Embed Size (px)
DESCRIPTION
MAT 3724 Applied Analysis I. 2.1 Part I Cauchy Problem for the Heat Equation. http://myhome.spu.edu/lauw. Chapter 2. PDE on Unbounded Region In one dimension, it is the real line Easier to solve than bounded region. Preview. Initial Value Problem with the Heat equation - PowerPoint PPT Presentation
Citation preview
MAT 3724Applied Analysis I
2.1 Part ICauchy Problem for the
Heat Equation
http://myhome.spu.edu/lauw
Chapter 2
PDE on Unbounded Region In one dimension, it is the real line Easier to solve than bounded region
Preview
Initial Value Problem with the Heat equation
Introduce Dimensional Analysis
Cauchy Problem for the Heat Equation
Note the change of notations (u instead of q)
, , 0(2.1)
( ,0) ( )t xxu ku x R t
u x x
x
Set Up
Initially, the temp. distribution is given by ____
, , 0(2.1)
( ,0) ( )t xxu ku x R t
u x x
x
Lateral side insulated
,u x t
Example 1
0
, , 0(2.3)
0 0(2.4) ( ,0)
0
t xxw kw x R t
xw x
u x
Example 1:Thought Experiment
Scenario 1 Scenario 20
, , 0(2.3)
0 0(2.4) ( ,0)
0
t xxw kw x R t
xw x
u x
Example 1:Thought Experiment
0
, , 0(2.3)
0 0(2.4) ( ,0)
0
t xxw kw x R t
xw x
u x
What would happen to w(x,t) as the time moves on?
Example 1: Simplification, , 0
(2.3)0 0
(2.4) ( ,0)1 0
t xxw kw x R t
xw x
x
Example 1: Simplification, , 0
(2.3)0 0
(2.4) ( ,0)1 0
t xxw kw x R t
xw x
x
Interpretations of HW 05 Problem 2
The PDE model and inequality below appear in the last HW
0
, 0 , 0,
0, , 0, 0,
,0 , 0 .
t xxu ku x l l
u t u l t t
u x u x x l
2 2
0
0 0
,l l
u x t dx u x dx
Interpretations of HW 05 Problem 2
Even though the set ups are not exactly the same, some calculations with this example may help us to understand what the inequality means.
2 2
0
0 0
,l l
u x t dx u x dx
Interpretations of HW 05 Problem 2
2 2
0
0 0
,l l
u x t dx u x dx
5 5 5
2 2 2
0
5 5 0
,0 1 5w x dx w x dx dx
Interpretations of HW 05 Problem 2
2 2
0
0 0
,l l
u x t dx u x dx
5 5 5
2 2 2
0
5 5 0
,0 1 5w x dx w x dx dx
52
5
52
5
,1 2.101057720
,10 1.258015936
w x dx
w x dx
Example 1
Solution Method: Dimensional Analysis (units) Guessing
0
, , 0(2.3)
0 0(2.4) ( ,0)
0
t xxw kw x R t
xw x
u x
Inspirations
20
1
2h gt v t 0v
Variables h g t v0 p1 p2
units No No
dimension Dimensionless Dimensionless
Inspirations
20
1
2h gt v t 0v
If we can find___________________, then we can
recover_____________________.
Variables h g t v0 p1 p2
units No No
dimension Dimensionless Dimensionless
Example 1
Variables w x t u0 k wt wxx
units
dimension
If we can find_________________________,
then we can recover_____________________.
0
, , 0(2.3)
0 0(2.4) ( ,0)
0
t xxw kw x R t
xw x
u x
Notations Relaxation for Improper Integrals
Provided that you understand the correct concepts, you are allow to use less rigorous notations. Here is an illustration.
41
2
1
xdx
x
