratio has entire perimeter to the diameter?  That is,
  approximate π.

The entire perimeter, is made up of 20 such chords. Therefore, the ratio of the perimeter to the diameter will be

20 × .156 = 3.12

We can generalize what we have done as follows.  Let us inscribe in a circle a polygon of n sides.  Then each side will subtend a central angle θ,

θ  =   360°
  n  

Therefore,

θ
2
  =   180°
  n  
,
  Chord  
Diameter
  =  sin  180°
  n  

And therefore, since π is the ratio of n such chords to the diameter:

πn sin  180°
  n  

We shall use this below when we prove that the area of A circle is

A =  π
4
.

Here is the proof of the ratio of a chord to the diameter.

Theorem. The ratio of a chord of a circle to the diameter is given by the sine of half the central angle that the chord subtends.

Let E be the center of a circle with chord AB, diameter CD, and central angle AEB, which we will call θ; then

AB
CD
 = sin θ
2
.

Draw EF so that it bisects angle θ.  Then EF is also the perpendicular bisector of AB,

because EA and EB are radii, and so triangle AEB is isosceles.
(
Theorem 2)

Therefore,

AF   =   ½ AB .
 
  And since EA is a radius,
 
EA   =   ½ CD .

Now,

AF
EA
  =   sin  θ
2
.
 
  That is,
 
½ AB
½ CD
  =   sin  θ
2
.
 
  Therefore on multiplying both terms by 2,
 
AB
CD
  =   sin  θ
2
.
 
  Chord  
Diameter
  =   sin  θ
2
.

This is what we set out to prove.


The area of a circle

Theorem.  The area A of a circle is

A =  πr²  or   π
4

where r is the radius of the circle, and D is the diameter.

Proof.  Let a regular polygon of n sides be inscribed in a circle of radius r, and let s be the length of each side.

Let us divide the polygon into n isosceles triangles, and let us denote the area of each triangle by AT.  Then the sum of those n triangles will approximate the area of the circle.

Now the area of each triangle is half the base s times the height h.

AT  =  ½sh .  .  .  .  .  .  .  .  .  (1)

We will now express both s and h in terms of the radius r, and then substitute those expressions in line (1).

As we saw above, each chord s subtends a central angle of   360°
  n  
.

And the side of each isosceles triangle is the radius r.  Therefore,

h
r
  =  cos ½  360°
  n  
  =  cos  180°
  n

or,

h  =  r cos  180°
  n  
.  .  .  .  .  .  .  . (2)

Also,

s/2
  r
  =  sin  180°
  n  

so that

s  =  2r sin  180°
  n  
.  .  .  .  .  .  .  . (3)

Upon substituting lines (3) and (2) into line (1), we have

AT = ½sh   =   ½· 2r sin  180°
  n  
· r cos  180°
  n  
AT = ½sh   =   r² sin  180°
  n  
· cos  180°
  n  

This is the area of one of the triangles.  The area A of the entire circle is approximated by all n triangles:

A = nAT   =   n· r² sin  180°
  n  
· cos  180°
  n  

But we have seen that

n sin  180°
  n  
π.

Therefore, finally,

Aπr² cos 180°
  n  
.  .  .  .  .  .  .  . (4)

Suppose now that the number of sides n is an enormously large number -- more than the number of stars in the entire universe!  Then

  the polygon will "exhaust" the circle.   The central angle   180°
  n  
  (line 4)

will be indistinguishable from 0°.  We will have

A = πr² cos 0°.

But cos 0° = 1.  Therefore,

A = πr².

Or, on replacing r² with ( D
2
)² = 
 4
,
A   =   π
4
D².

This is what we wanted to prove.

When n is an extremely large number, then in the language of calculus, "The limit as n becomes infinite of

Next Topic:  Measurement of Angles

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