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Transcript
DIFFERENTIAL
EQUATIONS
Dr. Ir. Harinaldi, M.Eng
Mechanical Engineering Department
Faculty of Engineering University of Indonesia
Differential Equations
 An equation which involves unknown function and its
derivatives
 ordinary differential equation (ode) : not involve partial
derivatives
 partial differential equation (pde) : involves partial
derivatives
 order of the differential equation is the order of the
highest derivatives
Examples:
d 2 y dy

 3 x sin y  second order ordinary
dx 2 dx
differential equation
y
y x  t
 first order partial differential
x

t
x x  t
equation
Differential Equations
Modeling via Differential Equations
Note that the set of equations is called a Model for the system.
How do we build a Model?
The basic steps in building a model are:
Step 1: Clearly state the assumptions on which the model will be
based. These assumptions should describe the
relationships among the quantities to be studied.
Step 2: Completely describe the parameters and variables to be
used in the model.
Step 3: Use the assumptions (from Step 1) to derive
mathematical equations relating the parameters and
variables (from Step 2).
Differential Equations
Some Application of Differential Equation in Engineering
Differential Equations
Larutan
Air-Garam
Awal:
Vol. air : Vo liter
Massa garam :
a gram
Konsentrasi garam : b gram/liter
Laju alir : e liter/min
?
Massa garam setiap saat (menit) ?
Tercampur sempurna
laju alir : f liter/min
Differential Equations
 A linear differential equation of order n is a differential equation
written in the following form:
dny
d n 1y
an  x  n  an 1  x  n 1 
dx
dx
dy
 a1  x   a0  x  y  f ( x )
dx
where an(x) is not the zero function
 General solution : looking for the unknown function of a
differential equation
 Particular solution (Initial Value Problem) : looking for
the unknown function of a differential equation where the
values of the unknown function and its derivatives at some
point are known
 Issues in finding solution : existence and uniqueness
1st Order DE - Separable Equations
The differential equation M(x,y)dx + N(x,y)dy = 0 is separable if
the equation can be written in the form:
f1 x g1 y dx  f2 x g2 y dy  0
Solution :
1
1. Multiply the equation by integrating factor: f x g y 
2
1
2. The variable are separated :
f1 x 
g y 
dx  2 dy  0
f2 x 
g 1 y 
3. Integrating to find the solution:
f1 x 
g 2 y 
 f2 x dx   g1 y dy  C
1st Order DE - Separable Equations
Examples:
1. Solve : 4 x dy  y dx  x 2dy
Answer:
1st Order DE - Separable Equations
Examples:
1. Solve :
Answer:
dy x 2  2

dx
y
1st Order DE - Separable Equations
Examples:
2. Find the particular solution of :
Answer:
dy y 2  1

; y 1  2
dx
x
1st Order DE - Homogeneous Equations
Homogeneous Function
f (x,y) is called homogenous of degree n if : f x ,y   n f x , y 
Examples:
f x , y   x  x y
4
3
 homogeneous of degree 4
4
3
f x ,y   x   x  y 


 4 x 4  x 3 y  4f x , y 
f x , y   x 2  sin x cosy  non-homogeneous
f x , y   x   sinx  cosy 
2
 2 x 2  sinx  cosy 
 n f x , y 
1st Order DE - Homogeneous Equations
The differential equation M(x,y)dx + N(x,y)dy = 0 is homogeneous
if M(x,y) and N(x,y) are homogeneous and of the same degree
Solution :
1. Use the transformation to : y  vx  dy  v dx  x dv
2. The equation become separable equation:
P x,v dx  Qx,v dv  0
3. Use solution method for separable equation
f1 x 
g 2 v 
 f2 x dx   g1 v dv  C
4. After integrating, v is replaced by y/x
1st Order DE – Homogeneous Equations
Examples:
1. Solve :
Answer:
x
3

 y 3 dx  3xy2 dy  0
1st Order DE - Homogeneous Equations
Examples:
2. Solve :
Answer:
dy  2x  5y

dx
2x  y
1st Order DE – Exact Equation
The differential equation M(x,y)dx + N(x,y)dy = 0 is an exact
equation if : M N
y

x
The solutions are given by the implicit equation F x, y   C
where : F/ x = M(x,y) and F/ y = N(x,y)
Solution :
1. Integrate either M(x,y) with respect to x or N(x,y) to y.
Assume integrating M(x,y), then :
F x, y    M x, y dx   y 
2. Now :
or :
 M x, y dx   ' y   Nx, y 

 ' y   N x, y    M x, y dx 
y
F


y y
1st Order DE – Exact Equation
3. Integrate ’(y) to get (y) and write down the result F(x,y) = C
Examples:
1. Solve : 2x 3  3y dx  3 x  y  1dy  0
Answer:


1st Order DE – Exact Equation
Examples:
dy
2
0
2. Solve : 4 xy  1  2 x  cos y 
dx
Answer:
1st Order DE – Non Exact Equation
The differential equation M(x,y)dx + N(x,y)dy = 0 is a non exact
equation if : M  N
y
x
The solutions are given by using integrating factor to change the
equation into exact equation
Solution :
M
N

y
x
 f x   function of x only
1. Check if :
N
f  x dx

then integrating factor is e
or if :
N
x
 My
 g  y   function of y only
M
g  y dy

then integrating factor is e
1st Order DE – Non Exact Equation
2. Multiply the differential equation with integrating factor which
result an exact differential equation
3. Solve the equation using procedure for an exact equation
1st Order DE – Non Exact Equation
Examples:
1. Solve : x 2  y 2  x dx  xy dy  0
Answer:
1st Order DE – Non Exact Equation
Examples:
dy
3 xy  y 2
2. Solve :
 2
dx
x  xy
Answer:
1st Order DE – Linear Equation
A first order linear differential equation has the following
general form: dy
 px y  q x 
dx
Solution :
p  x dx

1. Find the integrating factor: ux   e
2. Evaluate :
 u x q x dx
3. Find the solution:
u x q x dx  C

y
u x 
1st Order DE – Linear Equation
Examples:
dy
 2 xy  4 x
1. Solve :
dx
Answer:
1st Order DE – Linear Equation
Examples:
2. Find the particular solution of :
y   tan x  y  cos2  x  ,
Answer:
y  0  2
2nd Order DE – Linear Equation
A second order differential equation is an equation involving the
unknown function y, its derivatives y' and y'', and the variable x.
We will consider explicit differential equations of the form :
d 2y
 f y , y ' , x 
2
dx
A linear second order differential equations is written as:
ax y   bx y   cx y  d x 
When d(x) = 0, the equation is called homogeneous, otherwise it
is called nonhomogeneous
2nd Order DE – Linear Equation
To a nonhomogeneous equation
ax y   bx y   cx y  d x 
(NH)
we associate the so called associated homogeneous equation
(H)
ax y   bx y   cx y  0
Main result:
The general solution to the equation (NH) is given by:
y  yh  y p
where:
(i) yh is the general solution to the associated homogeneous
equation (H);
(ii) yp is a particular solution to the equation (NH).
2nd Order DE – Linear Equation
Basic property
Consider the homogeneous second order linear equation
ax y   bx y   cx y  0
or the explicit one
y   px y   qx y  0
Property:
If y1 and y2 are two solutions, then:
y x   c1y1x   c2 y 2 x 
is also a solution for any arbitrary constants c1 ,c2
2nd Order DE – Reduction of Order
Reduction of Order Technique
This technique is very important since it helps one to find a second
solution independent from a known one.
Let y1 be a non-zero solution of: y   px y   qx y  0
Then, a second solution y2 independent of y1 can be found as:
Where:
y 2 x   y1x v x 
  p  x dx
1
v x    2 e
dx
y 1 x 
The general solution is then given by
y x   c1y1x   c2 y 2 x 
2nd Order DE – Reduction of Order
Examples:
1. Find the general solution to the Legendre equation
1 x y   2xy   2y  0
2
Using the fact that : y1 = x is a solution.
2nd Order DE – Homogeneous LE with
Constant Coefficients
Homogeneous Linear Equations with Constant Coefficients
A second order homogeneous equation with constant coefficients
is written as: ay   by   cy  0 a  0
where a, b and c are constant
The steps to follow in order to find the general solution is as follows:
(1) Write down the characteristic equation
a  0
a2  b  c  0
This is a quadratic. Let 1 and 2 be its roots we have
1,2
 b  b 2  4ac

2a
2nd Order DE – Homogeneous LE with
Constant Coefficients
(2) If 1 and 2 are distinct real numbers (if b2 - 4ac > 0), then the
general solution is: y  c1e  x  c 2e  x
1
2
(3) If 1 = 2 (if b2 - 4ac = 0), then the general solution is:
y  c1e 1x  c2 xe 1x
(4) If 1 and 2 are complex numbers (if b2 - 4ac < 0), then the
general solution is:
y  c1ex cosx   c2ex sinx 
Where:
b

and  
2a
4ac  b 2
2a
2nd Order DE – Homogeneous LE with
Constant Coefficients
1. Find the solution to the Initial Value Problem
y   2y   2y  0 ; y  4  2 ; y  4  2
2nd Order DE – Non Homogeneous LE
To a nonhomogeneous equation
ax y   bx y   cx y  d x 
(NH)
we associate the so called associated homogeneous equation
(H)
ax y   bx y   cx y  0
Main result:
The general solution to the equation (NH) is given by:
y  yh  y p
where:
(i) yh is the general solution to the associated homogeneous
equation (H);
(ii) yp is a particular solution to the equation (NH).
2nd Order DE – Non Homogeneous LE
Method Undetermined Coefficients
We will guess the form of yp and then plug it in the equation to find it.
However, it works only under the following two conditions:
 the associated homogeneous equations has constant coefficients
 the nonhomogeneous term d(x) is a special form
d x   Pn x e cosx  or d x   Ln x e sinx 
where Pn(x) and Ln(x) are polynomial functions of degree n
Note: we may assume that d(x) is a sum of such functions
x
Then a particular solution yp is given by:
x
s
x
x









y p x  x Tn x e cos x  Rn x e sinx 
Where:
Tn x   A0  A1x  A2 x 2  ...  An x n
Rn x   B0  B1x  B2 x 2  ...  Bn x n
2nd Order DE – Non Homogeneous LE
Method Undetermined Coefficients
The steps to follow in applying this method:
1. Check that the two conditions are satisfied
2. Write down the characteristic equation and find its root
a2  b  c  0
3. Write down the number   i
4. Compare this number to the roots of the characteristic equation
s 0
If :   i is not one of the roots
  i is one of the distinc roots  s  1
  i is equal to both roots
s 2
5. Write down the form of particular solution


y p x   x s Tn x ex cosx   Rn x ex sinx 
Where: Tn x   A0  A1x  A2 x 2  ...  An x n R x   B  B x  B x  ...  B x
2
n
0
1
2
n
n
6. Find constant A and B by plugging yp solution to original equation
2nd Order DE – Non Homogeneous LE
Method Undetermined Coefficients
1. Find a particular solution to the equation
y   3y   4y  2 sinx 
2nd Order DE – Non Homogeneous LE
Method Undetermined Coefficients
If the nonhomogeneous term d(x) consist of several terms:
i N
d x   d1x   d 2 x   ...  d N x    d i x 
i 1
We split the original equation into N equations
ax y   bx y   c x y  d1 x 
ax y   bx y   c x y  d 2 x 

ax y   bx y   c x y  d N x 
Then find a particular solution ypi
A particular solution to the original equation is given by:
i N
y p x   y p1 x   y p 2 x   ...  y pN x    y pi x 
i 1
2nd Order DE – Non Homogeneous LE
Method Undetermined Coefficients
If the nonhomogeneous term d(x) consist of several terms:
i N
d x   d1x   d 2 x   ...  d N x    d i x 
i 1
We split the original equation into N equations
ax y   bx y   c x y  d1 x 
ax y   bx y   c x y  d 2 x 

ax y   bx y   c x y  d N x 
Then find a particular solution ypi
A particular solution to the original equation is given by:
i N
y p x   y p1 x   y p 2 x   ...  y pN x    y pi x 
i 1
2nd Order DE – Non Homogeneous LE
Method Undetermined Coefficients
1. Find a particular solution to the equation
y   3y   4y  3e2 x  8e  x