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 Page 1


Line, Surface and Volume
Integrals
1
Page 2


Line, Surface and Volume
Integrals
1
Line integrals
Z
C
Ádr;
Z
C
a¢dr;
Z
C
a£dr (1)
(Á is a scalar ¯eld and a is a vector ¯eld)
We divide the path C joining the points A and B
into N small line elements ¢r
p
, p=1;:::;N. If
(x
p
;y
p
;z
p
) is any point on the line element ¢r
p
,
then the second type of line integral in Eq. (1) is
de¯ned as
Z
C
a¢dr= lim
N!1
N
X
p=1
a(x
p
;y
p
;z
p
)¢r
p
where it is assumed that allj¢r
p
j!0 as N !1.
2
Page 3


Line, Surface and Volume
Integrals
1
Line integrals
Z
C
Ádr;
Z
C
a¢dr;
Z
C
a£dr (1)
(Á is a scalar ¯eld and a is a vector ¯eld)
We divide the path C joining the points A and B
into N small line elements ¢r
p
, p=1;:::;N. If
(x
p
;y
p
;z
p
) is any point on the line element ¢r
p
,
then the second type of line integral in Eq. (1) is
de¯ned as
Z
C
a¢dr= lim
N!1
N
X
p=1
a(x
p
;y
p
;z
p
)¢r
p
where it is assumed that allj¢r
p
j!0 as N !1.
2
Evaluating line integrals
The ¯rst type of line integral in Eq. (1) can be
written as
Z
C
Ádr = i
Z
C
Á(x;y;z)dx+j
Z
C
Á(x;y;z)dy
+k
Z
C
Á(x;y;z)dz
The three integrals on the RHS are ordinary scalar
integrals.
The second and third line integrals in Eq. (1) can
also be reduced to a set of scalar integrals by
writing the vector ¯eld a in terms of its Cartesian
components as a=a
x
i+a
y
j+a
z
k. Thus,
Z
C
a¢dr =
Z
C
(a
x
i+a
y
j+a
z
k)¢(dxi+dyj+dzk)
=
Z
C
(a
x
dx+a
y
dy+a
z
dz)
=
Z
C
a
x
dx+
Z
C
a
y
dy+
Z
C
a
z
dz
3
Page 4


Line, Surface and Volume
Integrals
1
Line integrals
Z
C
Ádr;
Z
C
a¢dr;
Z
C
a£dr (1)
(Á is a scalar ¯eld and a is a vector ¯eld)
We divide the path C joining the points A and B
into N small line elements ¢r
p
, p=1;:::;N. If
(x
p
;y
p
;z
p
) is any point on the line element ¢r
p
,
then the second type of line integral in Eq. (1) is
de¯ned as
Z
C
a¢dr= lim
N!1
N
X
p=1
a(x
p
;y
p
;z
p
)¢r
p
where it is assumed that allj¢r
p
j!0 as N !1.
2
Evaluating line integrals
The ¯rst type of line integral in Eq. (1) can be
written as
Z
C
Ádr = i
Z
C
Á(x;y;z)dx+j
Z
C
Á(x;y;z)dy
+k
Z
C
Á(x;y;z)dz
The three integrals on the RHS are ordinary scalar
integrals.
The second and third line integrals in Eq. (1) can
also be reduced to a set of scalar integrals by
writing the vector ¯eld a in terms of its Cartesian
components as a=a
x
i+a
y
j+a
z
k. Thus,
Z
C
a¢dr =
Z
C
(a
x
i+a
y
j+a
z
k)¢(dxi+dyj+dzk)
=
Z
C
(a
x
dx+a
y
dy+a
z
dz)
=
Z
C
a
x
dx+
Z
C
a
y
dy+
Z
C
a
z
dz
3
Some useful properties about line integrals:
1. Reversing the path of integration changes the
sign of the integral. That is,
Z
B
A
a¢dr=¡
Z
A
B
a¢dr
2. If the path of integration is subdivided into
smaller segments, then the sum of the separate
line integrals along each segment is equal to the
line integral along the whole path. That is,
Z
B
A
a¢dr=
Z
P
A
a¢dr+
Z
B
P
a¢dr
4
Page 5


Line, Surface and Volume
Integrals
1
Line integrals
Z
C
Ádr;
Z
C
a¢dr;
Z
C
a£dr (1)
(Á is a scalar ¯eld and a is a vector ¯eld)
We divide the path C joining the points A and B
into N small line elements ¢r
p
, p=1;:::;N. If
(x
p
;y
p
;z
p
) is any point on the line element ¢r
p
,
then the second type of line integral in Eq. (1) is
de¯ned as
Z
C
a¢dr= lim
N!1
N
X
p=1
a(x
p
;y
p
;z
p
)¢r
p
where it is assumed that allj¢r
p
j!0 as N !1.
2
Evaluating line integrals
The ¯rst type of line integral in Eq. (1) can be
written as
Z
C
Ádr = i
Z
C
Á(x;y;z)dx+j
Z
C
Á(x;y;z)dy
+k
Z
C
Á(x;y;z)dz
The three integrals on the RHS are ordinary scalar
integrals.
The second and third line integrals in Eq. (1) can
also be reduced to a set of scalar integrals by
writing the vector ¯eld a in terms of its Cartesian
components as a=a
x
i+a
y
j+a
z
k. Thus,
Z
C
a¢dr =
Z
C
(a
x
i+a
y
j+a
z
k)¢(dxi+dyj+dzk)
=
Z
C
(a
x
dx+a
y
dy+a
z
dz)
=
Z
C
a
x
dx+
Z
C
a
y
dy+
Z
C
a
z
dz
3
Some useful properties about line integrals:
1. Reversing the path of integration changes the
sign of the integral. That is,
Z
B
A
a¢dr=¡
Z
A
B
a¢dr
2. If the path of integration is subdivided into
smaller segments, then the sum of the separate
line integrals along each segment is equal to the
line integral along the whole path. That is,
Z
B
A
a¢dr=
Z
P
A
a¢dr+
Z
B
P
a¢dr
4
Example
Evaluate the line integral I =
R
C
a¢dr, where
a=(x+y)i+(y¡x)j, along each of the paths in
the xy-plane shown in the ¯gure below, namely,
1. the parabola y
2
=x from (1;1) to (4;2),
2. the curve x=2u
2
+u+1, y =1+u
2
from
(1;1) to (4;2),
3. the line y =1 from (1;1) to (4;1), followed by
the line y =x from (4;1) to (4;2).
FIG. 1: Di®erent possible paths between points (1;1)
and (4;2).
5
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FAQs on Line, surface, and volume integrals - Engineering Mathematics for Electrical Engineering - Electrical Engineering (EE)

1. What is a line integral in mechanical engineering?
Ans. A line integral in mechanical engineering is a type of integral that is calculated along a curve or a line in a vector field. It is used to measure the work done by a force along a specific path.
2. How is a surface integral used in mechanical engineering?
Ans. A surface integral in mechanical engineering is used to calculate the flux of a vector field through a surface. It is commonly used to calculate the flow of a fluid through a surface or the work done by a force acting on a surface.
3. What is the significance of volume integrals in mechanical engineering?
Ans. Volume integrals in mechanical engineering are used to calculate quantities such as mass, momentum, energy, and other physical properties within a three-dimensional space. They are important for analyzing and solving problems related to fluid flow, heat transfer, and structural mechanics.
4. How are line, surface, and volume integrals related in mechanical engineering?
Ans. Line, surface, and volume integrals are all types of integrals used in mechanical engineering to analyze and solve problems related to forces, fields, and physical properties. They are interconnected and often used together to fully understand and model complex systems and phenomena.
5. Can you provide an example of how line, surface, and volume integrals are applied in mechanical engineering?
Ans. One example is the calculation of fluid flow through a pipe system. Line integrals can be used to calculate the work done by the fluid along the pipe, surface integrals can be used to calculate the flow rate through the pipe walls, and volume integrals can be used to analyze the overall fluid flow and pressure distribution within the system.
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