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PROFESSOR: Ladies and gentlemen,
welcome to this set

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00:00:24,880 --> 00:00:28,760
of lectures on the finite
element method.

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00:00:28,760 --> 00:00:32,640
In these lectures I would like
to give you an introduction to

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00:00:32,640 --> 00:00:37,190
the linear analysis of solids
and structures.

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You are probably well aware that
the finite element method

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00:00:39,950 --> 00:00:42,980
is now widely used for analysis
of structural

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engineering problems.

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00:00:45,090 --> 00:00:48,700
The method is used in civil,
aeronautical, mechanical,

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00:00:48,700 --> 00:00:52,970
ocean, mining, nuclear,
biomechanical, and other

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00:00:52,970 --> 00:00:55,470
engineering disciplines.

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00:00:55,470 --> 00:00:59,230
Since the first applications two
decades ago of the finite

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element method we now see
applications in linear,

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00:01:03,370 --> 00:01:07,020
nonlinear, static, and
dynamic analysis.

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00:01:07,020 --> 00:01:09,580
However, in this set of
lectures, I would like to

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00:01:09,580 --> 00:01:13,220
discuss with you only the
linear, static, and dynamic

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00:01:13,220 --> 00:01:16,000
analysis of problems.

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00:01:16,000 --> 00:01:18,700
The finite element method
is used today in

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various computer programs.

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00:01:21,025 --> 00:01:22,960
And its use is very
significant.

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00:01:26,700 --> 00:01:29,780
My objective in this set of
lectures is to introduce to

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00:01:29,780 --> 00:01:34,800
you the finite element methods
or some of the finite element

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00:01:34,800 --> 00:01:38,220
methods that are used for linear
analysis of solids and

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00:01:38,220 --> 00:01:39,340
structures.

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00:01:39,340 --> 00:01:43,120
And here we understand linear
to mean that we're talking

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about infinitesimally small
displacements and that we are

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00:01:48,300 --> 00:01:51,740
using a linear elastic
material law.

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00:01:51,740 --> 00:01:54,660
In other words, Hooke's
law applies.

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00:01:54,660 --> 00:01:58,070
We will consider, in this set
of lectures, the formulation

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00:01:58,070 --> 00:02:01,200
of the finite element
equilibrium equations, the

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00:02:01,200 --> 00:02:06,230
calculation of finite element
matrices of the matrices that

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00:02:06,230 --> 00:02:09,090
arise in the equilibrium
equations.

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00:02:09,090 --> 00:02:12,170
We will be talking about the
methods for solution of the

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00:02:12,170 --> 00:02:16,340
governing equations in static
and dynamic analysis.

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00:02:16,340 --> 00:02:21,280
And we will talk about actual
computer implementations.

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00:02:21,280 --> 00:02:26,000
I will emphasize modern and
effective techniques and their

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00:02:26,000 --> 00:02:27,250
practical usage.

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00:02:29,760 --> 00:02:34,820
The emphasis, in this set of
lectures, is given to physical

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00:02:34,820 --> 00:02:38,460
explanations of the methods,
techniques that we are using

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00:02:38,460 --> 00:02:42,200
rather than mathematical
derivations.

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00:02:42,200 --> 00:02:46,720
The techniques that we will be
discussing are those employed

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largely in the computer programs
SAP and ADINA.

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00:02:51,320 --> 00:02:56,000
SAP stands for Structural
Analysis Program and you might

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00:02:56,000 --> 00:03:00,990
very well be aware that there is
a series of such programs,

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00:03:00,990 --> 00:03:04,430
SAP I to SAP VI now.

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00:03:04,430 --> 00:03:08,540
And ADINA stands for
Automatic Dynamic

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Incremental Nonlinear Analysis.

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00:03:11,200 --> 00:03:16,285
However, this program is also
very effectively employed for

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linear analysis.

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The nonlinear analysis being
then a next step in the usage

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of the program.

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00:03:24,250 --> 00:03:27,290
In fact, the elements in ADINA,
the numerical methods

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that are used in ADINA, I
consider to be the most

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effective, the most modern state
of the art techniques

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that are currently available.

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These few lectures really
represent a very brief and

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compact introduction
to the field of

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finite element analysis.

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We will go very rapidly through
some or the basic

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concepts, practical
applications, and so on.

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We shall follow quite closely,
however, certain sections in

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my book entitled Finite
Element Procedures in

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Engineering Analysis to be
published by Prentice Hall.

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And I will be referring in the
study guide of this set of

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lectures extensively to this
book to the specific sections

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00:04:12,190 --> 00:04:17,370
that we're considering in the
lectures in this book.

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The finite element solution
process can be described as

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given on this viewgraph.

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You can see here that we talk
about a physical problem.

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We want to analyze an actual
physical problem.

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And our first step, of course,
is to establish a finite

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element model of that
physical problem.

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Then, in the next step,
we solve that model.

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And then we have to interpret
the results.

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Because the interpretation of
the results depends very much

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on how we established the finite
element model, what

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00:04:54,830 --> 00:04:56,900
kind of model we used,
and so on.

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And in establishing the finite
element model, we have to be

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00:04:59,650 --> 00:05:03,640
aware of what kinds of elements,
techniques, and so

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on are available to us.

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00:05:05,610 --> 00:05:11,250
Well, therefore, I will be
talking, in the set of

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lectures, about these three
steps basically here for

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different kinds of physical
problems.

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Once we have interpreted the
results we might go back from

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down here to there to revise
or refine our model and go

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00:05:28,350 --> 00:05:32,510
through this process again until
we feel that our model

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has been an adequate one for the
solution of the physical

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00:05:35,520 --> 00:05:37,610
problem of interest.

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00:05:37,610 --> 00:05:41,690
Let me give you or show you
some models that have been

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00:05:41,690 --> 00:05:45,100
used in actual structural
analysis.

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00:05:45,100 --> 00:05:47,890
You might have seen similar
models in textbooks, in

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00:05:47,890 --> 00:05:49,580
publications already.

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00:05:49,580 --> 00:05:53,190
This, for example, is a model
that was used for the analysis

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of a cooling tower.

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00:05:54,650 --> 00:05:57,930
The basic process of the finite
element method is that

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we are taking the continuous
system, and we are idealizing

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00:06:01,570 --> 00:06:03,660
it as an assemblage
of elements.

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00:06:03,660 --> 00:06:08,110
I'm drawing here a typical
three-noded triangular shell

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00:06:08,110 --> 00:06:10,710
element that was used
in the analysis of

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this cooling tower.

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00:06:13,010 --> 00:06:16,680
We talk about very many elements
in order to obtain an

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00:06:16,680 --> 00:06:18,630
accurate response prediction.

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00:06:18,630 --> 00:06:21,240
And, of course, that means that
we will be dealing with a

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00:06:21,240 --> 00:06:24,100
large set of equations
to be solved.

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00:06:24,100 --> 00:06:26,980
And there's a significant
computer effort required.

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00:06:26,980 --> 00:06:28,630
I will be addressing
all of these

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questions in these lectures.

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00:06:32,360 --> 00:06:35,400
Here you see the finite element
model of a dam.

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00:06:35,400 --> 00:06:39,380
The earth below the dam was
idealized as an assemblage all

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00:06:39,380 --> 00:06:42,240
such elements here, triangular
elements now.

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And the dam itself was
also idealized as an

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assemblage of elements.

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00:06:47,400 --> 00:06:51,530
We will be talking about how
such assemblages are best

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00:06:51,530 --> 00:06:54,320
created, what kinds of elements
to select, what

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00:06:54,320 --> 00:06:56,910
assumptions are in the selection
of these elements,

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00:06:56,910 --> 00:07:00,120
and then how do we solve the
resulting finite element

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00:07:00,120 --> 00:07:01,820
equilibrium equations.

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00:07:01,820 --> 00:07:05,390
Here you see the finite element
analysis, or the mesh

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00:07:05,390 --> 00:07:08,770
that was used in the finite
element analysis of a tire.

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00:07:08,770 --> 00:07:12,170
This wall is half of the tire,
as you can see, and this was

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the finite element mesh used.

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Again, we have to judiciously
choose the kinds of finite

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elements to be employed.

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00:07:18,790 --> 00:07:22,080
And we will be talking about
that in this set of lectures.

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00:07:22,080 --> 00:07:26,750
Here you see the finite element
model employed in the

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analysis of a spherical
cover of a laser

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vacuum target chamber.

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00:07:32,010 --> 00:07:33,390
This is the finite element
mesh used.

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Again, specific elements
were employed here.

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And we will be talking about the
characteristics of these

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00:07:39,050 --> 00:07:41,030
elements in this set
of lectures.

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Here you see the model of the
shell structure subjected to a

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pinching load.

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00:07:48,120 --> 00:07:50,790
There's a load up here and
a load down there.

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00:07:50,790 --> 00:07:53,670
These are the triangular
elements that were used in the

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00:07:53,670 --> 00:07:58,670
idealization of that shell and
the resulting bending moments

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00:07:58,670 --> 00:08:02,110
and displacements along the line
DC are plotted here that

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00:08:02,110 --> 00:08:06,570
have been predicted by the
finite element analysis.

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00:08:06,570 --> 00:08:09,920
Finally here you see the finite
element idealization of

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00:08:09,920 --> 00:08:14,140
a wind tunnel that was used for
the dynamic analysis of

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00:08:14,140 --> 00:08:15,270
this tunnel.

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00:08:15,270 --> 00:08:18,740
You can see a large number of
shell elements were employed

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00:08:18,740 --> 00:08:21,860
in the idealization of the
shelf of the tunnel.

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Then, of course, supports were
provided here for that shell.

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00:08:25,640 --> 00:08:29,680
And this was a very large
system that was solved.

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00:08:29,680 --> 00:08:33,010
And the eigenvalues of this
system were calculated using

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the subspace iteration method
that we would be also talking

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about in this set of lectures.

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00:08:37,900 --> 00:08:41,190
Well, with this short
introduction then, I would

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00:08:41,190 --> 00:08:45,850
like to go now and discuss with
you some basic concepts

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00:08:45,850 --> 00:08:47,460
of engineering analysis.

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There's a lot of work ahead
in this set of lectures.

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00:08:50,340 --> 00:08:54,310
So let me take off my jacket
with your permission, and let

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00:08:54,310 --> 00:08:58,270
us just go right on with the
actual discussion of the

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00:08:58,270 --> 00:09:01,650
theory of the finite
element method.

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00:09:01,650 --> 00:09:07,390
The basic concepts that I
address here, in this first

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00:09:07,390 --> 00:09:13,210
lecture, is summarized basically
here once more.

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00:09:13,210 --> 00:09:16,430
We are talking about the
idealization of a system.

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We are talking about the
formulation of the equilibrium

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00:09:18,800 --> 00:09:23,110
equations, then the solution of
the equations, and then, as

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00:09:23,110 --> 00:09:24,290
I mentioned earlier
already, the

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00:09:24,290 --> 00:09:26,110
interpretation of the results.

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00:09:26,110 --> 00:09:29,180
These are really the four
steps that have to be

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performed in the analysis of an
engineering system or of a

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00:09:35,090 --> 00:09:38,550
physical system that
we want to analyze.

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00:09:38,550 --> 00:09:41,280
Now when we talk about systems,
we are really talking

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about discrete and continuous
systems where, however, in

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00:09:45,380 --> 00:09:51,160
reality, we recognize that all
systems are really continuous.

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However, if the system consists
of a set of springs,

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00:09:57,110 --> 00:10:01,680
dashpots, beam elements, then
we might refer to this

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00:10:01,680 --> 00:10:04,650
continuous system as a discrete
system because we can

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00:10:04,650 --> 00:10:11,210
see already, it is obvious, so
to say, how to idealize a

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00:10:11,210 --> 00:10:17,050
system into a set of elements,
discrete elements.

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00:10:17,050 --> 00:10:19,900
In that case, the response is
described by variables at a

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00:10:19,900 --> 00:10:22,090
finite number of points.

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00:10:22,090 --> 00:10:25,730
And this means that we have to
set up a set of algebraic

183
00:10:25,730 --> 00:10:29,690
questions to solve
that system.

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00:10:29,690 --> 00:10:32,840
So here I'm talking about
elementary systems ofl

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00:10:32,840 --> 00:10:37,720
springs, dashpots, discrete
beam elements, and so on.

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00:10:37,720 --> 00:10:41,950
In the analysis of a continuous
system the response

187
00:10:41,950 --> 00:10:44,360
is described really by variables
at an infinite

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00:10:44,360 --> 00:10:46,220
number of points.

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00:10:46,220 --> 00:10:49,370
And, in this case, we really
come up with a differential

190
00:10:49,370 --> 00:10:52,100
equation, obviously a set of
differential equations, that

191
00:10:52,100 --> 00:10:54,170
we have to solve.

192
00:10:54,170 --> 00:11:00,030
The analysis of a complex
continuous system requires a

193
00:11:00,030 --> 00:11:03,630
dissolution of the differential
equations using

194
00:11:03,630 --> 00:11:05,990
numerical procedures.

195
00:11:05,990 --> 00:11:08,880
And this solution via numerical
procedures--

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00:11:08,880 --> 00:11:10,940
and, of course, in this set of
lectures we will be talking

197
00:11:10,940 --> 00:11:14,240
about the finite element method
numerical procedures--

198
00:11:14,240 --> 00:11:19,130
really reduces a continuous
system to a discrete form.

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00:11:19,130 --> 00:11:23,490
The powerful mechanism that we
talk about here is the finite

200
00:11:23,490 --> 00:11:26,970
element method implemented
on a digital computer.

201
00:11:26,970 --> 00:11:29,620
The problem types that I will
be talking about are

202
00:11:29,620 --> 00:11:33,940
steady-state problems, or static
analysis, propagation

203
00:11:33,940 --> 00:11:37,810
problems, dynamic analysis,
and eigenvalue problems.

204
00:11:37,810 --> 00:11:41,660
And these three types of
problems, of course, arise for

205
00:11:41,660 --> 00:11:45,240
discrete and continuous
systems.

206
00:11:45,240 --> 00:11:48,520
Now let us talk first about
the analysis of discrete

207
00:11:48,520 --> 00:11:50,430
systems in this first lecture.

208
00:11:50,430 --> 00:11:53,120
Because many of the
characteristics that we are

209
00:11:53,120 --> 00:11:56,080
using in the analysis of
discrete systems, discrete

210
00:11:56,080 --> 00:12:01,580
meaning, springs, dashpots, et
cetera, we can directly see

211
00:12:01,580 --> 00:12:04,090
the discrete elements
of the system.

212
00:12:04,090 --> 00:12:07,270
The steps involved in the
analysis of such discrete

213
00:12:07,270 --> 00:12:13,150
systems are very similar to the
analysis of complex finite

214
00:12:13,150 --> 00:12:14,990
element systems.

215
00:12:14,990 --> 00:12:16,550
The steps involved
are the system

216
00:12:16,550 --> 00:12:17,860
idealization into elements.

217
00:12:17,860 --> 00:12:21,300
And that idealization is
somewhat obvious because we

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00:12:21,300 --> 00:12:24,120
have the discrete elements
already.

219
00:12:24,120 --> 00:12:27,780
The evaluation of the element
equilibrium requirements, the

220
00:12:27,780 --> 00:12:30,920
element assemblage, and the
solution of the response.

221
00:12:30,920 --> 00:12:33,080
Notice when we later on talk
about the analysis of

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00:12:33,080 --> 00:12:37,810
continuous systems instead of
discrete systems, then the

223
00:12:37,810 --> 00:12:42,490
system idealization into finite
elements here is not an

224
00:12:42,490 --> 00:12:45,690
obvious step and needs
much attention.

225
00:12:45,690 --> 00:12:50,430
But these three steps here are
the same in the finite element

226
00:12:50,430 --> 00:12:52,460
analysis of a continuous
system.

227
00:12:52,460 --> 00:12:56,960
And I would like to now discuss
all of these steps

228
00:12:56,960 --> 00:13:00,460
here just to show you,
basically, some of the basic

229
00:13:00,460 --> 00:13:03,660
concepts that we're using in the
finite element analysis.

230
00:13:03,660 --> 00:13:08,730
Let us look at this discrete
system here as an example.

231
00:13:08,730 --> 00:13:13,500
And let us display the basic
ideas in the analysis of this

232
00:13:13,500 --> 00:13:14,620
discrete system.

233
00:13:14,620 --> 00:13:18,830
Here we have a set of rigid
carts, three rigid carts,

234
00:13:18,830 --> 00:13:21,930
vertical carts that
are supported on

235
00:13:21,930 --> 00:13:23,850
rollers down here.

236
00:13:23,850 --> 00:13:27,340
This means that each of these
carts can just roll

237
00:13:27,340 --> 00:13:29,580
horizontally.

238
00:13:29,580 --> 00:13:37,120
The carts are connected via
springs, k2, k3, k4, k5.

239
00:13:37,120 --> 00:13:42,640
And the first cart here is
connected via k1 to a rigid

240
00:13:42,640 --> 00:13:45,440
support that does not move.

241
00:13:45,440 --> 00:13:48,430
The displacement all of
this cart here is u1.

242
00:13:48,430 --> 00:13:50,970
The load applied is R1.

243
00:13:50,970 --> 00:13:55,110
Notice that u1 is the
displacement of each of these

244
00:13:55,110 --> 00:13:59,060
springs since this
cart is rigid.

245
00:13:59,060 --> 00:14:02,200
The displacement of this
cart here is u2.

246
00:14:02,200 --> 00:14:05,450
And R2 is the load applied.

247
00:14:05,450 --> 00:14:07,760
The displacement of
this cart is u3.

248
00:14:07,760 --> 00:14:10,390
And R3 is the load applied.

249
00:14:10,390 --> 00:14:17,080
We now want to analyze this
system when R1, R2, looking at

250
00:14:17,080 --> 00:14:22,270
it, we can directly see the
elements of the system k1 to

251
00:14:22,270 --> 00:14:28,000
k5, and we can see directly, of
course, how these elements

252
00:14:28,000 --> 00:14:29,760
are interconnected.

253
00:14:29,760 --> 00:14:32,930
The steps that we will be
talking about in the analysis

254
00:14:32,930 --> 00:14:37,570
of this discrete system are
really very similar to the

255
00:14:37,570 --> 00:14:39,930
steps that we're using in the
finite element analysis of

256
00:14:39,930 --> 00:14:41,330
continuous systems.

257
00:14:41,330 --> 00:14:44,340
What we will be doing is that
we look at the equilibrium

258
00:14:44,340 --> 00:14:51,390
requirements for each spring
as a first step.

259
00:14:51,390 --> 00:14:54,660
Then we look at the
interconnection requirements

260
00:14:54,660 --> 00:15:01,440
between these springs that, in
other words, the force on

261
00:15:01,440 --> 00:15:05,900
these springs here at this cart,
and that spring, must be

262
00:15:05,900 --> 00:15:07,830
balanced by R1.

263
00:15:07,830 --> 00:15:11,480
And then, of course, we have a
compatibility requirement that

264
00:15:11,480 --> 00:15:15,940
u1 is a displacement of each
of these springs here.

265
00:15:15,940 --> 00:15:19,410
So we are talking about the
constitutive relations, the

266
00:15:19,410 --> 00:15:21,880
equilibrium requirements,
and the compatibility

267
00:15:21,880 --> 00:15:22,730
requirements.

268
00:15:22,730 --> 00:15:24,860
These are, of course, the three
requirements that we

269
00:15:24,860 --> 00:15:28,110
also have to satisfy in the
analysis of a continuous

270
00:15:28,110 --> 00:15:31,200
system using, later on, finite
element methods.

271
00:15:31,200 --> 00:15:35,070
Notice that these springs here
are our finite elements, if

272
00:15:35,070 --> 00:15:37,890
you want to think of
it that way, a very

273
00:15:37,890 --> 00:15:40,400
simple set of elements.

274
00:15:40,400 --> 00:15:43,430
In a more complex analysis,
these springs here would be

275
00:15:43,430 --> 00:15:46,060
plane stress elements, plane
strain elements, three

276
00:15:46,060 --> 00:15:47,740
dimension elements,
shell elements.

277
00:15:47,740 --> 00:15:50,320
And we will be talking about
how we derive the

278
00:15:50,320 --> 00:15:52,880
characteristics of
these elements.

279
00:15:52,880 --> 00:15:57,090
And we will, however,
interconnect these elements,

280
00:15:57,090 --> 00:15:59,860
these more complex elements,
later in exactly the same way

281
00:15:59,860 --> 00:16:02,850
as we connect these
simple elements.

282
00:16:02,850 --> 00:16:06,370
So the connections between the
elements are established in

283
00:16:06,370 --> 00:16:09,760
the same way, and the solution
of the equilibrium equations

284
00:16:09,760 --> 00:16:12,830
is also performed
in the same way.

285
00:16:12,830 --> 00:16:17,060
But in this simple analysis,
we are given directly the

286
00:16:17,060 --> 00:16:18,800
spring stiffnesses.

287
00:16:18,800 --> 00:16:23,470
And one other important point is
that the spring stiffnesses

288
00:16:23,470 --> 00:16:25,610
here are exact stiffnesses.

289
00:16:25,610 --> 00:16:28,530
In a finite element analysis
of a continuous system, we

290
00:16:28,530 --> 00:16:31,585
have a choice on what kind of
interpolations we can use for

291
00:16:31,585 --> 00:16:32,980
an element.

292
00:16:32,980 --> 00:16:35,820
We have a choice on what
assumptions we want to lay

293
00:16:35,820 --> 00:16:37,010
down for an element.

294
00:16:37,010 --> 00:16:39,940
And then using different
assumptions we are coming up

295
00:16:39,940 --> 00:16:43,880
with different stiffnesses of
the element domain that we

296
00:16:43,880 --> 00:16:45,270
will be talking about.

297
00:16:45,270 --> 00:16:48,750
And we will also find that the
equilibrium in that element

298
00:16:48,750 --> 00:16:50,980
domain is not satisfied.

299
00:16:50,980 --> 00:16:53,800
It will only be satisfied in
the limit as the elements

300
00:16:53,800 --> 00:16:55,710
become smaller, and smaller,
and smaller.

301
00:16:55,710 --> 00:16:59,230
Whereas in the analysis of
this discrete system, the

302
00:16:59,230 --> 00:17:03,880
equilibrium in each spring
is always satisfied.

303
00:17:03,880 --> 00:17:08,020
So this is a very simple finite
element analysis if you

304
00:17:08,020 --> 00:17:10,490
want to think of it that way.

305
00:17:10,490 --> 00:17:14,150
The elements here than are k1.

306
00:17:14,150 --> 00:17:17,290
And notice that the equilibrium
requirement for

307
00:17:17,290 --> 00:17:21,390
this element says simply that
k1u1 is equal to the force

308
00:17:21,390 --> 00:17:22,849
applied to this node.

309
00:17:22,849 --> 00:17:25,839
It's a force, the external
force, applied to this node.

310
00:17:25,839 --> 00:17:29,360
The equilibrium requirement of
this element, k2, is written

311
00:17:29,360 --> 00:17:32,730
down here in matrix form.

312
00:17:32,730 --> 00:17:36,060
k2 is the physical stiffness
of the spring.

313
00:17:36,060 --> 00:17:41,740
And F1, F2 are the forces
applied at these two ends.

314
00:17:41,740 --> 00:17:46,210
Notice, please, that the
superscript here refers to the

315
00:17:46,210 --> 00:17:50,490
element number, superscript
1 here for element 1,

316
00:17:50,490 --> 00:17:54,190
superscript 2 here
for element 2.

317
00:17:54,190 --> 00:18:02,820
And notice that we would find
that F1(2) is minus F2(2)

318
00:18:02,820 --> 00:18:04,490
given u1 and u2.

319
00:18:04,490 --> 00:18:08,590
Of course, that means the
element is in equilibrium.

320
00:18:08,590 --> 00:18:13,450
Notice also, if you look at this
matrix closer, that if u1

321
00:18:13,450 --> 00:18:19,560
is greater than u2, then we
would find that, in other

322
00:18:19,560 --> 00:18:23,260
words, u1 greater than u2 means
that the spring is in

323
00:18:23,260 --> 00:18:24,260
compression.

324
00:18:24,260 --> 00:18:28,680
We would find that F1(2) is
positive by simply multiplying

325
00:18:28,680 --> 00:18:30,060
this out here.

326
00:18:30,060 --> 00:18:33,720
And F2(2) is negative, which
corresponds to the physical

327
00:18:33,720 --> 00:18:35,820
situation that we
actually have.

328
00:18:35,820 --> 00:18:40,710
If u1 is greater than u2, this
force here is positive, and

329
00:18:40,710 --> 00:18:46,230
that force is negative because
the spring is compressed.

330
00:18:46,230 --> 00:18:48,230
Well, similarly, we can write
down the equilibrium

331
00:18:48,230 --> 00:18:51,450
requirement for the spring 3.

332
00:18:51,450 --> 00:18:53,020
And I've written down
the matrix here.

333
00:18:53,020 --> 00:18:55,250
The only difference to the
equilibrium requirements for

334
00:18:55,250 --> 00:18:58,720
spring 2 are that we're
using now k3 here.

335
00:18:58,720 --> 00:19:02,980
And, of course, the superscript
now is 3.

336
00:19:02,980 --> 00:19:06,420
We can then proceed to write
down the equilibrium equation

337
00:19:06,420 --> 00:19:11,700
for spring 4, which is the same
form as before, now k4

338
00:19:11,700 --> 00:19:16,010
here and the 4 superscript
denoting element 4.

339
00:19:16,010 --> 00:19:21,080
And, finally for k5, we have
k5 here and superscripts 5

340
00:19:21,080 --> 00:19:24,250
here to denote element 5.

341
00:19:24,250 --> 00:19:30,280
Now we should also point out
one other important point.

342
00:19:30,280 --> 00:19:36,980
Namely, if we look at this cart
systems here, notice that

343
00:19:36,980 --> 00:19:42,370
this k1 spring is
connected to u1.

344
00:19:42,370 --> 00:19:44,440
It's connected to u1.

345
00:19:44,440 --> 00:19:48,450
k4 is connected to u1 and u3.

346
00:19:48,450 --> 00:19:54,460
So if we look at the equilibrium
requirements here,

347
00:19:54,460 --> 00:19:59,960
you will notice that I
have F1 here for k1

348
00:19:59,960 --> 00:20:02,850
because this is u1 here.

349
00:20:02,850 --> 00:20:04,990
That is the global
displacement u1.

350
00:20:04,990 --> 00:20:09,020
And looking now at k4, a more
complicated case which is

351
00:20:09,020 --> 00:20:21,080
connected to u1 and u3, I have
for that spring the u1 and u3

352
00:20:21,080 --> 00:20:22,080
denoted here.

353
00:20:22,080 --> 00:20:26,210
And we have F1 and F3
here, F1 and F3.

354
00:20:26,210 --> 00:20:30,620
So these are the forces that go
directly into the degrees

355
00:20:30,620 --> 00:20:34,840
of freedom 1 and 3 respectively,
and similarly

356
00:20:34,840 --> 00:20:36,460
for the other springs.

357
00:20:36,460 --> 00:20:40,810
Now if we want to assemble the
global equilibrium equations

358
00:20:40,810 --> 00:20:47,460
for this structure with the
unknowns u1, u2, u3, the loads

359
00:20:47,460 --> 00:20:52,660
R1, R2, and R3 are known, then
we have to use now the

360
00:20:52,660 --> 00:20:57,730
equilibrium requirement at these
degrees of freedom u1,

361
00:20:57,730 --> 00:21:02,740
u2, and u3, or rather at
the cart 1, 2, and 3.

362
00:21:02,740 --> 00:21:05,830
And that equilibrium requirement
then means that

363
00:21:05,830 --> 00:21:11,010
the sum of the forces acting
onto the individual springs 1,

364
00:21:11,010 --> 00:21:17,720
2, 3, and 4 at degree of freedom
1 must be equal to R1.

365
00:21:17,720 --> 00:21:20,030
Now let us look once
at this first

366
00:21:20,030 --> 00:21:22,430
equation back here again.

367
00:21:22,430 --> 00:21:29,110
Notice u1 couples into this
spring 1, spring 2, spring 3,

368
00:21:29,110 --> 00:21:30,670
and spring 4.

369
00:21:30,670 --> 00:21:34,320
And that coupling is seen
right here in spring

370
00:21:34,320 --> 00:21:36,830
1, 2, 3, and 4.

371
00:21:36,830 --> 00:21:40,490
And summing all these forces
that are acting individually

372
00:21:40,490 --> 00:21:43,860
onto the springs, the sum of
these forces must be equal to

373
00:21:43,860 --> 00:21:45,250
the external load.

374
00:21:45,250 --> 00:21:47,420
That is the interconnection

375
00:21:47,420 --> 00:21:50,730
requirement between the springs.

376
00:21:50,730 --> 00:21:54,010
The equilibrium requirements
within the springs are

377
00:21:54,010 --> 00:21:59,300
expressed by these individual
matrices here that we looked

378
00:21:59,300 --> 00:21:59,820
at already.

379
00:21:59,820 --> 00:22:01,610
These are the equilibrium
requirements for the

380
00:22:01,610 --> 00:22:02,820
individual springs.

381
00:22:02,820 --> 00:22:06,270
Now I'm talking about the
equilibrium requirement at the

382
00:22:06,270 --> 00:22:07,730
carts, the interconnection

383
00:22:07,730 --> 00:22:10,310
requirements between the springs.

384
00:22:10,310 --> 00:22:14,450
Similarly, we can sum the forces
that have to be equal

385
00:22:14,450 --> 00:22:18,890
to R2 and sum the forces that
have to be equal to R3.

386
00:22:18,890 --> 00:22:22,960
And these three equations then
set up in matrix form by

387
00:22:22,960 --> 00:22:28,140
substituting for F1(1), F1(2),
and so on from the equilibrium

388
00:22:28,140 --> 00:22:32,030
requirements of the springs,
we directly obtain this set

389
00:22:32,030 --> 00:22:35,820
off equations, KU equals
R. Notice that K

390
00:22:35,820 --> 00:22:38,630
now is a 3 by 3 matrix.

391
00:22:38,630 --> 00:22:41,540
U is a 3 by 1 vector.

392
00:22:41,540 --> 00:22:43,490
R is a 3 by 1 vector.

393
00:22:43,490 --> 00:22:47,950
I denote matrices and vectors
by bars under the symbols.

394
00:22:47,950 --> 00:22:51,782
As you can see here there are
bars under these symbols.

395
00:22:51,782 --> 00:22:54,890
Well, if we look at these
equilibrium equations, we

396
00:22:54,890 --> 00:23:04,480
notice that our U vector, this
vector U here contains u1, u2,

397
00:23:04,480 --> 00:23:06,400
and u3 as the unknowns.

398
00:23:06,400 --> 00:23:11,610
Notice this T here, this
superscript T means transpose.

399
00:23:11,610 --> 00:23:17,670
The actual vector U actually
looks this way u1, u2, u3.

400
00:23:17,670 --> 00:23:20,240
It lists the displacements
vertically downwards.

401
00:23:20,240 --> 00:23:23,110
But it is easier to write
it this way by

402
00:23:23,110 --> 00:23:24,350
transposing as a vector.

403
00:23:24,350 --> 00:23:27,340
So UT, capital T there,
means transpose.

404
00:23:27,340 --> 00:23:31,790
Similarly for R we have R1, R2,
and R3 as the components.

405
00:23:31,790 --> 00:23:37,180
And the K matrix that we have
obtained by substituting into

406
00:23:37,180 --> 00:23:39,680
these equations from the
element equilibrium

407
00:23:39,680 --> 00:23:44,160
requirements, the K matrix
is this one here.

408
00:23:44,160 --> 00:23:48,400
Now let us look a little closer
at how do we construct

409
00:23:48,400 --> 00:23:49,520
this K matrix.

410
00:23:49,520 --> 00:23:55,760
Well, we note that the total K
matrix can be constructed by

411
00:23:55,760 --> 00:24:01,820
summing all of the individual
element matrices from 1 to 5.

412
00:24:01,820 --> 00:24:05,820
And these individual element
matrices are, for two

413
00:24:05,820 --> 00:24:07,150
extremes, written down here.

414
00:24:07,150 --> 00:24:09,790
K1 is a 3 by 3 matrix now.

415
00:24:09,790 --> 00:24:12,200
Not anymore the 1
by 1 or 2 by 2.

416
00:24:12,200 --> 00:24:17,500
It's a 3 by 3 matrix with just
k1 in the 1,1 position.

417
00:24:17,500 --> 00:24:19,690
All the other elements are 0.

418
00:24:19,690 --> 00:24:22,470
K2 is this matrix.

419
00:24:22,470 --> 00:24:26,300
So what I have done then is I
have taken the 2 by 2 matrix

420
00:24:26,300 --> 00:24:29,180
which appeared in the element
equilibrium requirement and

421
00:24:29,180 --> 00:24:32,640
has blown this matrix up filling
zeroes for the third

422
00:24:32,640 --> 00:24:34,240
degree of freedom.

423
00:24:34,240 --> 00:24:37,120
Similarly we would obtain
K3 and so on.

424
00:24:37,120 --> 00:24:41,530
The zeroes always appear in
those rows and columns into

425
00:24:41,530 --> 00:24:45,320
which the element does not
couple, in other words, into

426
00:24:45,320 --> 00:24:47,500
those degrees of freedom that
the element does not couple.

427
00:24:47,500 --> 00:24:53,130
For example, k1, this element 1
here, couples only into the

428
00:24:53,130 --> 00:24:54,480
degree of freedom 1.

429
00:24:54,480 --> 00:24:58,380
So, therefore, we have the
second and third rows be 0.

430
00:24:58,380 --> 00:25:03,800
Element 2 couples only into
degree of freedom 1 and 2.

431
00:25:03,800 --> 00:25:07,080
Therefore, the third degree
of freedom contains all

432
00:25:07,080 --> 00:25:09,360
zeroes, and so on.

433
00:25:09,360 --> 00:25:13,550
This assemblage process is
called the direct stiffness

434
00:25:13,550 --> 00:25:19,330
method, an extremely important
concept that is very well

435
00:25:19,330 --> 00:25:21,200
implemented in a computer
program.

436
00:25:21,200 --> 00:25:25,410
It represents the basis of the
implementation of the finite

437
00:25:25,410 --> 00:25:30,120
element method in almost every
code that is currently in use.

438
00:25:30,120 --> 00:25:34,900
The direct stiffness method has
also a very nice physical

439
00:25:34,900 --> 00:25:35,740
explanation.

440
00:25:35,740 --> 00:25:39,030
And this is what I really want
to talk to you about now for

441
00:25:39,030 --> 00:25:40,180
the next five minutes.

442
00:25:40,180 --> 00:25:44,260
The steady-state analysis, of
course, then is completed.

443
00:25:44,260 --> 00:25:46,440
The steady-state analysis of
this system, of course, is

444
00:25:46,440 --> 00:25:50,660
completed by solving this system
of equations here,

445
00:25:50,660 --> 00:25:51,810
equations a.

446
00:25:51,810 --> 00:25:57,000
Once we know U we can go back to
the elements and calculate

447
00:25:57,000 --> 00:25:59,820
the forces in the elements
themselves by going to the

448
00:25:59,820 --> 00:26:02,070
element equilibrium
requirements.

449
00:26:02,070 --> 00:26:08,100
Well let us look then at what
we are doing when we perform

450
00:26:08,100 --> 00:26:14,810
this process here by summing, in
other words, the K element,

451
00:26:14,810 --> 00:26:17,510
the stiffnesses of the elements
into a global

452
00:26:17,510 --> 00:26:18,520
stiffness matrix.

453
00:26:18,520 --> 00:26:21,670
And let us look at what we're
doing physically.

454
00:26:21,670 --> 00:26:24,040
Because that really, of
course, is the direct

455
00:26:24,040 --> 00:26:26,210
stiffness method that
we are using here.

456
00:26:26,210 --> 00:26:31,040
And it is, I think, very nice if
you can clearly see what is

457
00:26:31,040 --> 00:26:32,590
happening in that method.

458
00:26:32,590 --> 00:26:36,120
Well, the basic process
is the following.

459
00:26:36,120 --> 00:26:39,600
Here I have drawn the carts
without any strings.

460
00:26:39,600 --> 00:26:41,220
Of course, our degrees
of freedom are

461
00:26:41,220 --> 00:26:45,160
here, u1, u2, and u3.

462
00:26:45,160 --> 00:26:47,280
And the loads are R1, R2, R3.

463
00:26:47,280 --> 00:26:49,160
I don't need to put
them in again.

464
00:26:49,160 --> 00:26:55,700
This system here corresponds
to a K matrix with zeroes

465
00:26:55,700 --> 00:26:57,410
everywhere.

466
00:26:57,410 --> 00:27:02,000
Blanks in these positions
here denote zeroes.

467
00:27:02,000 --> 00:27:06,670
So this is a system that we're
starting off with in this

468
00:27:06,670 --> 00:27:11,200
direct stiffness method, a
system without any elements, a

469
00:27:11,200 --> 00:27:14,470
matrix without any
elements also.

470
00:27:14,470 --> 00:27:17,370
The process, then,
is the following.

471
00:27:17,370 --> 00:27:21,860
We are using this cart system.

472
00:27:21,860 --> 00:27:23,810
And we're adding
one spring on.

473
00:27:23,810 --> 00:27:25,510
That is the first edition.

474
00:27:25,510 --> 00:27:28,680
That is spring k1.

475
00:27:28,680 --> 00:27:33,390
Mathematically this means that
we're going through the

476
00:27:33,390 --> 00:27:34,760
following process.

477
00:27:34,760 --> 00:27:39,110
We are taking our K matrix with
blanks everywhere, and

478
00:27:39,110 --> 00:27:43,370
we're adding into it this
one element, k1.

479
00:27:43,370 --> 00:27:47,380
Now this is a K matrix, this
stiffness matrix governing--

480
00:27:47,380 --> 00:27:48,980
and this is very important--

481
00:27:48,980 --> 00:27:53,650
governing this system.

482
00:27:53,650 --> 00:27:58,220
Once again, this is a K matrix
governing this system.

483
00:27:58,220 --> 00:28:00,460
Of course, this is not a stable
system yet because

484
00:28:00,460 --> 00:28:04,320
there are no connections between
these carts here.

485
00:28:04,320 --> 00:28:08,220
Well, with a second edition
we're adding

486
00:28:08,220 --> 00:28:11,350
in the second spring.

487
00:28:11,350 --> 00:28:13,970
And that means we are putting
this spring there.

488
00:28:13,970 --> 00:28:16,110
That is k2.

489
00:28:16,110 --> 00:28:20,520
Well in our matrix formulation
then, what that means in our

490
00:28:20,520 --> 00:28:25,750
direct stiffness method is that
we are going from this

491
00:28:25,750 --> 00:28:30,170
system over on this K matrix
to that K matrix.

492
00:28:30,170 --> 00:28:32,800
We are adding this
second spring

493
00:28:32,800 --> 00:28:35,070
stiffness into the K matrix.

494
00:28:35,070 --> 00:28:39,970
So this is the stiffness
matrix that governs the

495
00:28:39,970 --> 00:28:43,940
equilibrium of this
physical system.

496
00:28:47,070 --> 00:28:50,390
Notice that this spring here,
the second spring, couples

497
00:28:50,390 --> 00:28:52,070
into u1 and u2.

498
00:28:52,070 --> 00:28:56,130
And therefore we have added
these blue elements

499
00:28:56,130 --> 00:28:58,730
corresponding to the second
spring into degrees of

500
00:28:58,730 --> 00:29:01,500
freedom 1 and 2.

501
00:29:01,500 --> 00:29:04,750
Next in the direct stiffness
method we're adding the next

502
00:29:04,750 --> 00:29:09,820
spring element, and that is
spring element number 3.

503
00:29:09,820 --> 00:29:12,900
Again, it couples
into u1 and u2.

504
00:29:12,900 --> 00:29:17,930
And the stiffness matrix that
we are now talking about is

505
00:29:17,930 --> 00:29:18,640
the following.

506
00:29:18,640 --> 00:29:23,200
We're going from this stiffness
matrix to that

507
00:29:23,200 --> 00:29:28,260
stiffness matrix here, adding
the green k3 in there.

508
00:29:28,260 --> 00:29:37,230
Now next we go from this system
to add into the system

509
00:29:37,230 --> 00:29:42,620
the spring 4, spring 4 now.

510
00:29:42,620 --> 00:29:45,400
Please notice that this is
now a stable system.

511
00:29:45,400 --> 00:29:49,950
It is a stable system because if
I want to put u3 over here,

512
00:29:49,950 --> 00:29:51,690
then I have to do work
on this spring.

513
00:29:51,690 --> 00:29:53,690
So this is now a
stable system.

514
00:29:53,690 --> 00:29:56,910
In our mathematical formulation,
or in our direct

515
00:29:56,910 --> 00:30:00,050
stiffness method rather, what
this then corresponds to is

516
00:30:00,050 --> 00:30:04,050
that we are going from this
system here, or this stiffness

517
00:30:04,050 --> 00:30:06,220
matrix, to that stiffness
matrix.

518
00:30:06,220 --> 00:30:09,080
Notice we have added
a k4 into here.

519
00:30:09,080 --> 00:30:13,730
And that, in fact, allows us
now to solve at this level.

520
00:30:13,730 --> 00:30:18,360
We could solve the equations KU
equals R. Of course, this

521
00:30:18,360 --> 00:30:23,880
now is a stiffness matrix
corresponding to this system.

522
00:30:23,880 --> 00:30:26,230
We have not quite yet
reached the system

523
00:30:26,230 --> 00:30:28,070
that we want to analyze.

524
00:30:28,070 --> 00:30:33,230
But we reach it by adding
the final spring in k5.

525
00:30:33,230 --> 00:30:34,870
k5 now is here.

526
00:30:34,870 --> 00:30:41,210
And that corresponds in our
direct stiffness method to

527
00:30:41,210 --> 00:30:45,210
adding this spring in there.

528
00:30:45,210 --> 00:30:47,970
These elements here, k5.

529
00:30:47,970 --> 00:30:52,120
Notice that this spring now here
couples into degrees of

530
00:30:52,120 --> 00:30:55,500
freedom 4 and five 5, and
that's why it appears in

531
00:30:55,500 --> 00:30:56,775
quadrant column 4 and 5 here.

532
00:31:00,480 --> 00:31:07,020
And this spring.

533
00:31:07,020 --> 00:31:10,130
I should've have said, this
spring here couples into

534
00:31:10,130 --> 00:31:17,190
column 2 and 3, column 2 and
3 meaning u2 and u3.

535
00:31:17,190 --> 00:31:21,270
And here we see, of course, that
the spring indeed goes

536
00:31:21,270 --> 00:31:24,890
into degree of freedom u2
and u3, into degree of

537
00:31:24,890 --> 00:31:26,490
freedom u2 and u3.

538
00:31:26,490 --> 00:31:29,470
So this then is to final
system that we want to

539
00:31:29,470 --> 00:31:33,440
analyze, and this is the
final stiffness matrix

540
00:31:33,440 --> 00:31:35,710
that we had to obtain.

541
00:31:35,710 --> 00:31:38,600
Notice, once again, this matrix
has been obtained by

542
00:31:38,600 --> 00:31:44,235
taking the sum over all the
element stiffness matrices.

543
00:31:44,235 --> 00:31:47,520
We are summing from
i equals 1 to 5.

544
00:31:47,520 --> 00:31:50,950
And this mathematical process,
once again, which we call the

545
00:31:50,950 --> 00:31:56,570
direct stiffness method
has a physical analog.

546
00:31:56,570 --> 00:31:59,030
You can understand it physically
in the way I've

547
00:31:59,030 --> 00:32:00,450
shown here.

548
00:32:00,450 --> 00:32:05,010
Namely you're starting off
with a blank K matrix, no

549
00:32:05,010 --> 00:32:09,660
elements in it at all, and you
simply add one element after

550
00:32:09,660 --> 00:32:12,930
the other into that K matrix
filling up the

551
00:32:12,930 --> 00:32:14,290
K matrix that way.

552
00:32:14,290 --> 00:32:17,590
And the additions are
carried out--

553
00:32:17,590 --> 00:32:18,670
this is important--

554
00:32:18,670 --> 00:32:24,560
by taking the element matrices
and adding them into the

555
00:32:24,560 --> 00:32:28,800
appropriate columns and
rows of the K matrix.

556
00:32:28,800 --> 00:32:32,280
For example, this element here
couples into degree of

557
00:32:32,280 --> 00:32:34,850
freedom 1 and 3.

558
00:32:34,850 --> 00:32:39,850
And if we go once more back to
the process that we have been

559
00:32:39,850 --> 00:32:46,530
carrying out here, notice our k4
here corresponds to degree

560
00:32:46,530 --> 00:32:50,680
of freedom 1 and degree of
freedom 3, the first row and

561
00:32:50,680 --> 00:32:52,750
column and third
row and column.

562
00:32:52,750 --> 00:32:56,030
That's where these
elements appear.

563
00:32:56,030 --> 00:33:00,310
So there's a neat physical
explanation for the direct

564
00:33:00,310 --> 00:33:03,900
stiffness method which
I wanted to

565
00:33:03,900 --> 00:33:05,240
discuss with you here.

566
00:33:05,240 --> 00:33:09,750
Now as another approach, instead
of using the direct

567
00:33:09,750 --> 00:33:15,380
formulation of the equations KU
equals R, the equilibrium

568
00:33:15,380 --> 00:33:19,410
equations of the system,
we can also use

569
00:33:19,410 --> 00:33:20,950
a variational approach.

570
00:33:20,950 --> 00:33:23,940
We will be talking about that
variational approach in the

571
00:33:23,940 --> 00:33:24,790
second lecture.

572
00:33:24,790 --> 00:33:28,030
And I would like to discuss it,
or introduce it to you,

573
00:33:28,030 --> 00:33:31,880
now very briefly for the
analysis of this discrete

574
00:33:31,880 --> 00:33:33,980
system that we just looked at.

575
00:33:33,980 --> 00:33:37,010
The basic process here is that
we are constructing a

576
00:33:37,010 --> 00:33:42,320
functional pi which is equal
to u minus w where u is the

577
00:33:42,320 --> 00:33:46,510
strain energy of the system and
w is the total potential

578
00:33:46,510 --> 00:33:48,390
of the loads.

579
00:33:48,390 --> 00:33:53,110
The equilibrium equations that
we just looked at, KU equals R

580
00:33:53,110 --> 00:33:59,685
in other words, are obtained by
invoking that del-pi shall

581
00:33:59,685 --> 00:34:03,740
be 0, the stationality
condition on pi.

582
00:34:03,740 --> 00:34:10,770
And this means that del-pi,
del-ui, shall be 0 for all ui.

583
00:34:10,770 --> 00:34:15,360
This then gives three equations,
And these three

584
00:34:15,360 --> 00:34:18,805
questions are obtained
as follows.

585
00:34:18,805 --> 00:34:25,770
If we use u, the strain energy
of the system is given right

586
00:34:25,770 --> 00:34:29,340
here, 1/2 U transpose KU.

587
00:34:29,340 --> 00:34:33,270
If you were to multiply this out
substituting for U and for

588
00:34:33,270 --> 00:34:36,360
K with the values that I've
given to you, you would find

589
00:34:36,360 --> 00:34:39,449
that this indeed is the strain
energy in the system.

590
00:34:39,449 --> 00:34:43,260
The potential of the total loads
is given by U transposed

591
00:34:43,260 --> 00:34:49,250
R. Notice please that there
is no 1/2 here in front.

592
00:34:49,250 --> 00:34:52,270
Simply U transpose R is the
potential of the loads.

593
00:34:52,270 --> 00:34:57,110
Now if we invoke this condition
that del-pi, del-ui

594
00:34:57,110 --> 00:35:03,790
shall be 0, we directly
obtain KU equals R.

595
00:35:03,790 --> 00:35:05,830
Now there's one important
point.

596
00:35:05,830 --> 00:35:11,510
To obtain u and w, u and w here,
we again, can add up the

597
00:35:11,510 --> 00:35:14,810
contributions from all the
elements using the direct

598
00:35:14,810 --> 00:35:15,550
stiffness method.

599
00:35:15,550 --> 00:35:21,410
In other words, this K here can
be constructed as we have

600
00:35:21,410 --> 00:35:26,990
shown by summing over the
elements, by summing the

601
00:35:26,990 --> 00:35:28,890
contributions over all
of the elements.

602
00:35:28,890 --> 00:35:36,130
And since this is true, we can
also write this total u as

603
00:35:36,130 --> 00:35:40,380
being the sum of the ui's, if
you want to, the strain

604
00:35:40,380 --> 00:35:44,220
energies of all of the
individual elements.

605
00:35:44,220 --> 00:35:48,400
So here too we could use the
direct stiffness method.

606
00:35:48,400 --> 00:35:51,640
Of course, in actuality, in
actual practical analysis, we

607
00:35:51,640 --> 00:35:56,180
never form this u, we never form
that w when we want to

608
00:35:56,180 --> 00:36:00,470
calculate KU equals R. This is
simply a theoretical concept

609
00:36:00,470 --> 00:36:02,810
that I wanted to introduce to
you, a theoretical concept

610
00:36:02,810 --> 00:36:06,630
that we will be using later on
in the construction of KU

611
00:36:06,630 --> 00:36:12,000
equals R. We never really
calculate these measures if we

612
00:36:12,000 --> 00:36:14,460
only want to calculate
KU equals R.

613
00:36:14,460 --> 00:36:17,240
It might be of interest to us to
calculate this in order to

614
00:36:17,240 --> 00:36:20,750
find out how much strain energy
is put into individual

615
00:36:20,750 --> 00:36:23,730
elements in finite
element analysis.

616
00:36:23,730 --> 00:36:28,480
But this is only done if you
want to evaluate error bounds

617
00:36:28,480 --> 00:36:30,710
on the finite element
solution and so on.

618
00:36:30,710 --> 00:36:34,840
If we only want the calculate KU
equals R and obtain the use

619
00:36:34,840 --> 00:36:40,185
in other words, to be able to
predict the displacements and

620
00:36:40,185 --> 00:36:43,440
the stresses in the elements,
then we would not calculate

621
00:36:43,440 --> 00:36:45,610
these two quantities.

622
00:36:45,610 --> 00:36:50,090
Now this then were the essence
of the analysis of a

623
00:36:50,090 --> 00:36:55,650
steady-state problem for
discrete systems.

624
00:36:55,650 --> 00:36:58,390
I pointed out already that if
we have an extra finite

625
00:36:58,390 --> 00:37:00,560
element system there, of
course, many additional

626
00:37:00,560 --> 00:37:02,750
concepts that we have to talk
about, a selection of

627
00:37:02,750 --> 00:37:05,520
elements, the kinds of
interpolations to be used,

628
00:37:05,520 --> 00:37:08,070
and, of course, we then have to
also talk about how do we

629
00:37:08,070 --> 00:37:10,330
solve these equations,
and so on.

630
00:37:10,330 --> 00:37:11,720
We will address these questions

631
00:37:11,720 --> 00:37:13,340
in the later lectures.

632
00:37:13,340 --> 00:37:16,660
However, another class of
problems that we will be

633
00:37:16,660 --> 00:37:19,660
talking about are propagation
problems.

634
00:37:19,660 --> 00:37:23,160
The main characteristics of
propagation problems are that

635
00:37:23,160 --> 00:37:25,580
the response changes
with time.

636
00:37:25,580 --> 00:37:28,690
Therefore, we need to include
the d'Alembert forces.

637
00:37:28,690 --> 00:37:31,280
Now basically what we are saying
then is that we're

638
00:37:31,280 --> 00:37:37,490
looking at static equilibrium as
a function of time but also

639
00:37:37,490 --> 00:37:39,780
taking into account the
d'Alembert forces.

640
00:37:39,780 --> 00:37:43,560
And that, together then, makes
it a dynamic problem.

641
00:37:43,560 --> 00:37:49,150
Of course, if the displacement
varies very slow, in other

642
00:37:49,150 --> 00:37:56,400
words, the load varies very
slow, then the inertia forces

643
00:37:56,400 --> 00:37:59,950
can be neglected, and we would
simply have this set of

644
00:37:59,950 --> 00:38:03,586
equations where R of t is a
function of time and U of t

645
00:38:03,586 --> 00:38:04,760
would be a function of time.

646
00:38:04,760 --> 00:38:09,440
However, when R of t acts
rapidly or suddenly inertia

647
00:38:09,440 --> 00:38:12,430
conditions are applied to the
system, then the inertia

648
00:38:12,430 --> 00:38:14,650
forces can be very important.

649
00:38:14,650 --> 00:38:15,920
We have to include
their effect.

650
00:38:15,920 --> 00:38:18,820
And then we have a true
propagation problem, a truly

651
00:38:18,820 --> 00:38:20,930
dynamic problem that
has to be solved.

652
00:38:20,930 --> 00:38:26,690
For our example, the M matrix
here would be this 3 by 3

653
00:38:26,690 --> 00:38:33,750
matrix where m1 is simply the
mass of the cart 1, m2 is the

654
00:38:33,750 --> 00:38:37,560
mass of the cart 2, m3 is
the mass of the cart 3.

655
00:38:37,560 --> 00:38:39,680
Of course these masses would
have to be given.

656
00:38:39,680 --> 00:38:46,780
And notice that we would
evaluate them by basically

657
00:38:46,780 --> 00:38:51,420
saying that this total mass
here can be evaluated by

658
00:38:51,420 --> 00:38:54,170
taking the mass per unit volume
times the volume.

659
00:38:54,170 --> 00:38:56,750
And that would be the mass that
we're talking about when

660
00:38:56,750 --> 00:39:02,040
we accelerate that cart
into this direction.

661
00:39:02,040 --> 00:39:04,970
So these masses here are
very simply evaluated.

662
00:39:04,970 --> 00:39:08,200
When we talk later on about
actually finite elements, we

663
00:39:08,200 --> 00:39:12,180
will be talking about similar
mass matrices where we simply

664
00:39:12,180 --> 00:39:16,600
take the total volume of an
element and lump that volume

665
00:39:16,600 --> 00:39:18,440
of the element to its nodes.

666
00:39:18,440 --> 00:39:22,050
We will also talk about
consistent mass matrices where

667
00:39:22,050 --> 00:39:25,260
this mass matrix is a little
bit more complicated.

668
00:39:25,260 --> 00:39:27,170
In other words, some of
these off-diagonal

669
00:39:27,170 --> 00:39:29,820
elements are not 0.

670
00:39:29,820 --> 00:39:33,350
Finally, we will also talk about
eigenvalue problems.

671
00:39:33,350 --> 00:39:36,920
In the solution of eigenvalue
problems, we will be talking

672
00:39:36,920 --> 00:39:41,140
about generalized eigenvalue
problems, in particular, which

673
00:39:41,140 --> 00:39:46,650
are Av equals lambda Bv, which
can be written down in this

674
00:39:46,650 --> 00:39:51,920
form where A and B are symmetric
matrices of order n,

675
00:39:51,920 --> 00:39:56,850
v is a vector of order n,
and lambda is a scalar.

676
00:39:56,850 --> 00:40:00,530
As an example, for example here
in dynamic analysis, what

677
00:40:00,530 --> 00:40:07,150
we will see there is K phi
equals omega squared M phi

678
00:40:07,150 --> 00:40:09,850
where K is the stiffness
matrix that I

679
00:40:09,850 --> 00:40:11,280
talked about already.

680
00:40:11,280 --> 00:40:14,350
This which would be for the cart
system here simply as 3

681
00:40:14,350 --> 00:40:17,030
by 3, this 3 by 3 stiffness
matrix that I

682
00:40:17,030 --> 00:40:18,160
introduced to you.

683
00:40:18,160 --> 00:40:20,430
And it's a mass matrix
that we just had

684
00:40:20,430 --> 00:40:22,870
here on this viewgraph.

685
00:40:22,870 --> 00:40:24,020
That is the mass matrix.

686
00:40:24,020 --> 00:40:28,790
And phi is the vector.

687
00:40:28,790 --> 00:40:31,510
If we find a solution, in other
words, if this equation

688
00:40:31,510 --> 00:40:38,280
is satisfied, we put an i on
there and satisfy for phi i

689
00:40:38,280 --> 00:40:41,200
and omega i squared.

690
00:40:41,200 --> 00:40:44,320
Omega i squared will
be a frequency.

691
00:40:44,320 --> 00:40:46,880
I will be discussing it just
now a little more.

692
00:40:46,880 --> 00:40:49,470
And then we're talking
about an eigenpair.

693
00:40:49,470 --> 00:40:52,210
But notice that is a typical
problem that we will be

694
00:40:52,210 --> 00:40:54,340
discussing which arises,
in other

695
00:40:54,340 --> 00:40:56,580
words, in dynamic analysis.

696
00:40:56,580 --> 00:41:00,050
Notice also that what we're
really saying here is that the

697
00:41:00,050 --> 00:41:01,860
right-hand side is
a load vector.

698
00:41:04,830 --> 00:41:09,470
And if we know v, if we
know lambda, then we

699
00:41:09,470 --> 00:41:11,130
know the load vector.

700
00:41:11,130 --> 00:41:16,540
What we would calculate then
is the same v that we have

701
00:41:16,540 --> 00:41:17,430
substituted here.

702
00:41:17,430 --> 00:41:21,420
In other words, if we consider
this to be a set of loads

703
00:41:21,420 --> 00:41:25,430
where v is now known, lambda
is known, then we could

704
00:41:25,430 --> 00:41:30,170
evaluate R. In solving Av equals
R, we would get back

705
00:41:30,170 --> 00:41:32,320
our v that we substituted
into here.

706
00:41:32,320 --> 00:41:34,670
And that is the main
characteristic of an

707
00:41:34,670 --> 00:41:36,630
eigenvalue problem.

708
00:41:36,630 --> 00:41:39,610
Well, they arise in dynamic and
buckling analysis, and let

709
00:41:39,610 --> 00:41:43,770
us look at one example where
we actually obtain this

710
00:41:43,770 --> 00:41:45,030
eigenvalue problem.

711
00:41:45,030 --> 00:41:47,850
And the example is simply the
system of rigid carts that we

712
00:41:47,850 --> 00:41:50,120
considered already earlier.

713
00:41:50,120 --> 00:41:53,670
We obtain the eigenvalue problem
by looking at the

714
00:41:53,670 --> 00:41:56,980
equilibrium equations when
no loads are applied.

715
00:41:56,980 --> 00:42:00,860
And we call these the free
vibration conditions, free

716
00:42:00,860 --> 00:42:03,990
because there are no loads
applied, free of loads.

717
00:42:03,990 --> 00:42:09,540
If we let U be equal to phi
times sine omega t minus tau

718
00:42:09,540 --> 00:42:13,090
where the time dependency now
in the response is in this

719
00:42:13,090 --> 00:42:17,980
function here, in the sine
function only, and if we take

720
00:42:17,980 --> 00:42:22,700
the second derivative of U,
meaning that we get a cosine

721
00:42:22,700 --> 00:42:26,820
and then a minus sign in here,
and, of course, this omega

722
00:42:26,820 --> 00:42:30,580
twice outside, so we have
a sign change here.

723
00:42:30,580 --> 00:42:35,160
We have a minus omega squared
M phi sine omega t minus tau

724
00:42:35,160 --> 00:42:37,270
for this part here.

725
00:42:37,270 --> 00:42:42,940
And for this part KU we obtain
K phi sine omega t minus tau

726
00:42:42,940 --> 00:42:46,130
by simply substituting
from here into there.

727
00:42:46,130 --> 00:42:51,470
And, of course, the sum of these
two must be equal to 0.

728
00:42:51,470 --> 00:42:56,260
Now this equation must
hold for any time, t.

729
00:42:56,260 --> 00:43:00,420
So we can simply cancel out
this part and that part.

730
00:43:00,420 --> 00:43:04,790
And the resulting set of
equations that we are

731
00:43:04,790 --> 00:43:08,590
obtaining then are given on
the last viewgraph, namely

732
00:43:08,590 --> 00:43:12,520
those equations being K phi
equals omega squared M phi.

733
00:43:12,520 --> 00:43:15,000
So that is the generalized
eigenvalue problem which we

734
00:43:15,000 --> 00:43:17,130
obtain in dynamic analysis.

735
00:43:17,130 --> 00:43:21,540
We will be later on talking
about how we solve this

736
00:43:21,540 --> 00:43:24,690
generalized eigenvalue problem
for the eigenvalues and

737
00:43:24,690 --> 00:43:25,400
eigenvectors.

738
00:43:25,400 --> 00:43:28,500
In the case of of the 3 by 3
system that we are considering

739
00:43:28,500 --> 00:43:31,780
here, in other words, the
analysis of the cart system,

740
00:43:31,780 --> 00:43:38,030
we only have three solutions,
omega 1 phi 1, omega2 phi2,

741
00:43:38,030 --> 00:43:39,770
omega3 phi3.

742
00:43:39,770 --> 00:43:43,850
And we call each of the
solutions an eigenpair.

743
00:43:43,850 --> 00:43:46,910
So there are three eigenpairs
that satisfy

744
00:43:46,910 --> 00:43:48,410
this particular equation.

745
00:43:48,410 --> 00:43:51,320
Notice that this is, in other
words, the equation that I

746
00:43:51,320 --> 00:43:53,310
talked about here earlier.

747
00:43:53,310 --> 00:43:59,820
And the eigenpairs, phi i,
omega i squared are the

748
00:43:59,820 --> 00:44:02,110
solutions to this equation.

749
00:44:02,110 --> 00:44:06,220
We are really interested in
omega i because that is the

750
00:44:06,220 --> 00:44:10,260
frequency in radians per second,
and the eigenvalue,

751
00:44:10,260 --> 00:44:12,660
however, being omega squared.

752
00:44:12,660 --> 00:44:15,430
In general when we have
an n by n system--

753
00:44:15,430 --> 00:44:19,090
and I have already written down
here the n by n, let me

754
00:44:19,090 --> 00:44:21,130
put it bigger once more here--

755
00:44:21,130 --> 00:44:23,480
and we have a general n by n
system, in other words, and

756
00:44:23,480 --> 00:44:28,000
not being equal to 3 just as
we have in our cart system,

757
00:44:28,000 --> 00:44:30,410
then we have n solutions.

758
00:44:30,410 --> 00:44:34,080
And, however, we will find
that in finite element

759
00:44:34,080 --> 00:44:36,670
analysis we do not necessarily
need to

760
00:44:36,670 --> 00:44:38,600
calculate all n solutions.

761
00:44:38,600 --> 00:44:42,080
In fact, when we consider large
eigensystems where n is

762
00:44:42,080 --> 00:44:46,320
equal to 1,000 or even more,
then certainly we do not want

763
00:44:46,320 --> 00:44:47,790
to calculate all eigenvalues.

764
00:44:47,790 --> 00:44:51,720
It would be exorbitantly
expensive, much too expensive

765
00:44:51,720 --> 00:44:53,810
to calculate all of the
eigenvalues and eigenvectors.

766
00:44:53,810 --> 00:44:57,250
We don't need to have them
all in analysis.

767
00:44:57,250 --> 00:45:00,260
And, therefore, we will talk
about eigenvalue solution

768
00:45:00,260 --> 00:45:03,440
methods that only calculate
the eigenvalues and

769
00:45:03,440 --> 00:45:07,210
eigenvectors that we are
actually interested in.

770
00:45:07,210 --> 00:45:10,450
We also, of course, have to,
before we actually get to that

771
00:45:10,450 --> 00:45:13,410
topic which is the topic of the
last lecture, we will talk

772
00:45:13,410 --> 00:45:15,740
about how we actually construct
these K matrices,

773
00:45:15,740 --> 00:45:18,840
how we calculate them, construct
them for different

774
00:45:18,840 --> 00:45:20,500
finite element systems.

775
00:45:20,500 --> 00:45:24,640
Well, this then does complete
what I wanted

776
00:45:24,640 --> 00:45:26,000
to say in this lecture.

777
00:45:26,000 --> 00:45:27,850
Thank you very much for
your attention.