SMK BAHASA MALAYSIA SARATOK95400 SARATOK
BETONG,SARAWAK.
PROJECT WORK FORADDITIONAL MATHEMATICS 2009
CIRCLES IN OUR DAILY LIFE
NAME : FIFINENI BINTI SABINI
CLASS : 5 SCIENCE AMANAH
IC NUMBER : 920819-13-5504
SUBJECT TEACHER : MR.RAMLEE BIN SERUJI
DUE DATE : 26TH MAY 2009
[ CONTENT ]
INTRODUCTION…………………………………………..1
AIM………………………………………………………….2
PART 1…………………………………………………...3 - 6
PART 2……………………………………………….…..7 - 8
PART 3………………………………………………….9 - 12
CONCLUSION………………………………………...13 - 14
ACKNOWLEDGEMENT…………………………………..15
[ INTRODUCTION ]
Circle is a simple shape of Euclidean geometry consisting of those points in a
plane which are the same distance from a given point called the centre. The common
distance of the points of a circle from its center is called its radius. A diameter is a line
segment whose endpoints lie on the circle and which passes through the centre of the
circle. The length of a diameter is twice the length of the radius. A circle is never a
polygon because it has no sides or vertices.
Circles are simple closed curves which divide the plane into two regions, an
interior and an exterior. In everyday use the term "circle" may be used interchangeably to
refer to either the boundary of the figure (known as the perimeter) or to the whole figure
including its interior, but in strict technical usage "circle" refers to the perimeter while the
interior of the circle is called a disk. The circumference of a circle is the perimeter of the
circle (especially when referring to its length).
A circle is a special ellipse in which the two foci are coincident. Circles are conic
sections attained when a right circular cone is intersected with a plane perpendicular to
the axis of the cone.The circle has been known since before the beginning of recorded
history. It is the basis for the wheel, which, with related inventions such as gears, makes
much of modern civilization possible. In mathematics, the study of the circle has helped
inspire the development of geometry and calculus.
Early science, particularly geometry and Astrology and astronomy, was connected
to the divine for most medieval scholars, and many believed that there was something
intrinsically "divine" or "perfect" that could be found in circles.
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[ AIM ]
The aims of carrying out this project work are :
i. to apply and adapt a variety of problem-solving strategies to solve problem;
ii. to improve thinking skills;
iii. to promote effective mathematical communication;
iv. to develop mathematical knowledge through problem solving in a way that increases students’ interest and confidence;
v. to use the language of mathematics to express mathematical ideas precisely;
vi. to provide learning environment that stimulates and enhances effective learning;
vii. to develop positive attitude towards mathematics.
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PROJECT WORK
[ PART 1 ]
(a) There are lot of things around us that related to circle.In this project,I choose some circle things that been used in our daily life.
1) RING
2 ) COIN 3) WATCH
4) PLATE 5) FAN
( 3 )
(b) Definition and history of π
Definition
In Euclidean plane geometry, π is defined as the ratio of a circle's circumference to its
diameter:
The ratio C/d is constant, regardless of a circle's size. For example, if a circle has twice
the diameter d of another circle it will also have twice the circumference C, preserving
the ratio C/d.
Area of the circle = π × area of the shaded square
Alternatively π can be also defined as the ratio of a circle's
area (A) to the area of a square whose side is equal to the
radius:[3][5]
These definitions depend on results of Euclidean geometry, such as the fact that all
circles are similar. This can be considered a problem when π occurs in areas of
mathematics that otherwise do not involve geometry. For this reason, mathematicians
often prefer to define π without reference to geometry, instead selecting one of its
analytic properties as a definition. A common choice is to define π as twice the smallest
positive x for which cos(x) = 0.[6] The formulas below illustrate other (equivalent)
definitions.
( 4 )
History
The ancient Babylonians calculated the area of a circle by taking 3 times the
square of its radius, which gave a value of pi = 3. One Babylonian tablet (ca. 1900–1680
BC) indicates a value of 3.125 for pi, which is a closer approximation.
In the Egyptian Rhind Papyrus (ca.1650 BC), there is evidence that the Egyptians
calculated the area of a circle by a formula that gave the approximate value of 3.1605 for
pi.
The ancient cultures mentioned above found their approximations by
measurement. The first calculation of pi was done by Archimedes of Syracuse (287–212
BC), one of the greatest mathematicians of the ancient world. Archimedes approximated
the area of a circle by using the Pythagorean Theorem to find the areas of two regular
polygons: the polygon inscribed within the circle and the polygon within which the circle
was circumscribed. Since the actual area of the circle lies between the areas of the
inscribed and circumscribed polygons, the areas of the polygons gave upper and lower
bounds for the area of the circle. Archimedes knew that he had not found the value of pi
but only an approximation within those limits. In this way, Archimedes showed that pi is
between 3 1/7 and 3 10/71.
( 5 )
A similar approach was used by Zu Chongzhi (429–501), a brilliant Chinese
mathematician and astronomer. Zu Chongzhi would not have been familiar with
Archimedes’ method—but because his book has been lost, little is known of his work. He
calculated the value of the ratio of the circumference of a circle to its diameter to be
355/113. To compute this accuracy for pi, he must have started with an inscribed regular
24,576-gon and performed lengthy calculations involving hundreds of square roots
carried out to 9 decimal places.
Mathematicians began using the Greek letter π in the 1700s. Introduced by
William Jones in 1706, use of the symbol was popularized by Euler, who adopted it in
1737.An 18th century French mathematician named Georges Buffon devised a way to
calculate pi based on probability.
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PB
C
R
Q
A
d1 d2
10 cm
[ PART 2 ]
Diagram 1
Diagram 1 shows a semicircle PQR of diameter 10cm. Semicircles PAB and BCR of
diameter d1 and d2 respectively are inscribed in PQR such that the sum of d1 and d2 is
equal to 10cm. By using various values of d1 and corresponding values of d2, I determine
the relation between length of arc PQR, PAB, and BCR.
Using formula: Arc of semicircle = ½πd
d1
(cm)
d2
(cm)
Length of arc PQR in
terms of π (cm)
Length of arc PAB in
terms of π (cm)
Length of arc BCR in
terms of π (cm)
1 9 5 π ½ π 9/2 π
2 8 5 π π 4 π
3 7 5 π 3/2 π 7/2 π
4 6 5 π 2 π 3 π
5 5 5 π 5/2π 5/2 π
6 4 5 π 3 π 2 π
7 3 5 π 7/2 π 3/2 π
8 2 5 π 4 π π
9 1 5 π 9/2 π ½ π
Table 1
From the Table 1 we know that the length of arc PQR is not affected by the different in d1
and d2 in PAB and BCR respectively. The relation between the length of arcs PQR , PAB
and BCR is that the length of arc PQR is equal to the sum of the length of arcs PAB and
BCR, which is we can get the equation:
SPQR = SPAB + SBCR
Let d1= 3, and d2 =7 SPQR = SPAB + SBCR
5π = ½ π(3) + ½ π(7)
5π = 3/2 π + 7/2 π
5π = 10/2 π
5π = 5 π
( 8 )
AB
F
C
D
E
x cm 10 cm
[ PART 3 ]
Flower Pot
Fish Ponds
Diagram 3
(a) Area of flower plot = y m2
y = (25/2) π - (1/2(x/2)2 π + 1/2((10-x )/2)2 π)
= (25/2) π - (1/2(x/2)2 π + 1/2((100-20x+x2)/4) π)
= (25/2) π - (x2/8 π + ((100 - 20x + x2)/8) π)
= (25/2) π - (x2π + 100π – 20x π + x2π )/8
= (25/2) π - ( 2x2 – 20x + 100)/8) π
= (25/2) π - (( x2 – 10x + 50)/4)
= (25/2 - (x2 - 10x + 50)/4) π
y = ((10x – x2)/4) π
( 9 )
(b) y = 16.5 m2
16.5 = ((10x – x2)/4) π
66 = (10x – x2) 22/7
66(7/22) = 10x – x2
0 = x2 – 10x + 21
0 = (x-7)(x – 3)
x = 7 , x = 3
(c) y = ((10x – x2)/4) π
y/x = (10/4 – x/4) π
x 1 2 3 4 5 6 7y/x 7.1 6.3 5.5 4.7 3.9 3.1 2.4
Graph on the graph paper
When x = 4.5 , y/x = 4.3
Area of flower plot = y/x ( x )
= 4.3 ( 4.5 )
= 19.35m2
( 10 )
ii) i) Differentiation method
dy/dx = ((10x-x2)/4) π
= ( 10/4 – 2x/4) π
0 = 5/2 π – x/2 π
5/2 π = x/2 π
x = 5
ii) Completing square method
y = ((10x – x2)/4) π
= 5/2 π - x2/4 π
= -1/4 π (x2 – 10x)
y+ 52 = -1/4 π (x – 5)2
y = -1/4 π (x – 5)2 - 25
x – 5 = 0
x = 5
( 11 )
A B
10 cm
Diagram 4
(e) n = 12, a = 30cm, S12 = 1000cm
S12 = n/2 (2a + (n – 1)d
1000 = 12/2 ( 2(30) + (12 – 1)d)
1000 = 6 ( 60 + 11d)
1000 = 360 + 66d
1000 – 360 = 66d
640 = 66d
Tn (flower bed) Diameter(cm)
T1 30
T2 39.697
T3 49.394
T4 59.091
T5 68.788
T6 78.485
T7 88.182
T8 97.879
T9 107.576
T10 117.273
T11 126.97
T12 136.667
d = 9.697
( 12 )[ CONCLUSION ]
Calculation of Pi
π can be empirically estimated by drawing a large circle, then measuring its diameter and circumference and dividing the circumference by the diameter. Another geometry-based
approach, due to Archimedes, is to calculate the perimeter, Pn , of a regular polygon with n sides circumscribed around a circle with diameter d. Then
That is, the more sides the polygon has, the closer the approximation approaches π. Archimedes determined the accuracy of this approach by comparing the perimeter of the circumscribed polygon with the perimeter of a regular polygon with the same number of sides inscribed inside the circle. Using a polygon with 96 sides, he computed the
fractional range: .
π can also be calculated using purely mathematical methods. Most formulae used for calculating the value of π have desirable mathematical properties, but are difficult to understand without a background in trigonometry and calculus. However, some are quite simple, such as this form of the Gregory-Leibniz series:
While that series is easy to write and calculate, it is not immediately obvious why it yields π. In addition, this series converges so slowly that 300 terms are not sufficient to
calculate π correctly to 2 decimal places.However, by computing this series in a somewhat more clever way by taking the midpoints of partial sums, it can be made to converge much faster. Let
and then define
( 13 )
then computing π10,10 will take similar computation time to computing 150 terms of the
original series in a brute-force manner, and , correct to 9 decimal places. This computation is an example of the Van Wijngaarden transformation.
( 14 )[ ACKNOWLEDGEMENT ]
I would like to express my gratitude and thanks to my teacher, Mr
Ramlee Bin Seruji for his wonderful guidance for me to be able to complete
this project work.Next,to my parents for their continuous support to me
throughout this experiment.Special thanks to my friends for their help, and
to all those who contributed directly or indirectly towards the completion of
this project work.
Throughout this project, I acquired many valuable skills, and hope
that in the years to come, those skills will be put to good use.
( 15 )
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