engineering analysis and numerical...
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بسم هللا الرحمن الرحيم
Engineering Analysis and Numerical Methods
Stage: Third
Civil Engineering Department
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Text Book Advanced Engineering
Mathematics By
C.R. Wylie
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References
- Advanced Engineering Mathematics by Kreyszig - Differential Equation by Iyengar - Advanced Mathematics by Agarwal , et .al - Integral Calculus and Differential Equations by Chatterjee
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Syllabus
Ordinary Differential Equations of First order (16 hrs)
Linear Differential Equations with Constant Coefficient (12 hrs)
Simultaneous Linear Differential Equations (12 hrs)
Numerical Solutions of Ordinary Differential Equations (8 hrs)
Finite Differences (4 hrs)
Interpolation (4 hrs)
Numerical Differentiation (8 hrs)
Numerical Integration and Computer Application (4 hrs)
Fourier Series (16 hrs)
Partial Differential Equation and Boundary Value problems (12 hrs)
Numerical Solution for Partial Differential Equations (8 hrs)
Matrices and its Applications (16 hrs)
Tikrit University -Civil Engineering
Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Ordinary Differential Equations of First Order **Definitions: Differential equation (DE) : An equation involves one or more derivatives or differentials. **Type: Ordinary or Partial: Ordinary derivatives occur when the dependent variable "y" is a function of one independent variable "x"; Partial derivatives occur when the dependent variable "y" is a function of two or more independent variables ; i.e. **Order : (highest derivative) **Degree: (power of highest derivative)
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Example (1) Ordinary, Order 2, Degree 1 Ordinary, Order 3, Degree 2
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Example (2) Partial, Order 4, Degree 1 Partial, Order 2, Degree 1
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Linear and non-Linear differential equations
If a differential equation is of first degree in the
dependent variable y and its derivatives (consequently ,
there cannot be any term involving the product of y and
its derivatives) then it is called a linear differential
equation otherwise it is non -linear .
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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OR A linear differential equation (of y = f(x) ) is of the form : (1)
Or
A non linear D.E. ,cannot be put in form (1) .
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Examples: linear non linear because ( non linear because (
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A solution of D.E.; is a relation between the dependent and
independent variables, and it satisfies the equation identically:
is a general solution of:
The general solution of D.E. of nth order, is one contains n essential
constants (parameters). By essential we mean that the n constants
cannot be replaced by a smaller number.
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For example, contains 3 constants and can be reduced Where d = a + b and e = b - c
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However, there are equations such that; (which has only the single solution y=0) (which has no solutions at all)
Also, there are differential equations which posses solutions,
containing more essential parameters than the order of the
equation.
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C1=1
C1=0.5
C1=0.25
C1=-1
C1=-.5
C1=-.25
C1=1
C1=0.5
C1=0.25
C1=-1
C1=-.5
C1=-.25
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Both can be pieced together to give a D.E.
x
yxcy
x
yc
xofvaluesallforx
yy
22,
2
121
x
yxcy
x
yc
22, 222
22cxyfor
x
yyAlso
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Any solution found from the general solution by assigning particular
values to the constants is called a particular solution.
general solution
particular solution
Solution which cannot be obtained from any general solution by
assigning specific values to the constants are called singular solution.
xbxay sincos
01 banda
xy cos
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If a general solution has the property that every solution of the
differential equation can be obtained from it by assigning
suitable values to its arbitrary constants, it is said to be a
complete solution.
Example: Show is a solution of
for all values of a and b.
Solution:
xx beaey 2
02 yyy
)(2
)2()4(2
2
22
xx
xxxx
beae
beaebeaeyyy
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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beeeaeee xxxxxx )224()2( 222
000 ba
o.k.
Note: Satisfies
xx beyoraey 2
21
02 yyy
02
111 yyy
02
222 yyyTikrit University -Civil Engineering
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But; xx beaeyyy 2
21
Is not solution of
02 yyy
02 yyy
02 yyy
Since
Is not linear, while;
Is linear
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Example: Given (1)
Find second-order differential equation.
Solution:
If the given function has n constants, differentiate nth
times and then eliminate the constants.
(2)
(3)
By adding and subtract equations (1) and (3)
xbaey x cos
xbaey x sin
xbaey x cos
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xaeyy 2xe
yya
2
xbyy cos2x
yyb
cos2
Substitute a and b into Eq. (2)
xx
yye
e
yyy x
xsin
cos22
xyxyyyy tantan2
0)tan1(2)tan1( yxyyx
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0cos yxbaex
0sin yxbaex
0cos yxbaex
(1) (2) (3)
0
cos1
sin1
cos1
yx
yx
yx
0)sincos(
)coscos()cossin(
xyxy
xyxyxyxy
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0)sin(coscos2)sin(cos xxyxyxxy
Divide by cos x getting:
0tan2tan xyyyxyy
0)tan1(2)tan1( yxyyx
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This is only second-order D.E., but there are other D.E.
Differentiate Eq. (3) twice more,
and since it is a 4th order D.E. we expect the
solution to contain 4 constants and we can
show that:
Satisfied for all values of a, b, c and d.
xbaey x cos
xbaey xiv cos
yyiv
xdcexbaey xx sincos
yyiv Tikrit University -Civil Engineering
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Separable First-Order D.E.
Often a first order D.E. can be reduce to
(1)
And such an equation is said to be separable;
The general solution is:
(2)
Other forms:
(3)
(4)
dyygdxxf )()(
Cdyygdxxf )()(
dyygxFdxyGxf )()()()(
)()( yNxMdx
dy
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Solution of Eq. (3) is: And the solution of Eq. (4) is:
CdyyG
ygdx
xF
xf )(
)(
)(
)(
CdxxMyN
dy )(
)(
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Example: Solve Solution:
1 yyx
xy
y 1
1
x
dx
y
dy
1
)ln()ln(
)ln()1ln(
ax
cxy
xay 1Tikrit University -Civil Engineering
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Particular solution curve means one-member
For all values of a straight lines pass through (0,-1)
b.) Find the orthogonal trajectories curves.
Slope of straight line
Or
Hence, the slope of the orthogonal trajectories
aydx
dy
x
yy
1
1
y
xy
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1
y
xy
xdxdyy )1(
cx
yy
22
22
cyyx 2222
12)12( 22 cyyx
222 )1( Ryx
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x
y
x
yR
P(x,y)
Circlex + y = R2 2 2
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x
y
x
y
-
x + y = R2 2 2 -
hk
- -
(x-k) +(y-h) = R2 2 2
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x
y
y+1=ax
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Example: Solve
)3(2)2( ydyxdxdydxxy
Solution:
0)2()62( dyyxydxxxy
0)2()3(2 dyxydxyx
032
2
dy
y
ydx
x
x
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0)3
31()
2
42(
dy
ydx
x
cyyxx )3ln(3)2ln(42
yxcyxc eeeyx 2234 )3()2(
yxkeyx 234 )3()2(
yxcyx 2)3()2(ln 34
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Example: Solve
Solution:
0)1()4( 22 dyxdxy
041 22
y
dy
x
dx
1
11
2tan
2
1tan c
yx
1
11 22
tantan2 cy
x
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In simpler form:
1
11 2tan)2
tantan2tan( cy
x
21
1
tan2tan2
1
2tan2tan
c
xy
yx
C
x
xy
y
x
x
2
2
1
2
21
21
2
Cxyx
xyx
2)1(2
)1(42
2
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Example: Solve
Solution: Best first step:
ydydxyxydydx 2
dyxydxy )1()1( 2
dyy
y
x
dx211
cyx )1ln(2
1)1ln( 2
Cyx )1ln()1ln( 22
Cy
x
)1(
)1(ln
2
2
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2
2
2
)1(
)1(ke
y
x C
2keC
is necessarily +ve
)1()1( 222 ykx
)1()1( 2
2
2
yk
x
2k
)1()1( 2
2
yx
0
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The general solution defines the family of conics:
1)1( 2
2
yx
(a) general solution
If =1 , 1)1( 22 yx , the solution is a circle
If >0 , the solutions are ellipse
If <0 , the solutions are hyperbolas
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Particular solution curve which passes through point )5
13,
5
7(
1)5
13(
)15
7(
2
2
=-1
Hence, particular solution is:
(b) 22 )1(1 xy
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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x
y
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The upper branch of any curve of Eq. (a) for x>0, can be associated
with the upper branch of curve Eq. (b) for x≤1. In the D.E. we divided
by (1-x) and (1-y2), hence x = 1, y =±1 were implicitly ruled out.
Had we desired the particular solution through (1,yo), (xo,1) or (xo,-1),
we could not have found it from the general solution, even if it is
existed.
So we return to the original D.E. and search for the solution by some
methods other than separating the variables.
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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x=1 can be calculated from
by putting =0, So y = 1, y = -1 are singular solutions. General, Particular,
D.E.,
)1()1( 22 yx
1)1( 2
2
yx
0
,
22 )1(1 xy
1x)1()1( 2y
ydy
x
dx
1y
,
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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x
y
y=1
y=-1
x=1
(x ,1)o
(x ,-1)o
(1, y )o
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Homogeneous First-Order D.E.
If all terms in M(x,y) and N(x,y) in:
are all of the same degree in x and y then either of the substitution of will reduce the D.E. to a separable equation. But, generally if the substitution of
dyyxNdxyxM ),(),(
yyandxx
vyxoruxy
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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will convert and
, then M(x,y) and N(x,y)
are called homogeneous function of n
degree.
The D.E. is said
homogeneous when M(x,y) and N(x,y) are
homogeneous functions of the same degree.
),(int),( yxMoyxM n
),(int),( yxNoyxN n
dyyxNdxyxM ),(),(
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Example: Solution: Substitute
?hom)ln(ln),( 22 ogeneousyeyyxxyxFIs y
x
yyandxx
y
x
yeyyxxyxF
)ln(ln),( 2222
y
x
yeyyxx )]ln(lnln[(ln 22
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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])ln(ln[ 22 y
x
yeyyxx
),( yxF
Hence, homogeneous, degree (1) OR Subst. either or
vxy )(),( vFxyxF
vyx )(),( vFyyxF
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Example: Solve
Solution:
Is not separable
Is homogeneous of degree (2)
M and N both are of degree (2)
Substitute
02)3( 22 xydydxyx
vxy xdvvdxdy
0)(2)3( 222 xdvvdxvxxdxxvx
0)(2)31( 222 xdvvdxvxdxvxTikrit University -Civil Engineering
Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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0223 22 vxdvdxvdxvdx
02)1( 2 vxdvdxv
01
212
dvv
vdx
x
cvx )1ln(ln 2
cv
x
1ln
2Tikrit University -Civil Engineering
Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cev
x
12
k
x
y
x
1
2
k
x
xy
x
2
22
kxy
x
22
3
)( 223 xykx Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Example: Solve
Solution: Not separable, but homogeneous. Substitute
Easier rather than
0)( 222 dxtxtxdtx
vxt xdvvdxdt
vtx
0)()( 22222 dxxvvxxxdvvdxx
02 dxvvdxdxxdvvdxTikrit University -Civil Engineering
Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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0)1( 2 dxvxdv
01 2
x
dx
v
dv
cxv lntan 1
vcx 1tanln
vcex1tan
vceex1tan x
t
ekx1tan
Tikrit University -Civil Engineering
Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Example: Solve
Solution: Homogeneous. Substitute
x
y
xeydx
dyx
vxy xdvvdxdy
dxxevxxdvvdxx x
vx
)()(
0 dxevdxxdvvdx v
0 dxexdv v
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0ve
dv
x
dx
0 dvex
dx v
cex v ln
cex x
y
lnTikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Example: Solve
Solution: Homogeneous Substitute
0)3()( dyyxdxyx
vxy xdvvdxdy
0))(3()( xdvvdxvxxdxvxx
0))(3()1( xdvvdxvdxv
0)33()1( 2 vxdvdxvxdvvdxdxv
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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0)3()31( 2 dvvxxdxvvv
0)3()12( 2 dvvxdxvv
012
32
dv
vv
v
x
dx
0)1(
2
1 2
dv
vv
dv
x
dx
cv
vx
)1(
2)1ln(ln
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cv
vx
)1(
2)1(ln
c
x
yx
yx
)1(
2)1(ln
cxy
xxy
2)ln(
xy
xcxy
2)ln(
xy
xc
exy
2
yx
x
kexy
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Exact D.E. of First-Order
If f(x,y) is differentiable, then there is a total
differential :
Conversely if M(x,y) dx+N(x,y) dy=0 which can be
written in the form;
dyy
fdx
x
fdf
0
dfdy
y
fdx
x
f
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With and
Then is a solution.
This D.E. is said to be exact.
But there is a test, in general, for a first
order D.E. when it is exact, although
sometimes it is not difficult to tell by
inspection if the D.E. is exact.
x
fyxM
),(
y
fyxN
),(
kyxf ),(
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Theorem
If and are continuous, then
is exact if and only if
y
M
x
N
0),(),( dyyxNdxyxM
x
N
y
M
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Proof:
Assume equation is exact, so there is a
function f, such that and
and
order is immaterial for
continuous equations.
x
fM
y
fN
yx
f
y
M
2
xy
f
x
N
2
xy
f
yx
f
22
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Then show that there is a function f;
(but and are interchangeable, since
is continuous)
x
fM
x
a
ycdxyxMyxf )(),(),(
x
a
ycdxyxMyy
f)(),(
x
M
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x
a
ycdxy
M
y
f)(
x
a
ycdxx
N
y
f)(
x
N
y
MSince
,
)(),(),( ycyaNyxNy
f
),( yxNy
f
)(),( ycyaNIf
y
b
dyyaNycHence ),()(, Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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functionaIs
dyyaNdxyxMyxf
So
x
a
y
b
),(),(),(
,
dydxy
MNdxyxMyxf
dxy
MNyc
Note
x
a
x
a
][),(),(
)(
:
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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x
a
y
b
cdyyaNdxyxMThen
exactisdyyxNdxyxMIf
),(),(,
,0),(),(
Corollary:
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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0)143()232(;
:
dyyxdxyxSolve
Example
exact
x
Nand
y
M
Solution
33
);1(
:
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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x
a
y
b
cdyyadxyx )143()232(
cyyayxyxxy
b
x
a )23()23( 22
cbbabyyay
ayaaxyxx
)23()23(
)23()23(
22
22
bbabaacyyxyxx 2222 232223
kyyxyxx 22 223
kyxxyyxisSolution 232 22
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cyyxyxx
cdyyxyxx
cdyxnowithNxyxx
22
2
2
223
)14(23
)(23
);2(
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cyyxyxx
cdyyxyxx
cdydxyxxyxx
22
2
2
223
)14(23
]3)143[(23
);3(
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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0;
:
22
222
dy
yxy
yxdxyxxSolve
Example
exact
yx
xy
x
Nand
yx
xy
y
M
Solution
22
22
:
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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)()(3
1
)(3
2)(
2
1
)()(
)(),(),(
2
3
22
2
3
22
2
1
22
ycyx
ycyx
ycdxyxx
ycdxyxMyxf
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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dxyxxyyxy
yx
dxyx
xy
yxy
yx
dxyx
xy
yxy
yx
dxy
MNyc
2
1
22
22
2
2222
2
2222
2
)(22
1
2
2
1
)(
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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][
])}({
[
][
1
2)(
2
1)(
22
22222
22
22222
22
22
2
22
22
2
2
1
22
22
2
yxy
yxyxyxy
yxy
yxyxyxy
yxyxy
xy
yxyyxy
yx
yxyyxy
yxyc
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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,
,
kyyx
ky
yx
ky
yc
yyc
yxy
yyxyyc
32
3
22
3
2
3
22
3
2
22
22
2
)(
3)(
3
1
3)(
)(
][)(
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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D.E. which is not exact can be made exact by
multiplying by an integrating factor. For example;
is exact, and if it simplified by dividing by (xy2), the
equation :
is not exact and can be restored to its original form
by multiplying it by factor (xy2). Sometimes the
integrating factor can be found by inspection.
032 223 dyyxdxxy
032 xdyydx
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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.,
1,0)(
:
22
22
solveandfactorais
yxshowydydxxyx
Example
exact
yx
xy
x
Nand
yx
xy
y
M
dyyx
ydx
yx
x
Solution
222
222
2222
)(
2
)(
2
0)1(
:
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cyxx
cyxx
yx
ydyxdxdx
dyyx
ydx
yx
xdx
Simpler
22
22
22
2222
ln
)(ln2
1
022
2
1
0)(
;
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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.,
,0)(: 32
solveandfactorthefind
dyxyxydxExample
0)()(
)(
1
0
2
32
2
2
32
dyxy
yx
xy
xdyydx
xyisfactorThe
dyyxxdyydx
Solution
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cy
xy
ydyxy
xyd
orydyxy
xdyydx
2
1
0)(
)(
,0)(
2
2
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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.,int
,)4(: 22
solveandfactoregrationthefind
dyyxydxxdyExample
dy
x
yx
ydxxdy
dyx
y
x
ydxxdy
xisfactorThe
Solution
)4(
)4(
1
2
22
2
2
2
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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2,
x
ydxxdydu
x
yu
cyx
y
cyu
dyu
du
dyu
du
2tan
2
1
2tan
2
1
])2
(1[4
)4(
1
1
2
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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multiplieraasxyTry
xydydxxdycontainsEqIf
multiplieraasy
orx
Try
x
ydydxxdycontainsEqIf
multiplieraasyxTry
yxdydyxdxcontainsEqIf
FactornIntegratiotheonNotes
)(.)3(
11
)(.)2(
)(
)(2
1.)1(
:
22
22
22
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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22
22
11
22
1
22
1
22
22
22)][ln()7(
)()6(
)(sin)5(
)(tan)4(
22)()3(
)(,)()2(
,)()1(
:
yx
ydyxdxyxd
dyxnydxymxyxd
yxx
ydxxdy
x
yd
yx
ydxxdy
x
yd
ydyxdxyxd
y
xdyydx
y
xd
x
ydxxdy
x
yd
dyy
fdx
x
ffydxxdyxyd
Notes
mnnmnm
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Linear first-order equations
)2........()(
)(])([
)1(..............................)()(
;)(
)()()(
ydx
xd
dx
dyxyx
dx
d
xQyxPdx
dy
tscoefficientherenameandxFbyDivide
xHyxGdx
dyxF
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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.
;)()()(
)3.....()()()()()(
);()1(.
EqseparablesimpleaisThis
xPxdx
xdIf
xQxyxPxdx
dyx
xbyEqMultiply
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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factoraise
edxxPx
dxxPx
dxxPx
xd
dxxP
dxxP
)(
)(])(exp[)(
)()(ln
)()(
)(
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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)4......()(
;,)(
;
)(]*[
)(])([
;)1(.
)()()(
)()(
)()(
)()(
)(
dxxPdxxPdxxP
dxxPdxxP
dxxPdxxP
dxxPdxxP
dxxP
ecdxexQey
finallyandcdxexQye
equationabovetheIntegrate
exQyedx
d
exQyxPdx
dye
efactorthebyEqMultiply
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Steps to solve the linear first-order
equations:
1-Compute the integration factor
2-Multiply the given equation by this factor.
3-Integrate both sides of the resulting
equation.
4-Solve the integrated equation for y.
dxxP
e)(
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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01
2))(1(
;:
2
xwhenywhich
xydxdxdyx
SolveExample
dxx
xydxdy
xbyequationtheDivide
Solution
2
2
1
2
1
:
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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21
1ln
)1ln(
1
2
2
2
1
1
)(
11
2
1
21
22
2
xee
ex
yx
x
dx
dy
x
xy
dx
dy
xx
dxx
x
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cxyx
cdxx
yx
egratingBy
xy
x
x
dx
dy
x
1
2
22
2222
tan1
1
1
1
1
1
;int
1
1
)1(
2
1
1
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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)1(tan)1(
1
)01(01
01
)1(tan)1(
212
212
xxxy
c
c
xy
xcxxy
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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0)22(
;:
dyyxxyydx
SolveExample
22
2)2(
22
022
:
xy
y
dy
dx
yxydy
dxy
yxxydy
dxy
ydyxdyxydyydx
Solution
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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y
yyy
yy
yyydy
y
y
ceyyxy
ceyeey
dyeyxey
yeeey
442
)22(2
2
)(
22
2
22
2ln2
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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The Bernoulli's Equation:
D.E. of the form
is said to be a Bernoulli's equation. (P
and Q are functions of x (or
constants) and do not contain y)
nyQPydx
dy
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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dx
dy
yn
dx
dvyv
QPydx
dy
y
ybysidesbothdividingBy
yQPydx
dy
n
n
n
n
n
n
1)1(
1
1
1
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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10.'
1
0
)1()1(
1
1
andnEqsBernoulli
orderfirstseparablenIf
orderfirstlinearnIf
nQPvndx
dv
QPvdx
dv
n
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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3;: yx
y
dx
dySolveExample
dx
dv
dx
dy
y
dx
dv
dx
dy
yv
yPut
xydx
dy
y
EqBerisyx
y
dx
dy
Solution
2
11
21
111
..
:
3
32
23
3
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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2
ln
ln22)(
1
)(
22
12
1
2
xe
eeex
vinlinearvxdx
dv
x
v
dx
dv
x
xx
dxdxxP
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cxxy
cxx
v
cdxxx
v
cdxex
vdxxP
21
21
21
21
22
2
22
)(
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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,
,
1)2(
)2(1
2
2
2
22
cxyx
cxxy
cxxy
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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3
1;: ye
x
y
dx
dySolveExample x
dx
dv
dx
dy
y
dx
dv
dx
dy
yv
yPut
eyxdx
dy
y
EqBerisyex
y
dx
dy
Solution
x
x
2
11
21
1
1
11
..1
:
3
32
23
3
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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2)1ln(
)1ln(212)(
)1(
)(
21
2
12
1
2
xe
eeex
vinlinearevxdx
dv
ex
v
dx
dv
x
xx
dxdxxP
x
x
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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222
22
22
22
2
22
)1()1(
4
1
42
1
)1()1(
4
1
42
4)1(4)1(2)1(
]2)1(2)1[(2)1(
)1(2
)1(2)1(
x
c
x
e
x
ee
y
x
c
x
e
x
eev
ceexexxv
ceexexxv
cdxex
cdxxexv
xxx
xxx
xxx
xxx
x
x
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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xeyxydx
dySolveExample
x
sin;: 22
2
dx
dv
dx
dy
y
dx
dv
dx
dy
yv
yPut
xey
xdx
dy
y
EqBerisxeyxydx
dy
Solution
x
x
2
2
22
22
1
11
sin11
..sin
:
2
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cxdxve
cdxxeeve
eex
vwithEDlinearxexvdx
dv
xexvdx
dv
x
xxx
xxdx
x
x
sin
)sin(
)(
..sin
sin
2
222
2
2
2
2
222
2
2
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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)(cos1
cos1
cos
2
2
2
2
2
2
cxey
cxy
e
cxve
x
x
x
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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min86.13
100200150
;150
100200
100
200100
100,0
20
20
t
e
lbQWhen
eQ
c
c
lbQtWhen
t
t
o
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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original
orthogonal
orthogonaloriginal
dx
dydx
dy
dx
dy
dx
dySlope
esTrajectoriOrthogonal
)(
1)(
1)()(
.
4
;:
2
estrajectoriorthogonalFind
xcy
GivenExample
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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y
xy
orthogonalofSlope
x
yy
x
y
x
ycyy
x
yccxy
Solution
2
:
2
4442
44
:
22
22
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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cxy
cxy
xdxydy
y
x
dx
dy
y
xy
22
22
2
2
2
2
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Example: A hemispherical tank of radius; R,
is initially filled with water. At the bottom
of the tank there is a hole or radius; r,
through which water drains under the
influence of gravity. Find the depth of the
water at any time; t, and determine how
long it will be taken the tank to drain
completely.
Tikrit University -Civil Engineering
Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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)(tantan
2
,int
;
:
2
2
headheighteousinsh
gravityonaccelaratig
lawTorricelliorificefromgh
AdtdV
rAanddtwaterof
streamdtervalwithwaterofVolume
dyxdV
waterofvolumetheinDecrease
Solution
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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y
x
R
y
xdy
r
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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dtgrdyyRy
dtgyrdyyyR
dtgyrdyx
EqsEquating
dtgyrdV
dyxdV
2)2(
2)2(
2
)2(&)1(.
)2.......(..........2
)1.(....................
22
3
2
1
22
22
2
2
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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2
5
2
5
2
5
22
5
2
3
15
14
05
2
3
4
,0
25
2
3
4
Rc
cRR
RytWhen
ctgryRy
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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gr
Rt
Rtgr
tywaterNo
RtgryRy
215
14
15
1420
??,0;
15
142
5
2
3
4
2
2
5
2
5
2
2
5
22
5
2
3
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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Example: The rate at which a solid substance dissolves
varies directly as the amount of undissolved solid
presented in the solvent and as the difference between
the instantaneous concentration and the saturation
concentration of the substance. Twenty pounds of solute
is dumped into a tank containing 120 lb of solvent, and
at the end of 12 min. the concentration is observed to be
1 part in 30. Find the amount of solute in solution at any
time; t, if the saturation concentration is 1 part of solute
to 3 parts of solvent.
Tikrit University -Civil Engineering
Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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)(
120
)20(
,;
:
ionconcentratsaturationmaterialdundissolvedt
dQ
ionconcentratingcorrespondtheisQ
timethatat
materialdundissolveofamounttheisQ
ttimeat
solutioninmaterialtheofamounttheisQIf
Solution
120 lb
20 lb
Q
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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,
,
cdtk
dQQQ
dtk
dQ
QQk
dt
dQ
QQk
dt
dQ
120]
)40(20
1
)20(20
1[
120)40()20(
)40()20(120
)1203
1()20(
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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ctk
Q
Q
ctk
cdtk
dQQQ
cdtk
dQQQ
620
40ln
6)40ln()20ln(
620
1]
)40(
1
)20(
1[
20
1
120]
)40(20
1
)20(20
1[
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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tk
Q
Q
ortk
Q
Q
cck
QtWhen
ctk
Q
Q
6)20(2
40ln
,2ln620
40ln
2ln)0(6020
040ln
0,0
620
40ln
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan
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t
t
t
e
eQ
eQ
Q
tQ
Q
kk
concetAfter
tk
Q
Q
0098.0
0098.0
0098.0
2
)1(40
240
40
0098.0)20(2
40ln
05889.0)12(6)420(2
440ln
412030
1..min12
6)20(2
40ln
Tikrit University -Civil Engineering Department-Third Stage Eng. Anal.& Num. Meth. Dr. Adnan Jayed Zedan