1

1

Sreenivasa Institute of Technology and Management Studies

Engineering Mathematics-III

II B.TECH. I SEMESTER

Course Code: 18SAH211 Regulation:R18

UNIT-I

NUMERICAL INTEGRATION

Motivation:

Most such integrals cannot be evaluated explicitly. Many others it is often faster to integrate them numerically rather than evaluating them exactly using a complicated antiderivative of f(x)

Example:

The solution of this integral equation with Matlab is 1/2*2^(1/2)*pi^(1/2)*FresnelS(2^(1/2)/pi^(1/2)*x)

we cannot find this solution analytically by techniques in calculus.

2

dxx )sin( 2

3

3

4

5

Graphical Representation of

Integral

Integral = area

under the curve

Use of a grid to

approximate an integral

6

Use of strips to

approximate an

integral

7

Numerical Integration

Net force

against a

skyscraper

Cross-sectional area

and volume flowrate

in a river

Survey of land

area of an

irregular lot

Methods of Numerical Integration

Trapezoidal Rule’s

1/3 Simpson’s method

3/8 Simpson’s method

Applied in two dimensional domain

8

9

10

11

12

Simpson’s 1/3- Rule is given by

Note: While applying the Simpson’s 1/3 rule, the number

of sub-intervals (n) should be taken as multiple of 2.

13

13

Simpson’s 3/8- Rule is given by

Note: While applying the Simpson’s 3/8 rule, the number

of sub-intervals (n) should be taken as multiple of 3.

14

15

16

17

18

19

19

Numerical solution of

ordinary differential

equations

20

Introduction

21

Taylor’s Series Method

22

23

24

Picard’s Method

25

26

27

28

29

Euler’s Method

30

31

32

Runge-Kutta Formula

33

UNIT-II

Multiple Integrals

Double Integration

34

Evaluation of Double Integration

35

36

37

38

39

40

Triple Integration

41

42

43

UNIT-III

Partial Differential Equations

44

45

46

47

48

49

UNIT-IV

Vector Differentiation

Elementary Vector Analysis

Definition (Scalar and vector)

Vector is a directed quantity, one with both

magnitude and direction.

For instance acceleration, velocity, force

Scalar is a quantity that has magnitude but not

direction.

For instance mass, volume, distance

50

We represent a vector as an arrow from the

origin O to a point A.

The length of the arrow is the magnitude of

the vector written as or .

O

A

or O

A

OAa

aOA

51

Basic Vector System

Unit vectors , ,

•Perpendicular to each other

•In the positive directions

of the axes

•have magnitude (length) 1

52

Magnitude of vectors

Let P = (x, y, z). Vector is defined by

with magnitude (length)

OP = = + +p x i y j z k

= [ ]x, y, z

OP = p

OP = = + +p x y z2 2 2

53

Calculation of Vectors

Vector Equation

Two vectors are equal if and only if the

corresponding components are equals

332211

321321

, ,

Then

. and Let

babababa

kbjbibbkajaiaa

====

++=++=

54

Addition and Subtraction of Vectors

Multiplication of Vectors by Scalars

kbajbaibaba )()()( 332211 ++=

kbjbibb )()()(

thenscalar, a is If

321

++=

55

55

Example 1

Given 5 3 and 4 3 2 . Findp i j k q i j k= + - = - +

a p q) +

) b p q-

) 2 10 d q p-

c p) Magnitude of vector

56

Vector Products

1 2 3 1 2 3~ ~ ~ ~ ~ ~~ ~

If and , a a i a j a k b b i b j b k= + + = + +

1 1 2 2 3 3~ ~a b a b a b a b = + +

1) Scalar Product (Dot product)

2) Vector Product (Cross product)

~ ~~

1 2 3~ ~

1 2 3

2 3 3 2 1 3 3 1 1 2 2 1~ ~~

i j k

a b a a a

b b b

a b a b i a b a b j a b a b k

=

= - - - + -

~~~~ and between angle theis ,cos||||.or bababa =

57

The area of parallelogram

The volume of tetrahedrone

The volume of parallelepiped

a

ba bxA =

a b

c

321

321

321

6

1

ccc

bbb

aaa

=6

1=V a . b cx

a b

c321

321

321

ccc

bbb

aaa

==V a . b cx

58

Differentiation of Two Vectors

If both and are vectors, then

)(~

uA )(~

uB

58

~

~~

~~~

~

~~

~~~

~~

~~

~

~

)()

..).()

)()

)()

Bdu

Ad

du

BdABA

du

dd

Bdu

Ad

du

BdABA

du

dc

du

Bd

du

AdBA

du

db

du

AdcAc

du

da

+=

+=

+=+

=

Del Operator Or Nabla (Symbol )

• Operator is called vector differential operator,

defined as

59

.~~~

+

+

= k

zj

yi

x

60

Grad (Gradient of Scalar Functions)

• If x,y,z is a scalar function of three

variables and is differentiable, the gradient

of is defined as

. grad~~~k

zj

yi

x

+

+

==

function vector a is *

functionscalar a is *

61

Example 1

zxyyzx

xyzzx

zyxyz

zxyyzx

zxyyzx

222

232

223

2232

2232

23z

2y

2x

hence ,Given

(1,3,2).Pat grad determine , If

+=

+=

+=

+=

=+=

Solution

61

62

.723284

.))2()3)(1(2)2)(3()1(3(

))2)(3)(1(2)2()1(())2()3()2)(3)(1(2(

have we(1,3,2),PAt

.)23(

)2()2(

zyx

Therefore,

~~~

~

222

~

232

~

223

~

222

~

232

~

223

~~~

kji

k

ji

kzxyyzx

jxyzzxizyxyz

kji

++=

++

+++=

=

++

+++=

+

+

=

63

Exercise 2

(1,2,3).Ppoint at grad determine

, If 323

=

+=

zxyyzx

63

Solution

.110111126(1,2,3),PAt

Grad

z

y

x

then,Given

~~~

323

kji

zxyyzx

++==

==

=

=

=

+=

63

64

Grad Properties

If A and B are two scalars, then

)()()()2

)()1

ABBAAB

BABA

+=

+=+

64

65

Divergence of a Vector

..

).(

.

as defined

is of divergence the, If

~~

~~~~~~

~~

~~~~~

z

a

y

a

x

aAAdiv

kajaiakz

jy

ix

AAdiv

AkajaiaA

zyx

zyx

zyx

+

+

==

++

+

+

=

=

++=

65

66

Example 1

.13

)3)(2(2)3)(1()2)(1(2

(1,2,3),point At

.22

.

(1,2,3).point at determine

, If

~

~~

~

~

2

~~

2

~

=

+-=

+-=

+

+

==

+-=

Adiv

yzxzxy

z

a

y

a

x

aAAdiv

Adiv

kyzjxyziyxA

zyx

Answer

67

Exercise 2

.114

(3,2,1),point At

.

(3,2,1).point at determine

, If

~

~~

~

~

3

~

2

~

23

~

=

=

=

+

+

==

-+=

Adiv

z

a

y

a

x

aAAdiv

Adiv

kyzjzxyiyxA

zyxAnswer

68

Remarks

.called is vector ,0 If

function.scalar a is but function, vector a is

~~

~~

vectorsolenoidAAdiv

AdivA

=

69

Curl of a Vector

.

)(

by defined is of curl the,If

~~~

~~

~~~~~~

~~

~~~~~

zyx

zyx

zyx

aaa

zyx

kji

AAcurl

kajaiakz

jy

ix

AAcurl

AkajaiaA

==

++

+

+

=

=

++=

70

Example 1

.)2,3,1(at determine

,)()( If

~

~

2

~

22

~

224

~

-

-++-=

Acurl

kyzxjyxizxyA

Solution

.)42()22(

)()(

)()(

)()(

~

3

~

2

~

2

~

22422

~

2242

~

222

222224

~~~

~~

kyxjzxxyzizx

kzxyy

yxx

jzxyz

yzxx

iyxz

yzxy

yzxyxzxy

zyx

kji

AAcurl

-++---=

-

-+

+

-

--

-

+

--

=

-+-

==

70

71

Exercise 2

.10682

))3(4)1(2(

))2()1(2)2)(3)(1(2()2()1(

(1,3,-2),At

~~~

~

3

~

2

~

2

~

kji

k

jiAcurl

--=

-+

-+-----=

.)3,2,1(point at determine

,)()( If

~

~

22

~

22

~

223

~

Acurl

kyzxjzxizyxyA -++-=

72

Answer

.261215 (1,2,3),At

.)232(

)22()2(

~~~~

~

22

~

22

~

22

~

kjiAcurl

kyzxyx

jzyxyzizzxAcurl

++-=

+-+

+----=

Remark

function. vector a also is

andfunction vector a is

~

~

Acurl

A

73

UNIT-V

Vector Integration

Polar Coordinate for Plane (r, θ)

ddrrdS

ry

rx

=

=

=

sin

cos

x

ds

y

d

74

Polar Coordinate for Cylinder (, , z)

dzdddV

dzddS

zz

y

x

=

=

=

=

=

sin

cos

x

y

z

dv

z

ds

75

Polar Coordinate for Sphere (r, ,

dddrrdV

ddrdS

rz

ry

rx

sin

sin

cos

sinsin

cossin

2

2

=

=

=

=

=

y

x

r

z

76

Example 1 (Volume Integral)

.9 and

4,0by bounded space a is and

22 where Calculate

22

~~~~~

=+

==

++=

yx

zzV

kyjziFdVFV

x

z

y

4 -

3 3

77

Solution

Since it is about a cylinder, it is easier if we use

cylindrical polar coordinates, where

.40,20,30 where

,,sin,cos

====

z

dzdddVzzyx

78

Line Integral

Ordinary integral f (x) dx, we integrate along

the x-axis. But for line integral, the integration

is along a curve.

f (s) ds = f (x, y, z) ds

A

O

B

~~rdr+

~r

79

Scalar Field, V Integral

If there exists a scalar field V along a curve C,

then the line integral of V along C is defined by

.where~~~~

~

kdzjdyidxrd

rdVc

++=

80

Example 1

(3,2,1).B to(0,0,0)A from

along findthen

,,2,3

by given is curve a and z If

~

32

2

==

===

=

CrdV

uzuyux

CxyV

c

81

Solution

.1

,1,22,33 (3,2,1),BAt

.0

,0,02,03 (0,0,0),AAt

.343

And,

.12)()2)(3(

zGiven

32

32

~

2

~~

~~~~

8322

2

=

====

=

====

++=

++=

==

=

u

uuu

u

uuu

kduujduuidu

kdzjdyidxrd

uuuu

xyV

82

.11

36

5

244

11

36

5

244

364836

)343)(12(

~~~

~

1

0

11

~

1

0

10

~

1

0

9

1

0 ~

101

0~

91

0~

8

1

0 ~

2

~~

8

~

kji

kujuiu

kduujduuiduu

kduujuduiduurdVu

u

B

A

++=

+

+=

++=

++=

=

=

83

83

Exercise 2

.11

768144

5

384

(4,3,2).B to(0,0,0)A from

curve thealong calculate

,2,3,4

by given is curve theand If

~~~~

~

23

22

kjirdV

C rdV

uzuyux

CyzxV

B

A

c

++=

==

===

=

Answer

84

Vector Field, Integral

Let a vector field

and

The scalar product is written as

.

)).((. ~~~~~~~~

dzFdyFdxF

kdzjdyidxkFjFiFrdF

zyx

zyx

++=

++++=

~F

~~~~kFjFiFF zyx ++=

.~~~~kdzjdyidxrd ++=

~~. rdF

85

. .

bygiven is Bpoint another A topoint a from

curve thealong of integral line then the

, curve thealong is field vector a If

~~

~

~

++=c

zc

yc

xc

dzFdyFdxFrdF

CF

CF

86

Example 1

.y2y

if,2,4curve thealong

(4,2,1)B to(0,0,0)A from .Calculate

~~~

2

~

32

~~

kzjxzixF

tztytx

rdFc

-+=

===

==

87

Solution

.344

And

.4432

)()2(2)()4()2()4(

2yGiven

~

2

~~

~~~~

~

5

~

4

~

4

~

32

~

3

~

22

~~~

2

~

kdttjdttidt

kdzjdyidxrd

ktjtit

kttjttitt

kyzjxzixF

++=

++=

-+=

-+=

-+=

88

.)1216128(

1216128

)3)(4()4)(4()4)(32(

)344)(4432(.

Then

754

754

2544

~

2

~~~

5

~

4

~

4

~~

dtttt

dttdttdtt

dttttdttdtt

kdttjdttidtktjtitrdF

-+=

-+=

-++=

++-+=

.1

,1,22,44 (4,2,1),Bat and,

.0

,0,02,04 (0,0,0),AAt

32

32

=

====

=

====

t

ttt

t

ttt

89

.30

2326

2

3

3

8

5

128

2

3

3

8

5

128

)1216128(.

1

0

865

1

0

754

~~

=

-+=

-+=

-+= =

=

ttt

dttttrdFt

t

B

A

90

Surface Integral

Scalar Field, V Integral

If scalar field V exists on surface S, surface

integral V of S is defined by

=S S

dSnVSVd~~

where

S

Sn

=

~

91

Example 1

Scalar field V = x y z defeated on the surface

S : x2 + y2 = 4 between z = 0 and z = 3 in the

first octant.

Evaluate SSVd~

Solution

Given S : x2 + y2 = 4 , so grad S is

~~~~~22 jyixk

z

Sj

y

Si

x

SS +=

+

+

=

92

Also,

4422)2()2( 2222 ==+=+= yxyxS

Therefore,

)(2

1

4

22

~~

~~

~jyix

jyix

S

Sn +=

+

=

=

Then,

+

=

S SdSjyixxyzdSnV )(

2

1

~~~

+= dSjzxyiyzx )(2

1

~

2

~

2

93

Surface S : x2 + y2 = 4 is bounded by z = 0 and z = 3

that is a cylinder with z-axis as a cylinder axes and

radius,

So, we will use polar coordinate of cylinder to find

the surface integral.

.24 ==

x

z

y

2

2

3

O

94

Polar Coordinate for Cylinder

cos 2cos

sin 2sin

ρ

x

y

z z

dS d dz

= =

= =

=

=

where 2

0

30 z(1st octant) and

95

Using polar coordinate of cylinder,

cossin8)()sin2)(cos2(

sincos8)sin2()cos2(

222

222

zzzxy

zzyzx

==

==

From

=+=S

SS

SVddSjzxyiyzxdSnV~~

2

~

2

~)(

2

1

96

96

= =+=

Sz

dzdjzizSVd 2

0

3

0 ~

2

~

2

~)2)(cossin8sincos8(

2

1

3

2 2 2 22

0 ~ ~ 0

2 22

0 ~ ~

1 18 cos sin sin cos

2 2

9 98 cos sin sin cos

2 2

z i z j d

i j d

= +

= +

2 22

0 ~ ~

3 3 2

~ ~0

~ ~

98 cos sin sin cos

2

cos sin sin cos36

3( sin ) 3(cos )

12( )

i j d

i j

i j

= +

= +

-

= +

Therefore,

97

Green’s Theorem

If c is a closed curve in counter-clockwise on

plane-xy, and given two functions P(x, y) and

Q(x, y),

where S is the area of c.

+=

-

cSdyQdxPdydx

y

P

x

Q)(

98

Example 1

2 2

2 2

Prove Green's Theorem for

[( ) ( 2 ) ]

which has been evaluated by boundary that defined as

0, 0 4 in the first quarter.

cx y dx x y dy

x y and x y

+ + +

= = + =

y

2

x 2

C3

C2

C1 O

x2 + y2 = 22

Solution

99

1 1

2 2

2 2

1 2 3

1

2 2

22

0

2

3

0

Given [( ) ( 2 ) ] where

and 2 . We defined curve

as , .

i) For : 0, 0 0 2

( ) ( ) ( 2 )

1 8.

3 3

c

c c

x y dx x y dy

P x y Q x y c

c c and c

c y dy and x

Pdx Qdy x y dx x y dy

x dx

x

+ + +

= + = +

= =

+ = + + +

=

= =

100

2 2

2ii) For : 4 , in the first quarter from (2,0) to (0,2).

This curve actually a part of a circle.

Therefore, it's more easier if we integrate by using polar

coordinate of plane,

2cos , 2sin , 0

c x y

x y

+ =

= =2

2sin , 2cos .dx d dy d

= - =

101

.448

sin42sin2cos8

)cossin82cos22sin8(

)cossin8cos4sin8(

)]cos2))(sin2(2cos2((

)sin2)()sin2()cos2(([

)2()()(

2

2

2

2

22

0

2

0

0

2

22

0

22

-=++-=

+++=

+++-=

++-=

++

-+=

+++=+

d

d

d

d

dyyxdxyxQdyPdxcc

102

3 3

3

2 2

0

2

02

2

iii) : 0, 0, 0 2

( ) ( ) ( 2 )

2

4.

8 16( ) ( 4) 4 .

3 3

c c

c

For c x dx y

Pdx Qdy x y dx x y dy

y dy

y

Pdx Qdy

= =

+ = + + +

=

=

= -

+ = + - - = -

103

b) Now, we evaluate

where 1 2 .

Again,because this is a part of the circle,

we shall integrate by using polar coordinate of plane,

cos , sin

where

S

Q Pdxdy

x y

Q Pand y

x y

x r y r

-

= =

= =

0 r 2, 0 .2

and dxdy dS r dr d

= =

104

.3

16

cos3

162

sin3

162

sin3

2

2

1

)sin21(

)21(

2

2

2

2

0

0

2

00

32

0

2

0

-=

+=

-=

-=

-=

-=

-

=

=

= =

d

drr

ddrrr

dydxydydxy

P

x

Q

r

SS

105

Therefore,

( )

16.

3

Green's Theorem has been proved.

C S

Q PPdx Qdy dx dy

x y

LHS RHS

+ = -

= -

=

106

Divergence Theorem (Gauss’ Theorem)

If S is a closed surface including region V

in vector field

..~~~ =

SVSdFdVFdiv

~F

~

yx zff f

div Fx y z

= + +

107

Example 1

2

~ ~ ~~

2 2

Prove Gauss' Theorem for vector field,

2 in the region bounded by

planes 0, 4, 0, 0 4

in the first octant.

F x i j z k

z z x y and x y

= + +

= = = = + =

108

Solution

x

z

y

2

2

4

O

S3

S4

S2

S1

S5

109

1

2

3

4

2 2

5

~

~ ~

For this problem, the region of integration is bounded

by 5 planes :

: 0

: 4

: 0

: 0

: 4

To prove Gauss' Theorem, we evaluate both

. ,

The answer should be the same.

V

S

S z

S z

S y

S x

S x y

div F dV

and F d S

=

=

=

=

+ =

110

2

~ ~ ~ ~~

2

~

~

1) We evaluate . Given 2 .

So,

( ) (2) ( )

1 2 .

Also, (1 2 ) .

The region is a part of the cylinder. So, we integrate by using

polar c

V

V V

div F dV F x i j z k

div F x zx y z

z

div F dV z dV

= + +

= + +

= +

= +

oordinate of cylinder ,

; sin ;

where 0 2, 0 , 0 4.2

x = cos y z z

dV d d dz

z

= =

=

111

2

2

2

2

2

2

2 4

0 0 0

22 4

00 0

2

0 0

2 2

00

0

0

~

Therefore,

(1 2 ) (1 2 )

[ ]

(20 )

[10 ]

(40)

40

20 .

20 .

V z

V

z dV z dzd d

z z d d

d d

d

d

div F dV

= = =

= =

= =

=

=

+ = +

= +

=

=

=

=

=

=

112

1

~ ~~ ~

1~ ~

~ ~ ~~

~ ~ ~ ~~

~ ~

2) Now, we evaluate . . .

i) : 0, ,

2 0

. ( 2 ).( ) 0

. 0.

S S

S

F d S F n dS

S z n k dS rdrd

F x i j k

F n x i j k

F n dS

=

= = - =

= + +

= + - =

=

113

2

2

2~ ~

2

~ ~ ~ ~ ~~ ~

~ ~ ~ ~ ~~

2

2

0 0~ ~

ii) : 4, ,

2 (4) 2 16

. ( 2 16 ).( ) 16.

Therefore for , 0 r 2, 02

. 16

16 .

S r

S z n k dS rdrd

F x i j k x i j k

F n x i j k k

S

F n dS rdrd

= =

= = =

= + + = + +

= + + =

=

=

=

114

3

3~ ~

2

~ ~ ~~

2

~ ~ ~ ~~ ~

3

2 4

0 0~ ~

iii) : 0, ,

2

. ( 2 ).( )

2.

Therefore for S , 0 2, 0 4

. ( 2)

16.

S x z

S y n j dS dxdz

F x i j z k

F n x i j z k j

x z

F n dS dzdx= =

= = - =

= + +

= + + -

= -

= -

=

= -

115

4

4~ ~

2 2

~ ~ ~ ~~ ~

2

~ ~ ~ ~~

~ ~

iv) : 0, ,

0 2 2

. (2 ).( ) 0.

. 0.S

S x n i dS dydz

F i j z k j z k

F n j z k i

F n dS

= = - =

= + + = +

= + - =

=

116

2 2

5

5 5~ ~

~5 ~

~5

~ ~

5

v) : 4,

2 2 4

2 2

4

1( ).

2

By using polar coordinate of cylinder :

cos , sin ,

where for :

2, 0 , 0 4, 22

S x y dS d dz

S x i y j and S

x i y jS

nS

x i y j

x y z z

S

z dS d dz

+ = =

= + =

+

= =

= +

= = =

= =

117

.416

)2)(sin)(cos2(.

).sin(cos2

2.kerana ;sin2cos2

)sin()cos(2

1

2

1

2

1

2

1).2(.

5

2

0

4

0

2

~~

2

2

2

2

~~~

2

~~~~

+=

=

+=

+=

=+=

+=

+=

+++=

= =

S zdzddSnF

yx

jyixkzjixnF

118

1 2 3 4 5~ ~ ~ ~ ~ ~~ ~ ~ ~ ~ ~

~ ~

Finally,

. . . . . .

0 16 16 0 16 4

20 .

. 20 .

Gauss' Theorem has been proved.

S S S S S S

S

F d S F d S F d S F d S F d S F d S

F d S

LHS RHS

= + + + +

= + - + + +

=

=

=

119

Stokes’ Theorem

If is a vector field on an open surface S and

boundary of surface S is a closed curve c,

therefore

=S c

rdFSdFcurl~~~~

~F

~ ~~

~ ~

x y z

i j k

curl F Fx y z

f f f

= =

120

Example 1

Surface S is the combination of

2 2

~ ~ ~~

i) part of the cylinder 9 0

and 4 0.

ii) half of the circle with radius 3 at 4, and

iii) 0

, prove Stokes' Theorem

for this case.

a x y between z

z for y

a z

plane y

If F z i xy j xz k

+ = =

=

=

=

= + +

121

Solution

2 2

1

2

3

We can divide surface S as

S : x y 9 0 z 4 y 0

S : z 4, half of the circle with radius 3

S : y 0

for and+ =

=

=

z

y x

3

4

O

S3

C2

S2

C1

S1

3

122

We can also mark the pieces of curve C as

C1 : Perimeter of a half circle with radius 3.

C2 : Straight line from (-3,0,0) to (3,0,0).

Let say, we choose to evaluate first.

Given

~ ~Scurl F d S

~~~~kxzjxyizF ++=

123

So,

~~

~

~~

~~~

~

)1(

)()(

)()()()(

kyjz

kzy

xyx

jxzx

zz

ixyz

xzy

xzxyzzyx

kji

Fcurl

+-=

-

+

-

+

-

=

=

124

By integrating each part of the surface,

2 2

1

1~ ~

2 2

1

2 2

( ) : 9,

2 2

(2 ) (2 )

2 6

i For surface S x y

S x i y j

and S x y

x y

+ =

= +

= +

= + =

125

)(3

1

6

22

~~

~~

1

1

~jyix

jyix

S

Sn +=

+

=

=

and

).1(3

1

3

1

3

1)1(

~~~~~~

zy

jyixkyjznFcurl

-=

+

+-=

Then ,

126

By using polar coordinate of cylinder ( because

is a part of the cylinder), 9: 22

1 =+ yxS

cos , sin ,

3, 0 0 4.

x y z z

dS d dz

where

dan z

= = =

=

=

127

Therefore,

~ ~

1(1 )

3

1sin 1

3

sin (1 ) ; 3

curl F n y z

z

z because

= -

= -

= - =

Also, dzddS 3=

128

1 1~ ~~ ~

4

0 0

4

00

4

0

3 sin (1 )

3 (1 ) cos

3 (1 )(1 ( 1))

24

S S

z

curl F d S curl F n dS

z d dz

z dz

z dz

= =

=

= -

= - -

= - - -

= -

129

(ii) For surface , normal vector unit to the

surface is

By using polar coordinate of plane ,

4:2 =zS

.~~kn =

ddrrdSdanzry === 4,sin

0 r 3 and 0 .where

130

2 2

~ ~ ~ ~~

~ ~~ ~

3

0 0

32

0 0

(1 )

sin

( sin )( )

sin

18

S S

r

r

curl F n z j y k k

y r

curl F d S curl F n dS

r rdrd

r d dr

= =

= =

= - +

= =

=

=

=

=

131

(iii) For surface S3 : y = 0, normal vector unit

to the surface is

dS = dxdz

The integration limits :

.~~jn -=

3 3 0 4x and z-

So,

1

)())1((~~~~~

-=

-+-=

z

jkyjznFcurl

132

3 3

1 2 3

~ ~~ ~

3 4

3 0

~ ~ ~ ~~ ~ ~ ~

Then,

. .

( 1)

24.

. . . .

24 18 24

18.

S S

x z

S S S S

curl F d S curl F n dS

z dzdx

curl F d S curl F d S curl F d S curl F d S

=- =

=

= -

=

=

= + +

= - + +

=

133

~ ~

1

1

Now, we evaluate . for each pieces of the curve C.

i) is a half of the circle.

Therefore, integration for will be more easier if we use

polar coordinate for plane with radius

CF d r

C

C

3, that is

3cos , 3sin dan z 0

where 0 .

r

x y

=

= = =

134

~ ~ ~~

~

~

~ ~~

~ ~

(3cos )(3sin )

9sin cos

and

3sin 3cos .

F z i xy j xz k

j

j

dr dx i dy j dz k

d i d j

= + +

=

=

= + +

= - +

135

1

2

~ ~

2

0~ ~

3

0

From here,

. 27sin cos .

. 27sin cos

9cos

18.

C

F d r d

F d r d

=

=

= -

=

136

2

2

~ ~ ~~

~

~ ~

ii) Curve is a straight line defined as

, 0 z 0, where 3 3.

Therefore,

0.

. 0.C

C

x t y and t

F z i xy j xz k

F d r

= = = -

= + +

=

=

137

1 2~ ~ ~ ~ ~ ~

~ ~ ~~

. . .

18 0

18.

We already show that

. .

Stokes' Theorem has been proved.

C C C

S C

F d r F d r F d r

curl F d S F d r

= +

= +

=

=