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00:00:21,180 --> 00:00:23,140
PROFESSOR: Welcome back.

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00:00:23,140 --> 00:00:29,546
Today, we will do two problems
involving many oscillators,

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00:00:29,546 --> 00:00:34,420
or at least several oscillators,
coupled to each other.

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00:00:34,420 --> 00:00:40,850
Now, you will not be surprised,
from past experience,

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00:00:40,850 --> 00:00:45,340
that in the situation
with several oscillators,

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00:00:45,340 --> 00:00:49,700
we are going to end up with
many equations and a lot

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00:00:49,700 --> 00:00:55,270
of grindy, tough
solving of equations.

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00:00:55,270 --> 00:00:58,510
Already, with a single
harmonic oscillator,

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00:00:58,510 --> 00:01:01,820
for example, with
damping, the equations

17
00:01:01,820 --> 00:01:04,370
have been pretty horrendous.

18
00:01:04,370 --> 00:01:09,020
Now, we considered a
couple of oscillators

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00:01:09,020 --> 00:01:13,440
with all the details, with
damping, driven, et cetera,

20
00:01:13,440 --> 00:01:16,900
and it really
becomes complicated.

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00:01:16,900 --> 00:01:19,230
Now, what we are
trying to do by doing

22
00:01:19,230 --> 00:01:23,460
problems is to get a feel,
an understanding what goes on

23
00:01:23,460 --> 00:01:29,160
in a given situation, so one
wants to focus on new features

24
00:01:29,160 --> 00:01:32,180
and try to simplify
the mathematics as

25
00:01:32,180 --> 00:01:34,120
much as possible.

26
00:01:34,120 --> 00:01:37,330
And so in the problems
are we doing now,

27
00:01:37,330 --> 00:01:42,710
I am intentionally making them
even more ideal than before.

28
00:01:42,710 --> 00:01:45,640
Consider the first problem.

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00:01:45,640 --> 00:01:52,660
Here is a highly
idealized system

30
00:01:52,660 --> 00:01:56,680
which has 3 degrees of freedom.

31
00:01:56,680 --> 00:02:03,750
What we have is we have a single
mass, 2m, two identical springs

32
00:02:03,750 --> 00:02:06,920
attached to two
masses, each of mass m.

33
00:02:09,690 --> 00:02:11,680
This is completely idealized.

34
00:02:11,680 --> 00:02:14,550
We are assuming
there's no friction,

35
00:02:14,550 --> 00:02:17,510
that these springs
are ideal springs.

36
00:02:17,510 --> 00:02:19,080
In other words,
they're massless,

37
00:02:19,080 --> 00:02:23,230
obey Hooke's laws
with constant k.

38
00:02:23,230 --> 00:02:25,910
We are assuming the
system is constrained,

39
00:02:25,910 --> 00:02:28,520
so it can only move
in one direction,

40
00:02:28,520 --> 00:02:33,670
it can't move up and down
or in or out from the board.

41
00:02:33,670 --> 00:02:40,480
So as I say, it's an
idealized situation.

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00:02:40,480 --> 00:02:46,970
And the question we want to
answer is, for such a system,

43
00:02:46,970 --> 00:02:50,860
what are the normal
mode frequencies?

44
00:02:50,860 --> 00:02:55,880
And you know from lectures
given by Professor Walter Lewin

45
00:02:55,880 --> 00:03:00,710
that when you have coupled
oscillators, in this case, 3,

46
00:03:00,710 --> 00:03:09,060
all right, one finds that there
are very special oscillations,

47
00:03:09,060 --> 00:03:13,150
which we call normal mode
oscillations, in which

48
00:03:13,150 --> 00:03:20,980
every part of the
system is oscillating

49
00:03:20,980 --> 00:03:24,095
with the same
frequency and phase.

50
00:03:28,720 --> 00:03:32,680
So first, we want to find
out for this system, what

51
00:03:32,680 --> 00:03:36,505
are those three normal
mode frequencies?

52
00:03:39,240 --> 00:03:44,100
And secondly, suppose
I take this system,

53
00:03:44,100 --> 00:03:49,630
place these masses at some
arbitrary positions, some

54
00:03:49,630 --> 00:03:53,870
maybe even moving, and
let go, how would I

55
00:03:53,870 --> 00:04:00,380
predict where each mass
would be at some later time?

56
00:04:00,380 --> 00:04:02,070
So those are the
two questions I want

57
00:04:02,070 --> 00:04:05,730
to answer today
for this problem.

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00:04:10,010 --> 00:04:18,750
Now, in general, coupled
oscillator problems

59
00:04:18,750 --> 00:04:21,850
are quite difficult.

60
00:04:21,850 --> 00:04:25,300
But there are
situations in which

61
00:04:25,300 --> 00:04:29,890
one can use logic
alone, well, logic

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00:04:29,890 --> 00:04:33,920
and our understanding
of coupled oscillators,

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00:04:33,920 --> 00:04:38,280
to do most of the
solution by hand-waving

64
00:04:38,280 --> 00:04:41,320
and not do any calculations.

65
00:04:41,320 --> 00:04:45,020
In this first example I'm
doing in this problem,

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00:04:45,020 --> 00:04:52,930
since the system has
a lot of symmetry,

67
00:04:52,930 --> 00:04:56,670
I know from experience
that under those conditions

68
00:04:56,670 --> 00:05:02,910
it might be possible to solve
this, as I say, by logic alone

69
00:05:02,910 --> 00:05:06,230
and our understanding
of coupled oscillators.

70
00:05:06,230 --> 00:05:09,380
So the issue is,
can I guess what

71
00:05:09,380 --> 00:05:13,835
will be the motion
in the normal modes?

72
00:05:16,480 --> 00:05:19,200
And the answer is, actually,
if you stop and think

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00:05:19,200 --> 00:05:23,370
for a second, at
least the first two

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00:05:23,370 --> 00:05:26,770
modes you can figure
out rather easily.

75
00:05:26,770 --> 00:05:30,270
So here I'm showing
you schematically

76
00:05:30,270 --> 00:05:34,130
what would be one of the
modes of oscillation,

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00:05:34,130 --> 00:05:35,780
one of the normal modes.

78
00:05:35,780 --> 00:05:41,120
Imagine that I first
hold this mass fixed

79
00:05:41,120 --> 00:05:45,390
and I displace these
symmetrically, one

80
00:05:45,390 --> 00:05:48,565
to the right, one to
the left, and I let go.

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00:05:51,400 --> 00:05:54,720
What you will find
is, by symmetry,

82
00:05:54,720 --> 00:05:59,470
this spring will always be
stretched by the same amount

83
00:05:59,470 --> 00:06:06,500
as this is compressed, and
so the force on this mass

84
00:06:06,500 --> 00:06:07,550
will be 0.

85
00:06:07,550 --> 00:06:13,210
This spring will be pushing this
mass exactly by the same amount

86
00:06:13,210 --> 00:06:16,290
as this one will be
pulling it and vice versa.

87
00:06:16,290 --> 00:06:19,145
So there will never be any
net force on this mass,

88
00:06:19,145 --> 00:06:22,420
and so they'll stay put.

89
00:06:22,420 --> 00:06:31,160
And these two will now behave
as a simple harmonic oscillator

90
00:06:31,160 --> 00:06:38,040
consisting of a spring attached
to a fixed wall and the mass m.

91
00:06:38,040 --> 00:06:40,420
So that's what this
one will be doing,

92
00:06:40,420 --> 00:06:42,070
and that's what
this will be doing.

93
00:06:42,070 --> 00:06:44,580
It will be out of
phase by 180 degrees.

94
00:06:44,580 --> 00:06:48,520
Or what one normally
says, it'll be in phase

95
00:06:48,520 --> 00:06:53,440
but the amplitude will
be minus the other one.

96
00:06:53,440 --> 00:06:56,490
This, by now, you've
had enough experience

97
00:06:56,490 --> 00:07:00,240
and I've done it here
before, I can just

98
00:07:00,240 --> 00:07:04,460
write what will be that
frequency of oscillation

99
00:07:04,460 --> 00:07:08,410
here, as we've seen many times.

100
00:07:08,410 --> 00:07:13,310
And, by the way, throughout
my solving the problems here,

101
00:07:13,310 --> 00:07:19,150
I do not differentiate frequency
and angular frequency, that you

102
00:07:19,150 --> 00:07:22,320
can see which I'm talking about
is whether I'm using omega

103
00:07:22,320 --> 00:07:25,500
or F. Omega is the
angular frequency,

104
00:07:25,500 --> 00:07:28,230
and there's just a fact
of 2 pi between the two.

105
00:07:28,230 --> 00:07:31,970
But I'll use, interchangeably,
I'll call this frequency.

106
00:07:31,970 --> 00:07:37,340
So this frequency of one of
the normal modes is just k/m.

107
00:07:37,340 --> 00:07:40,710
So we found one
normal mode frequency.

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00:07:40,710 --> 00:07:42,850
Let's look for another one.

109
00:07:42,850 --> 00:07:48,376
We stare at this and we see,
sure, there is another one.

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00:07:48,376 --> 00:07:55,760
Another one is where I take,
simply, these two masses

111
00:07:55,760 --> 00:07:59,540
and simultaneously pull
them out, in this mass,

112
00:07:59,540 --> 00:08:03,220
away and let go.

113
00:08:03,220 --> 00:08:07,730
Effectively, these two
will look like that.

114
00:08:07,730 --> 00:08:13,160
It's as if I had a mass of
2m attached to a mass of 2m

115
00:08:13,160 --> 00:08:18,790
by two springs, each
of spring constant k.

116
00:08:18,790 --> 00:08:23,730
And as I pull this back, this
will oscillate like this.

117
00:08:23,730 --> 00:08:26,470
Everything, both this
mass and this mass,

118
00:08:26,470 --> 00:08:31,570
will be oscillating with the
same frequency, same phase,

119
00:08:31,570 --> 00:08:33,789
although there's
this minus sign.

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00:08:33,789 --> 00:08:39,600
I can always replace the
180-degree phase shift

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00:08:39,600 --> 00:08:43,240
by saying the
amplitude is minus.

122
00:08:43,240 --> 00:08:47,170
So those are
identical statements.

123
00:08:47,170 --> 00:08:51,308
So you have these two masses
oscillating like that.

124
00:08:51,308 --> 00:08:52,670
OK?

125
00:08:52,670 --> 00:08:58,090
By the way, I've said
that in the normal mode

126
00:08:58,090 --> 00:09:02,040
I want everything to move
with the same frequency.

127
00:09:02,040 --> 00:09:04,170
Some of you may argue, hold on.

128
00:09:04,170 --> 00:09:05,680
Did I cheat on you?

129
00:09:05,680 --> 00:09:09,510
Here, this mass is
not oscillating.

130
00:09:09,510 --> 00:09:12,110
So am I contradicting myself?

131
00:09:12,110 --> 00:09:14,490
And the answer is no.

132
00:09:14,490 --> 00:09:16,230
It's a diabolical answer.

133
00:09:16,230 --> 00:09:18,970
But I'll say, no,
this is oscillating

134
00:09:18,970 --> 00:09:22,760
with this frequency,
but with 0 amplitude.

135
00:09:22,760 --> 00:09:24,970
And you can't tell
me that I'm wrong.

136
00:09:24,970 --> 00:09:27,810
It's not moving because
the amplitude is 0,

137
00:09:27,810 --> 00:09:32,360
but it is oscillating
with the same frequency.

138
00:09:32,360 --> 00:09:36,180
So now, what is the frequency
of this oscillation?

139
00:09:36,180 --> 00:09:38,550
Again, I can do it in my head.

140
00:09:38,550 --> 00:09:46,450
I can imagine that the middle
of this spring is not moving.

141
00:09:46,450 --> 00:09:52,650
And so this mass is a half
a length of the spring

142
00:09:52,650 --> 00:09:55,500
and a mass 2 attached
to it oscillating,

143
00:09:55,500 --> 00:09:57,440
and I can calculate
the frequency

144
00:09:57,440 --> 00:09:59,150
of oscillation of that.

145
00:09:59,150 --> 00:10:02,700
Or if you prefer, I
can do the following.

146
00:10:02,700 --> 00:10:09,180
I can move this mass out a
distance dx and this one dx

147
00:10:09,180 --> 00:10:12,030
to the other side
and calculate what

148
00:10:12,030 --> 00:10:14,450
will be the restoring force.

149
00:10:14,450 --> 00:10:19,890
Well, now each one has
a spring constant k.

150
00:10:19,890 --> 00:10:21,600
There is two of
them, so that's 2k.

151
00:10:25,140 --> 00:10:30,320
Although this mass has been
moved by dx, this by dx,

152
00:10:30,320 --> 00:10:35,030
the springs have been extended
by twice dx, so it's 2 dx.

153
00:10:35,030 --> 00:10:37,240
So that's the total
restoring force

154
00:10:37,240 --> 00:10:41,440
by Hooke's law, which
is equal minus 4k dx.

155
00:10:41,440 --> 00:10:42,610
All right?

156
00:10:42,610 --> 00:10:49,650
And so this will behave
like a single mass,

157
00:10:49,650 --> 00:10:52,880
like this system, a single
mass with a single spring

158
00:10:52,880 --> 00:10:56,770
where the spring has
a spring constant 4k.

159
00:10:56,770 --> 00:10:58,940
The mass is 2m.

160
00:10:58,940 --> 00:11:05,450
And so the angular frequency, or
frequency of this mode is 2k/m.

161
00:11:05,450 --> 00:11:07,660
So we've found two of them.

162
00:11:07,660 --> 00:11:12,330
Now, we know from our studies
of coupled oscillators

163
00:11:12,330 --> 00:11:15,685
that for a system of
3 degrees of freedom,

164
00:11:15,685 --> 00:11:20,940
so it would be three masses,
there are three normal modes.

165
00:11:20,940 --> 00:11:24,370
What is the third normal mode?

166
00:11:24,370 --> 00:11:27,210
And I intentionally
did not write it

167
00:11:27,210 --> 00:11:30,955
down here because I wanted
you for a second to think.

168
00:11:30,955 --> 00:11:35,920
Well, how else can
this system move such

169
00:11:35,920 --> 00:11:45,591
that every mass is moving in
phase with the same frequency?

170
00:11:45,591 --> 00:11:47,110
All right?

171
00:11:47,110 --> 00:11:50,810
And I tell you,
when I first saw it,

172
00:11:50,810 --> 00:11:54,290
it took me a long
time to figure out,

173
00:11:54,290 --> 00:12:00,030
and most people don't find it.

174
00:12:00,030 --> 00:12:03,400
And yet the answer
is extremely simple.

175
00:12:03,400 --> 00:12:08,430
This answer is there is
one more normal mode.

176
00:12:08,430 --> 00:12:17,600
It is one of almost infinite
amplitude, but 0 frequency.

177
00:12:17,600 --> 00:12:24,290
Just the opposite to here,
where this was 0 amplitude, OK,

178
00:12:24,290 --> 00:12:26,700
and the angular frequency
doesn't even matter.

179
00:12:26,700 --> 00:12:32,480
Here it has very large
amplitude, infinite in fact,

180
00:12:32,480 --> 00:12:34,100
but 0 frequency.

181
00:12:34,100 --> 00:12:38,770
What does such motion look
like at any instant of time?

182
00:12:38,770 --> 00:12:41,530
It's moving with
the same velocity.

183
00:12:41,530 --> 00:12:54,770
So if I take and if I
consider the motion where

184
00:12:54,770 --> 00:13:01,100
each one of these is moving
uniformly to the right

185
00:13:01,100 --> 00:13:04,240
with a constant
velocity, that is

186
00:13:04,240 --> 00:13:10,200
a normal mode with 0 frequency.

187
00:13:10,200 --> 00:13:18,240
So the last one is
omega C is equal to 0.

188
00:13:21,010 --> 00:13:21,920
OK?

189
00:13:21,920 --> 00:13:28,800
So we have now found
the three normal modes.

190
00:13:28,800 --> 00:13:31,000
OK.

191
00:13:31,000 --> 00:13:31,650
All right.

192
00:13:31,650 --> 00:13:38,960
Now that I've got a piece
of chalk, let's continue.

193
00:13:38,960 --> 00:13:41,980
So we've answered the first
part of the question, what

194
00:13:41,980 --> 00:13:44,490
are the normal mode
frequencies of the system?

195
00:13:44,490 --> 00:13:47,340
And I found you those
three normal modes.

196
00:13:47,340 --> 00:13:49,970
Now, the next question
we want to answer

197
00:13:49,970 --> 00:13:54,340
is, if, at any given
instant of time,

198
00:13:54,340 --> 00:13:57,930
I know the positions and the
velocities of the three masses,

199
00:13:57,930 --> 00:14:01,380
can I predict what
will happen at the end?

200
00:14:01,380 --> 00:14:04,690
That's equivalent
of saying, can I

201
00:14:04,690 --> 00:14:09,570
write equations for the
positions of the masses

202
00:14:09,570 --> 00:14:11,400
as a function of time?

203
00:14:11,400 --> 00:14:15,700
For that I need to define for
myself a coordinate system.

204
00:14:15,700 --> 00:14:18,585
So I'll say those are
those three masses.

205
00:14:23,120 --> 00:14:26,510
All the motion is
along the x direction,

206
00:14:26,510 --> 00:14:35,900
so there's just one variable,
one variable for each mass, x.

207
00:14:35,900 --> 00:14:38,080
So the position
of the first mass

208
00:14:38,080 --> 00:14:42,090
I'll call x1, position
of the second mass x2,

209
00:14:42,090 --> 00:14:43,760
and of the third is x3.

210
00:14:43,760 --> 00:14:46,960
And the origin of
coordinates I will

211
00:14:46,960 --> 00:14:51,070
take to be through the
center of each mass

212
00:14:51,070 --> 00:14:54,580
at a time when these
are in equilibrium.

213
00:14:54,580 --> 00:14:57,990
In other words, the spring
is unstretched, et cetera.

214
00:14:57,990 --> 00:14:58,880
OK.

215
00:14:58,880 --> 00:15:07,630
So I can now, using the
information we've obtained,

216
00:15:07,630 --> 00:15:17,060
write down the description
of each mass in each mode.

217
00:15:17,060 --> 00:15:23,360
So in mode A, I know that
the x1 is 0 all the time.

218
00:15:23,360 --> 00:15:26,690
It's not moving, OK?

219
00:15:26,690 --> 00:15:34,830
Now, in a normal mode, that's
what we mean by a normal mode,

220
00:15:34,830 --> 00:15:38,020
each mass is moving
with the same frequency

221
00:15:38,020 --> 00:15:42,240
and the same phase,
and it's oscillating.

222
00:15:42,240 --> 00:15:49,900
So there will be some sinusoidal
function of the mode frequency

223
00:15:49,900 --> 00:15:54,730
t plus this phase times
some arbitrary amplitude.

224
00:15:57,480 --> 00:16:00,960
The other one, the
last one, will also

225
00:16:00,960 --> 00:16:03,330
be oscillating in
the normal mode,

226
00:16:03,330 --> 00:16:05,025
so everything will be the same.

227
00:16:05,025 --> 00:16:07,930
It will be cosine of
omega A t plus phi

228
00:16:07,930 --> 00:16:11,320
A with some other amplitude.

229
00:16:11,320 --> 00:16:18,350
But from our analysis
here, we know

230
00:16:18,350 --> 00:16:23,810
that these two are
not both arbitrary.

231
00:16:23,810 --> 00:16:27,510
Because we said that
in the normal mode,

232
00:16:27,510 --> 00:16:35,360
it was the case where the
2m mass was stationary,

233
00:16:35,360 --> 00:16:37,970
but these were going like this.

234
00:16:37,970 --> 00:16:40,340
That was the first mode.

235
00:16:40,340 --> 00:16:46,080
So whenever this one was going
to the right a distance A,

236
00:16:46,080 --> 00:16:49,440
this one was going to
the left a distance A.

237
00:16:49,440 --> 00:16:52,830
So the overall
normalization is arbitrary.

238
00:16:52,830 --> 00:16:54,620
It can be anything.

239
00:16:54,620 --> 00:16:58,210
But these are not
independent of the other,

240
00:16:58,210 --> 00:17:01,240
because we discovered
that in that mode,

241
00:17:01,240 --> 00:17:06,589
this was the frequency,
and the amplitudes were

242
00:17:06,589 --> 00:17:09,849
opposite to each other.

243
00:17:09,849 --> 00:17:17,630
So this describes the
situation for this system

244
00:17:17,630 --> 00:17:22,650
if it's oscillating in
the first normal mode.

245
00:17:22,650 --> 00:17:26,540
It's the most general
description of that.

246
00:17:26,540 --> 00:17:29,490
Next, I will
describe what it will

247
00:17:29,490 --> 00:17:32,350
do in the second normal mode.

248
00:17:32,350 --> 00:17:34,880
And now I can go much quicker.

249
00:17:34,880 --> 00:17:37,270
This time, it'll have
the second normal mode

250
00:17:37,270 --> 00:17:40,750
frequency, different phase.

251
00:17:40,750 --> 00:17:44,980
But these have to be the same
because all of these masses

252
00:17:44,980 --> 00:17:49,910
are moving in the same normal
mode, same normal frequency.

253
00:17:49,910 --> 00:17:54,560
These amplitudes,
overall, it's arbitrary.

254
00:17:54,560 --> 00:17:55,960
I can make it anything.

255
00:17:55,960 --> 00:17:58,600
It'll satisfy the equations.

256
00:17:58,600 --> 00:18:03,520
But I know that in the
second normal mode,

257
00:18:03,520 --> 00:18:06,820
this one is moving in that
direction and those two

258
00:18:06,820 --> 00:18:10,220
in the opposite direction
with the same magnitude.

259
00:18:10,220 --> 00:18:14,220
So these two have to have
the same size and magnitude,

260
00:18:14,220 --> 00:18:16,620
but this has to be opposite.

261
00:18:16,620 --> 00:18:21,460
So this describes the
motion in the second mode.

262
00:18:21,460 --> 00:18:25,090
And finally, in the
third normal mode,

263
00:18:25,090 --> 00:18:29,160
we said that it was 0 frequency.

264
00:18:29,160 --> 00:18:30,280
All right?

265
00:18:30,280 --> 00:18:32,990
And all that was
happening, the three masses

266
00:18:32,990 --> 00:18:37,780
were moving with
uniform velocity.

267
00:18:37,780 --> 00:18:41,850
So the positions
will be some constant

268
00:18:41,850 --> 00:18:44,265
plus the velocity
of that system.

269
00:18:51,310 --> 00:18:55,030
So this describes the
system in the third mode,

270
00:18:55,030 --> 00:18:58,650
and these are the other two.

271
00:18:58,650 --> 00:19:17,870
Now, I know that, in general,
each one of these masses

272
00:19:17,870 --> 00:19:25,990
can move in a superposition
of the normal modes.

273
00:19:25,990 --> 00:19:37,390
So the most general
expression for x1 of t

274
00:19:37,390 --> 00:19:45,430
has to be of the form which is
the sum of its possible motion

275
00:19:45,430 --> 00:19:47,360
in each of the modes.

276
00:19:47,360 --> 00:19:51,660
So x1, so this is
the mass 2m, will

277
00:19:51,660 --> 00:19:56,320
have possible motion in
the first mode, which is 0.

278
00:19:56,320 --> 00:19:57,520
All right?

279
00:19:57,520 --> 00:20:13,570
So I'll write 0 plus B times
cosine omega B t plus phi

280
00:20:13,570 --> 00:20:21,920
B, all right, plus
C plus v. So that

281
00:20:21,920 --> 00:20:26,940
will be the most general
description of the motion

282
00:20:26,940 --> 00:20:30,880
of the big mass, the 2m one.

283
00:20:30,880 --> 00:20:34,310
The B is arbitrary,
this phase is arbitrary,

284
00:20:34,310 --> 00:20:37,990
this is arbitrary, and
v. Those quantities

285
00:20:37,990 --> 00:20:42,986
will be determined by
the initial conditions.

286
00:20:42,986 --> 00:20:44,280
Well, how about x2?

287
00:20:48,340 --> 00:21:08,190
Well, I know that if x1 is
0, x2 is A cosine omega A t

288
00:21:08,190 --> 00:21:26,250
plus phi A. When the x1 is this,
then x2 is minus B cosine omega

289
00:21:26,250 --> 00:21:37,270
B t plus phi B, OK,
and plus C plus v. OK?

290
00:21:37,270 --> 00:21:45,210
And finally, x3 of t,
again now just following

291
00:21:45,210 --> 00:21:50,360
the same pattern, this is
minus A cosine omega A t

292
00:21:50,360 --> 00:21:59,620
plus phi A. This one is
minus B cosine omega B

293
00:21:59,620 --> 00:22:15,940
t plus phi B plus C plus v.

294
00:22:15,940 --> 00:22:19,780
And I'm almost home.

295
00:22:19,780 --> 00:22:22,650
I have described the
motion of each one.

296
00:22:27,015 --> 00:22:31,620
For each particle,
it is oscillating

297
00:22:31,620 --> 00:22:34,410
in a superposition
of its normal modes.

298
00:22:38,230 --> 00:22:45,460
And the amplitudes are
arbitrary within the constraint

299
00:22:45,460 --> 00:22:50,650
that the ratios between
them is determined

300
00:22:50,650 --> 00:22:56,070
by the constraints
of the system.

301
00:22:56,070 --> 00:23:00,450
So now the question is,
can I predict the future?

302
00:23:00,450 --> 00:23:02,720
Well, in order to
predict the future,

303
00:23:02,720 --> 00:23:06,645
say, where will
particle 3 be at time t?

304
00:23:06,645 --> 00:23:11,876
I need to know the value of
these arbitrary constants.

305
00:23:14,420 --> 00:23:16,640
Omega is not an
arbitrary constant.

306
00:23:16,640 --> 00:23:17,740
We found it.

307
00:23:17,740 --> 00:23:19,630
Omega A is here.

308
00:23:19,630 --> 00:23:20,580
OK?

309
00:23:20,580 --> 00:23:26,370
This is arbitrary, this is
arbitrary, this, and that.

310
00:23:26,370 --> 00:23:30,670
So there are six
arbitrary constants.

311
00:23:30,670 --> 00:23:32,280
How do I find them?

312
00:23:32,280 --> 00:23:36,730
They are determined by
the initial conditions.

313
00:23:36,730 --> 00:23:40,420
And you know,
fortunately, or else it

314
00:23:40,420 --> 00:23:44,660
would mean we've made a mistake,
we have three conditions.

315
00:23:47,280 --> 00:23:51,560
At the beginning,
someone has to tell me

316
00:23:51,560 --> 00:23:58,000
where each mass was, the
location, and with what

317
00:23:58,000 --> 00:24:01,810
velocity is it
moving at that time.

318
00:24:01,810 --> 00:24:09,290
So I can write these
three equations at, say,

319
00:24:09,290 --> 00:24:14,920
with t equals 0, at t
equals 0, and equate this

320
00:24:14,920 --> 00:24:21,220
to the position of x1 of t
equals 0, wherever it is.

321
00:24:21,220 --> 00:24:26,220
When the t is 0, I make it
equal to the position of x2 at t

322
00:24:26,220 --> 00:24:28,170
equals 0.

323
00:24:28,170 --> 00:24:32,890
When t is 0, this tells me has
to be equal to where x3 is.

324
00:24:32,890 --> 00:24:34,650
That's three equations.

325
00:24:34,650 --> 00:24:36,680
I can differentiate
each with respect

326
00:24:36,680 --> 00:24:40,650
to time to get the
velocities, and likewise,

327
00:24:40,650 --> 00:24:42,440
get three more equations.

328
00:24:42,440 --> 00:24:46,500
So I'm going to end up with
six algebraic equations.

329
00:24:46,500 --> 00:24:49,210
And you, as well as
I, know that if we

330
00:24:49,210 --> 00:24:53,540
have six algebraic equations,
I can solve for six unknowns.

331
00:24:53,540 --> 00:24:56,550
And that will give me
those six unknowns.

332
00:24:56,550 --> 00:25:00,010
So once I've used the
initial conditions,

333
00:25:00,010 --> 00:25:03,880
I can then find these
arbitrary constants.

334
00:25:03,880 --> 00:25:07,420
They're no longer arbitrary
for a specific situation.

335
00:25:07,420 --> 00:25:11,960
And I can predict the future,
what will happen in this case.

336
00:25:11,960 --> 00:25:12,610
OK?

337
00:25:12,610 --> 00:25:19,430
So that's the way one
would solve a problem when

338
00:25:19,430 --> 00:25:21,570
you are lucky
enough that there is

339
00:25:21,570 --> 00:25:25,340
sufficient symmetry in
the original situation

340
00:25:25,340 --> 00:25:29,510
so you can guess
the normal modes.

341
00:25:29,510 --> 00:25:34,730
The next problem I'll do, I will
do one where you cannot guess

342
00:25:34,730 --> 00:25:36,110
the normal modes.

343
00:25:36,110 --> 00:25:38,160
What do you do under
those circumstances?

344
00:25:38,160 --> 00:25:40,180
And you won't be
surprised that it's

345
00:25:40,180 --> 00:25:46,350
going to be mathematically much,
much harder, but conceptually

346
00:25:46,350 --> 00:25:47,500
no harder.

347
00:25:47,500 --> 00:25:50,950
So now we'll move
to the next problem.

348
00:25:50,950 --> 00:25:51,720
Here it is.

349
00:25:51,720 --> 00:25:54,050
But in order to be able
to do this problem,

350
00:25:54,050 --> 00:25:55,600
I need more board space.

351
00:25:55,600 --> 00:25:59,281
So we're going to erase the
boards and continue from there.

352
00:25:59,281 --> 00:25:59,780
OK.

353
00:25:59,780 --> 00:26:03,130
So now let's go and
do the second problem.

354
00:26:03,130 --> 00:26:07,190
And it's going to be a
problem with no symmetry,

355
00:26:07,190 --> 00:26:10,760
so we can't guess the
answer like we did before.

356
00:26:10,760 --> 00:26:12,870
And I'll tell you
what I decided to do.

357
00:26:12,870 --> 00:26:15,770
You remember
Professor Walter Lewin

358
00:26:15,770 --> 00:26:21,660
in his lectures discussed
a double pendulum.

359
00:26:21,660 --> 00:26:23,400
In other words,
a situation where

360
00:26:23,400 --> 00:26:27,990
you had a string, a mass,
another string, and mass.

361
00:26:27,990 --> 00:26:30,200
He gave you the answer,
but he didn't prove it.

362
00:26:30,200 --> 00:26:32,590
He said it's hard and
lengthy, et cetera.

363
00:26:32,590 --> 00:26:35,140
And I thought that would
be a perfect example

364
00:26:35,140 --> 00:26:39,660
to do here from
first principles.

365
00:26:39,660 --> 00:26:44,930
So let me just
describe in detail

366
00:26:44,930 --> 00:26:47,230
the problem we're
trying to solve.

367
00:26:47,230 --> 00:26:51,230
What we have is, again,
an idealized situation.

368
00:26:51,230 --> 00:26:57,250
We have a simple pendulum
with a string of length L,

369
00:26:57,250 --> 00:26:59,960
attached to it a mass m.

370
00:26:59,960 --> 00:27:03,850
Attached to this mass at one
end is another string of length

371
00:27:03,850 --> 00:27:06,930
L to another mass m.

372
00:27:06,930 --> 00:27:09,930
We'll again idealize
the situation.

373
00:27:09,930 --> 00:27:12,200
So the assumptions
we are making,

374
00:27:12,200 --> 00:27:18,460
that this string and this string
is massless, which, by the way,

375
00:27:18,460 --> 00:27:22,530
is equivalent to saying that
it's taut and straight all

376
00:27:22,530 --> 00:27:23,310
the time.

377
00:27:23,310 --> 00:27:25,970
You can think about
that for yourself.

378
00:27:25,970 --> 00:27:31,350
Next, these masses
are point masses.

379
00:27:31,350 --> 00:27:34,330
And we're assuming no friction.

380
00:27:34,330 --> 00:27:37,980
Furthermore, as we've
done in the past,

381
00:27:37,980 --> 00:27:41,500
we'll assume that
all displacements

382
00:27:41,500 --> 00:27:47,260
when this is oscillating, at all
times the angle that the string

383
00:27:47,260 --> 00:27:52,220
makes with the vertical is
always such that we can ignore

384
00:27:52,220 --> 00:27:56,520
the difference between
a sine theta, theta,

385
00:27:56,520 --> 00:28:01,695
or [INAUDIBLE] can make the
assumption that cosine theta is

386
00:28:01,695 --> 00:28:03,090
0.

387
00:28:03,090 --> 00:28:06,410
By the way, the fact that
we'll make this assumption

388
00:28:06,410 --> 00:28:09,290
is equivalent to
saying that we'll

389
00:28:09,290 --> 00:28:13,080
ignore vertical motion
of these masses.

390
00:28:13,080 --> 00:28:16,780
The motion is sufficiently
small that vertically the masses

391
00:28:16,780 --> 00:28:18,210
are not moving.

392
00:28:18,210 --> 00:28:22,780
We can assume the acceleration
vertically is 0, et cetera.

393
00:28:22,780 --> 00:28:23,340
OK?

394
00:28:23,340 --> 00:28:24,850
This is in the vertical plane.

395
00:28:24,850 --> 00:28:26,420
Gravity is down.

396
00:28:26,420 --> 00:28:27,180
OK?

397
00:28:27,180 --> 00:28:32,440
And what we are trying
to derive for this,

398
00:28:32,440 --> 00:28:37,980
predict what are the normal
mode frequencies of this.

399
00:28:37,980 --> 00:28:40,170
And once we do
that, of course, we

400
00:28:40,170 --> 00:28:43,610
can use the same kind of
technique as we did before.

401
00:28:43,610 --> 00:28:45,800
Once we've managed to
find the normal modes

402
00:28:45,800 --> 00:28:47,810
and the frequencies,
we can always

403
00:28:47,810 --> 00:28:50,450
write the most
general expression.

404
00:28:50,450 --> 00:28:53,920
And then using the boundary
conditions, initial conditions,

405
00:28:53,920 --> 00:28:57,440
predict what this will
do as a function of time.

406
00:28:57,440 --> 00:28:58,774
OK, so let's get going.

407
00:29:05,280 --> 00:29:05,780
OK.

408
00:29:05,780 --> 00:29:07,660
Now, we are not guessing.

409
00:29:07,660 --> 00:29:09,120
We are not using logic.

410
00:29:09,120 --> 00:29:11,950
We are following the
kind of prescription

411
00:29:11,950 --> 00:29:14,450
I've told you in the past.

412
00:29:14,450 --> 00:29:17,020
This is our description
of the situation.

413
00:29:17,020 --> 00:29:19,700
And all the new words
and ordinary language, we

414
00:29:19,700 --> 00:29:23,820
must now translate
it into mathematics.

415
00:29:23,820 --> 00:29:26,230
We've got to
describe this problem

416
00:29:26,230 --> 00:29:29,580
in terms of
mathematical equations.

417
00:29:29,580 --> 00:29:33,600
So step one is we
redraw this and define

418
00:29:33,600 --> 00:29:35,380
some coordinate system.

419
00:29:35,380 --> 00:29:39,690
So we will say that the
angle this first string makes

420
00:29:39,690 --> 00:29:43,200
with respect to the
vertical is theta 1.

421
00:29:43,200 --> 00:29:45,980
This angle the second
string makes with respect

422
00:29:45,980 --> 00:29:48,420
to the vertical is theta 2.

423
00:29:48,420 --> 00:29:51,420
We will take the vertical
through this pivot

424
00:29:51,420 --> 00:29:56,140
here as our origin
of coordinate x.

425
00:29:56,140 --> 00:30:02,870
x equals 0 here,
is defined here.

426
00:30:02,870 --> 00:30:05,190
From the point of your
motion of the masses,

427
00:30:05,190 --> 00:30:06,960
it's a one-dimensional problem.

428
00:30:06,960 --> 00:30:10,750
The masses only move
along the x-axis.

429
00:30:10,750 --> 00:30:13,430
So we'll define
this distance as x1,

430
00:30:13,430 --> 00:30:17,440
and we'll define
this distance as x2.

431
00:30:17,440 --> 00:30:22,720
Now we have to use the laws of
physics, Newtonian mechanics,

432
00:30:22,720 --> 00:30:29,390
to derive the equations of
motion for the two masses.

433
00:30:29,390 --> 00:30:36,010
So I draw a force diagram
separately for the two masses.

434
00:30:36,010 --> 00:30:39,930
So the mass is there, what
forces act on that mass?

435
00:30:39,930 --> 00:30:43,790
Well, I have to look at the mass
and see what's attached to it.

436
00:30:43,790 --> 00:30:46,670
There is a string
here attached to it.

437
00:30:46,670 --> 00:30:49,280
It's taut, so there
will be a tension in it.

438
00:30:49,280 --> 00:30:53,890
So along this string,
there will be tension T1,

439
00:30:53,890 --> 00:30:58,690
which will exert a force
T1 along this string.

440
00:30:58,690 --> 00:31:02,100
This string is
attached to that mass.

441
00:31:02,100 --> 00:31:06,030
It has a tension, so it's
pulling on this mass.

442
00:31:06,030 --> 00:31:08,630
That tension I call
T2, so there will

443
00:31:08,630 --> 00:31:13,990
be a force along
that direction T2.

444
00:31:13,990 --> 00:31:16,820
This sits in a
gravitational field.

445
00:31:16,820 --> 00:31:19,360
Gravity acts on this mass.

446
00:31:19,360 --> 00:31:23,330
There is a force downwards
due to gravity, Fg.

447
00:31:26,330 --> 00:31:29,660
The sum of these forces,
by Newton's laws,

448
00:31:29,660 --> 00:31:33,460
must equal to the mass
times the acceleration.

449
00:31:33,460 --> 00:31:37,810
That acceleration, in this
approximation that is not

450
00:31:37,810 --> 00:31:40,550
moving up, is
horizontally, and it's

451
00:31:40,550 --> 00:31:43,920
the second derivative of x1.

452
00:31:43,920 --> 00:31:50,160
Similarly, for the second mass,
again, I'll go now faster.

453
00:31:50,160 --> 00:31:52,390
There is this mass
m, and this tension

454
00:31:52,390 --> 00:31:57,636
exerts a force here of T2
and the gravity on it Fg.

455
00:31:57,636 --> 00:32:00,310
The only subtlety
is, why did I say

456
00:32:00,310 --> 00:32:03,350
this force is equal
to that force?

457
00:32:03,350 --> 00:32:04,650
Think about it for a second.

458
00:32:04,650 --> 00:32:08,490
Why should the two
forces be equal?

459
00:32:08,490 --> 00:32:12,870
Why is the tension at both
ends of the string equal?

460
00:32:12,870 --> 00:32:16,756
And the answer is,
actually, a subtle one.

461
00:32:16,756 --> 00:32:20,740
It's equal because we made the
assumption that the string has

462
00:32:20,740 --> 00:32:28,240
no mass, and there can be no net
force on an object of 0 mass.

463
00:32:28,240 --> 00:32:31,190
Because if there was, that
object would disappear,

464
00:32:31,190 --> 00:32:33,650
would have an
infinite acceleration.

465
00:32:33,650 --> 00:32:37,620
So if you treat the
string as a mass,

466
00:32:37,620 --> 00:32:39,930
there cannot be net force on it.

467
00:32:39,930 --> 00:32:44,780
And so the force of
each of these masses

468
00:32:44,780 --> 00:32:49,460
must be pulling on this string
with exactly the same force

469
00:32:49,460 --> 00:32:51,031
equal and opposite.

470
00:32:51,031 --> 00:32:51,530
OK?

471
00:32:51,530 --> 00:32:55,020
And we're using the third
law to equate those forces.

472
00:32:55,020 --> 00:32:58,770
So the net result is this
T2 is the same as that,

473
00:32:58,770 --> 00:33:02,850
but in opposite direction,
and this is the mass of that.

474
00:33:02,850 --> 00:33:03,710
OK.

475
00:33:03,710 --> 00:33:07,410
So these are the force diagrams.

476
00:33:07,410 --> 00:33:11,020
Using now Newton's
laws of motion,

477
00:33:11,020 --> 00:33:15,220
I can translate this
into equations of motion.

478
00:33:15,220 --> 00:33:18,810
So let me consider
the horizontal motion

479
00:33:18,810 --> 00:33:20,950
of each mass separately.

480
00:33:20,950 --> 00:33:26,050
First this mass, and so
its mass times acceleration

481
00:33:26,050 --> 00:33:31,320
is equal to the
horizontal force of T2.

482
00:33:31,320 --> 00:33:35,690
And remember that this
angle here is theta 2.

483
00:33:35,690 --> 00:33:38,600
And we see that the
force due to T2,

484
00:33:38,600 --> 00:33:40,930
and there's a T2 sine theta 2.

485
00:33:40,930 --> 00:33:45,150
And the force due to T1
is minus T1 sine theta 1

486
00:33:45,150 --> 00:33:47,530
because it's in the
opposite direction.

487
00:33:47,530 --> 00:33:50,190
For this, the only
horizontal component

488
00:33:50,190 --> 00:33:53,180
is the force horizontal
component of T2.

489
00:33:53,180 --> 00:33:58,800
And x2 double dot is equal
to minus T2 sine theta 2.

490
00:33:58,800 --> 00:34:01,350
OK, that's horizontal motion.

491
00:34:01,350 --> 00:34:06,190
Applying Newton's laws of
motion to the vertical motion,

492
00:34:06,190 --> 00:34:12,170
we said that, because cosine
theta is 0 or approximately 0,

493
00:34:12,170 --> 00:34:14,250
the masses are not
moving up and down.

494
00:34:14,250 --> 00:34:16,739
There's no acceleration
of the masses.

495
00:34:16,739 --> 00:34:20,800
So the vertical acceleration
of the first mass

496
00:34:20,800 --> 00:34:28,570
is 0 must be equal to the
vertical component of T1, which

497
00:34:28,570 --> 00:34:33,219
is T1 cosine theta 1, minus
the vertical component of this,

498
00:34:33,219 --> 00:34:40,940
which is minus T2
cosine theta 2 minus mg.

499
00:34:40,940 --> 00:34:41,440
All right.

500
00:34:41,440 --> 00:34:47,219
Similarly for the second
mass, it's 0 is equal to this.

501
00:34:47,219 --> 00:34:51,850
0 must equal to the
vertical component

502
00:34:51,850 --> 00:34:58,390
of T1 minus the
vertical component of T2

503
00:34:58,390 --> 00:35:02,170
minus the force of gravity down.

504
00:35:02,170 --> 00:35:06,040
And similarly for
the second mass,

505
00:35:06,040 --> 00:35:09,170
we know that vertically
the acceleration is 0.

506
00:35:09,170 --> 00:35:12,560
That must be equal to the
vertical component of T2

507
00:35:12,560 --> 00:35:18,650
minus the gravitational
force pulling down.

508
00:35:18,650 --> 00:35:26,790
Now I can make use of what we
made the assumption-- oops,

509
00:35:26,790 --> 00:35:29,130
I see there is an error.

510
00:35:29,130 --> 00:35:31,540
If you were in this
room, I'm sure you

511
00:35:31,540 --> 00:35:35,020
would have corrected me.

512
00:35:35,020 --> 00:35:38,540
For very small angles,
the sine of an angle

513
00:35:38,540 --> 00:35:40,790
is approximately
equal to the angle.

514
00:35:40,790 --> 00:35:44,740
But for small angles,
the cosine is 1.

515
00:35:44,740 --> 00:35:48,250
This is an error, and
I apologize for that.

516
00:35:48,250 --> 00:35:50,450
But that's the
approximation we are making.

517
00:35:50,450 --> 00:35:54,580
And it is this
approximation which

518
00:35:54,580 --> 00:36:00,810
is equivalent to saying that we
can ignore the vertical motion.

519
00:36:00,810 --> 00:36:02,200
All right.

520
00:36:02,200 --> 00:36:07,230
So with the assumption
that the cosines are all 1,

521
00:36:07,230 --> 00:36:12,470
I can, from these two
equations, I clearly

522
00:36:12,470 --> 00:36:18,430
derive that T2 must equal to
mg, and T1 equals twice mg.

523
00:36:18,430 --> 00:36:20,580
Actually, it makes sense.

524
00:36:20,580 --> 00:36:23,770
Imagine this is hanging
completely vertically.

525
00:36:23,770 --> 00:36:28,210
Obviously, this string, the
upper part of the string,

526
00:36:28,210 --> 00:36:30,875
is supporting not only
this mass but also that.

527
00:36:30,875 --> 00:36:35,530
It's supporting 2m masses,
while this string is only

528
00:36:35,530 --> 00:36:36,640
supporting 1.

529
00:36:36,640 --> 00:36:40,440
So that's consistent
with what we see,

530
00:36:40,440 --> 00:36:45,230
that the top string has twice
the tension and the lower

531
00:36:45,230 --> 00:36:47,780
one half the tension.

532
00:36:47,780 --> 00:36:50,640
Having determined T1
and T2, we can now

533
00:36:50,640 --> 00:36:56,170
go back into our equation,
replace the T1 and T2.

534
00:36:56,170 --> 00:36:58,830
We also can replace--
we know what

535
00:36:58,830 --> 00:37:02,440
sine theta 1 and
sine theta 2 are.

536
00:37:02,440 --> 00:37:04,440
We can replace those.

537
00:37:04,440 --> 00:37:06,990
And we end up--
the two equations

538
00:37:06,990 --> 00:37:10,750
of motions are written here.

539
00:37:10,750 --> 00:37:11,770
All right?

540
00:37:11,770 --> 00:37:15,750
So here is the equation
of motion for x1.

541
00:37:15,750 --> 00:37:19,380
And the second one, the
equation for motion of x2,

542
00:37:19,380 --> 00:37:21,380
is written here.

543
00:37:21,380 --> 00:37:22,140
OK?

544
00:37:22,140 --> 00:37:27,200
So these are the
equations of motion,

545
00:37:27,200 --> 00:37:37,930
all right, which
we have to solve.

546
00:37:37,930 --> 00:37:46,300
Now, to simplify the algebra,
let me define the quantity g/l

547
00:37:46,300 --> 00:37:49,525
by omega squared over 2.

548
00:37:49,525 --> 00:37:51,140
And you'll recognize this.

549
00:37:51,140 --> 00:37:52,240
This is not [INAUDIBLE].

550
00:37:52,240 --> 00:37:54,010
I'm using that terminology.

551
00:37:54,010 --> 00:37:56,620
This is the frequency
of oscillation

552
00:37:56,620 --> 00:38:01,140
of a mass on a
string of length l.

553
00:38:01,140 --> 00:38:02,260
All right?

554
00:38:02,260 --> 00:38:08,930
So here are our two differential
equations, the two equations

555
00:38:08,930 --> 00:38:14,620
of motion, one for
x1 and one for x2.

556
00:38:14,620 --> 00:38:17,980
When we had one mass,
one harmonic oscillator,

557
00:38:17,980 --> 00:38:21,420
we had a single second-order
differential equation.

558
00:38:21,420 --> 00:38:25,070
We now have two
masses, so we have

559
00:38:25,070 --> 00:38:27,740
two second-order
differential equations.

560
00:38:27,740 --> 00:38:28,490
These are it.

561
00:38:28,490 --> 00:38:30,970
They are coupled
differential equations.

562
00:38:30,970 --> 00:38:38,860
You see, the derivatives of x1
is related both to x1 and x2.

563
00:38:38,860 --> 00:38:43,870
The second derivative of x2 is
related both to x1 and to x2.

564
00:38:43,870 --> 00:38:47,210
So these are two coupled
differential equations.

565
00:38:47,210 --> 00:38:48,220
OK?

566
00:38:48,220 --> 00:38:51,655
This is the end of step 1.

567
00:38:51,655 --> 00:38:55,370
What we succeeded
in, we've translated

568
00:38:55,370 --> 00:39:00,610
the physical situation
into mathematics.

569
00:39:00,610 --> 00:39:06,580
These two second-order
differential equations

570
00:39:06,580 --> 00:39:11,285
describe exactly that
idealized situation we had.

571
00:39:14,050 --> 00:39:17,280
So if I now want to
answer the question, what

572
00:39:17,280 --> 00:39:19,770
will be the motion
of those masses,

573
00:39:19,770 --> 00:39:22,240
I have to go into the
world of mathematics.

574
00:39:22,240 --> 00:39:25,630
I have to solve these equations.

575
00:39:25,630 --> 00:39:28,290
And life is not
as easy as it was

576
00:39:28,290 --> 00:39:31,600
for a single second-order
differential equation.

577
00:39:31,600 --> 00:39:33,720
It's more complicated.

578
00:39:33,720 --> 00:39:39,060
But here I will use
my general knowledge

579
00:39:39,060 --> 00:39:44,040
of what happens when you
have coupled oscillators.

580
00:39:44,040 --> 00:39:51,380
I know that the general
solution of coupled oscillations

581
00:39:51,380 --> 00:39:57,410
is a superposition
of normal modes.

582
00:39:57,410 --> 00:40:00,620
Here I have 2
degrees of freedom,

583
00:40:00,620 --> 00:40:03,020
two second-order
differential equations.

584
00:40:03,020 --> 00:40:05,940
There will be two normal modes.

585
00:40:05,940 --> 00:40:09,490
If I succeed in
finding them, I will

586
00:40:09,490 --> 00:40:13,890
have found the most general
solution to this problem,

587
00:40:13,890 --> 00:40:17,220
because it will be the sum
of the two normal modes.

588
00:40:17,220 --> 00:40:24,900
So I will now do it by trial.

589
00:40:24,900 --> 00:40:30,630
In a normal mode,
we know that x1

590
00:40:30,630 --> 00:40:34,230
will be oscillating
with a single frequency

591
00:40:34,230 --> 00:40:39,500
omega, some phase phi,
some amplitude A1.

592
00:40:39,500 --> 00:40:41,820
This will be a solution
to these equations.

593
00:40:44,370 --> 00:40:47,250
If this is a solution
to those equations,

594
00:40:47,250 --> 00:40:51,280
the other mass must
also be oscillating

595
00:40:51,280 --> 00:40:55,165
in the same normal mode,
meaning with the same frequency

596
00:40:55,165 --> 00:40:58,080
and same phase.

597
00:40:58,080 --> 00:41:00,260
It'll have some
arbitrary amplitude.

598
00:41:02,860 --> 00:41:05,820
So I don't know what A1 is,
and I don't know what omega is.

599
00:41:05,820 --> 00:41:07,030
I don't know what phi is.

600
00:41:07,030 --> 00:41:12,600
But I know that the
solutions to these equations

601
00:41:12,600 --> 00:41:16,980
must be of this form.

602
00:41:16,980 --> 00:41:18,140
OK?

603
00:41:18,140 --> 00:41:29,780
So let me now try to find
these various constants.

604
00:41:29,780 --> 00:41:37,274
Well, if this and that
satisfies these equations--

605
00:41:37,274 --> 00:41:39,190
and it has to because
that's what it's saying,

606
00:41:39,190 --> 00:41:41,470
these are the solutions
of those equations--

607
00:41:41,470 --> 00:41:49,440
then I can take these, x1 and
x2, plug it into this equation.

608
00:41:49,440 --> 00:41:51,800
In other words, calculate
the second derivative

609
00:41:51,800 --> 00:41:54,780
of x1, et cetera,
calculate second,

610
00:41:54,780 --> 00:41:58,750
and I'll end up
with two equations.

611
00:42:02,415 --> 00:42:02,915
OK?

612
00:42:06,640 --> 00:42:11,270
So I won't bother to go
in great detail here.

613
00:42:11,270 --> 00:42:17,560
But just to start off
with, x1 double dot,

614
00:42:17,560 --> 00:42:23,010
I have to differentiate
A1 cosine omega t twice.

615
00:42:23,010 --> 00:42:34,830
So I get minus omega squared A1
times cosine omega t plus phi.

616
00:42:34,830 --> 00:42:40,220
If I take the next term, I get
this, and the third term that.

617
00:42:40,220 --> 00:42:44,470
And in each case, if
you notice, since it'll

618
00:42:44,470 --> 00:42:47,730
be multiplied by the
same cosine function,

619
00:42:47,730 --> 00:42:51,210
I've just canceled in my head
the cosine function there.

620
00:42:51,210 --> 00:42:52,270
All right?

621
00:42:52,270 --> 00:42:53,540
Just saving time.

622
00:42:53,540 --> 00:42:58,360
Similarly, next equation,
I end up with this.

623
00:42:58,360 --> 00:43:04,190
So if my guessed functions,
and I'm returning to this,

624
00:43:04,190 --> 00:43:08,810
if these two satisfy
those equations,

625
00:43:08,810 --> 00:43:16,390
then here these algebraic
equations must be satisfied.

626
00:43:16,390 --> 00:43:18,125
But you'll notice
something interesting.

627
00:43:20,930 --> 00:43:24,010
If I take the first
of these equations,

628
00:43:24,010 --> 00:43:30,000
it boils down to A1 times
this quantity plus A2

629
00:43:30,000 --> 00:43:33,160
to [? then ?] this
quantity equal to 0.

630
00:43:33,160 --> 00:43:36,320
And the second equation
boils down to this.

631
00:43:39,580 --> 00:43:44,450
If this is true, then
this must be true.

632
00:43:44,450 --> 00:43:49,850
It's A1 divided by A2
has to be equal to that.

633
00:43:49,850 --> 00:43:54,940
If this is true,
then A1 divided by A2

634
00:43:54,940 --> 00:43:56,590
has got to be equal to this.

635
00:43:59,300 --> 00:44:02,960
That means that this
has to be equal to that,

636
00:44:02,960 --> 00:44:06,460
or else I have an inconsistency.

637
00:44:06,460 --> 00:44:13,660
So what I have found is
that, in general, my guess

638
00:44:13,660 --> 00:44:15,020
is not a good one.

639
00:44:15,020 --> 00:44:19,010
In general, these
equations would not

640
00:44:19,010 --> 00:44:24,580
satisfy my second-order
differential equations.

641
00:44:24,580 --> 00:44:30,660
There is only under very
special circumstances

642
00:44:30,660 --> 00:44:33,470
that they do
satisfy it, and that

643
00:44:33,470 --> 00:44:37,470
is if this is equal to that.

644
00:44:40,440 --> 00:44:42,824
In general, they
will not be equal.

645
00:44:46,460 --> 00:44:50,410
So under what conditions
will these be equal?

646
00:44:50,410 --> 00:44:51,850
Well, let me force them.

647
00:44:51,850 --> 00:44:55,760
Let me say this is
equal to that and see

648
00:44:55,760 --> 00:44:59,680
what it means for omega.

649
00:44:59,680 --> 00:45:03,890
I originally took omega
to be an unknown quantity.

650
00:45:03,890 --> 00:45:08,060
What I am now seeing,
that those functions

651
00:45:08,060 --> 00:45:13,430
would work only for
specific values of omega.

652
00:45:13,430 --> 00:45:18,050
So I'm going to solve
this equation for omega

653
00:45:18,050 --> 00:45:24,090
and see for what values of omega
do I get a consistent solution.

654
00:45:26,620 --> 00:45:29,820
And this is a hard
grind, unfortunately.

655
00:45:29,820 --> 00:45:34,880
If I take this,
multiply it out, I

656
00:45:34,880 --> 00:45:39,730
get a quadratic equation
in omega squared.

657
00:45:39,730 --> 00:45:43,200
If this quadratic
equation is satisfied,

658
00:45:43,200 --> 00:45:49,790
then all these are
self-consistent.

659
00:45:49,790 --> 00:45:50,290
All right?

660
00:45:50,290 --> 00:45:56,170
You know how to solve
a quadratic equation,

661
00:45:56,170 --> 00:46:05,430
and this is a quadratic
equation in omega squared.

662
00:46:05,430 --> 00:46:08,530
Omega square will have
to be equal to minus

663
00:46:08,530 --> 00:46:13,350
this plus or minus the
square root of this,

664
00:46:13,350 --> 00:46:16,840
4 times this times that,
divided by 2a, right?

665
00:46:16,840 --> 00:46:19,960
This is the standard
formula for the solution

666
00:46:19,960 --> 00:46:21,840
of a quadratic equation.

667
00:46:26,090 --> 00:46:28,280
And there's a plus or minus.

668
00:46:28,280 --> 00:46:32,970
If I calculate this out,
I get that omega squared

669
00:46:32,970 --> 00:46:36,470
has to be equal
to 2 plus or minus

670
00:46:36,470 --> 00:46:40,680
the square root of 2
times omega 0 squared.

671
00:46:40,680 --> 00:46:41,690
All right?

672
00:46:41,690 --> 00:46:49,200
Now, omega 0 squared, earlier
on, I defined to be g/l.

673
00:46:49,200 --> 00:46:53,830
So omega squared has to be this.

674
00:46:53,830 --> 00:46:57,030
So let's stop for
a second and think

675
00:46:57,030 --> 00:47:00,560
and review what we've done.

676
00:47:00,560 --> 00:47:06,370
We found that our
physical situation

677
00:47:06,370 --> 00:47:13,690
can be described by these two
coupled differential equations.

678
00:47:13,690 --> 00:47:20,666
We looked for solutions, which
are normal modes where both x1

679
00:47:20,666 --> 00:47:25,990
and x2 is oscillating with
same frequency and phase.

680
00:47:25,990 --> 00:47:33,700
And we found that it was
possible to find solution

681
00:47:33,700 --> 00:47:42,730
of this form to these equations
if and only if omega squared

682
00:47:42,730 --> 00:47:46,210
has one of two possible values.

683
00:47:46,210 --> 00:47:48,050
I've rewritten them here.

684
00:47:48,050 --> 00:47:53,020
One is 2 plus root 2
times g/l, and the other's

685
00:47:53,020 --> 00:47:54,890
2 minus root 2 g/l.

686
00:47:57,420 --> 00:48:04,900
With these values, these two
equations satisfies that.

687
00:48:04,900 --> 00:48:10,850
So what we found is
the two normal modes.

688
00:48:10,850 --> 00:48:17,420
Since this system consists
of the coupled oscillators,

689
00:48:17,420 --> 00:48:21,290
in other words, two oscillators
coupled with each other,

690
00:48:21,290 --> 00:48:23,960
we know there are
two normal modes.

691
00:48:23,960 --> 00:48:30,180
So these are the normal mode
frequencies in this situation.

692
00:48:30,180 --> 00:48:33,440
And by the way, I'm
delighted to see

693
00:48:33,440 --> 00:48:38,430
that, if you remember Professor
Walter Lewin's lectures,

694
00:48:38,430 --> 00:48:41,830
he actually quoted
these numbers.

695
00:48:41,830 --> 00:48:42,580
So he was right.

696
00:48:42,580 --> 00:48:45,270
He did not make a mistake,
as we've just seen.

697
00:48:45,270 --> 00:48:46,280
OK?

698
00:48:46,280 --> 00:48:48,960
These are the two
normal mode frequencies.

699
00:48:48,960 --> 00:48:51,830
Now, how about if
we want to predict

700
00:48:51,830 --> 00:48:54,250
everything, the
amplitude, et cetera?

701
00:48:57,330 --> 00:49:00,380
We've got to be careful here
with the logic we've applied.

702
00:49:03,500 --> 00:49:10,780
For any one of these normal
frequencies, say this one,

703
00:49:10,780 --> 00:49:23,390
earlier on we found that A1 to
A2 is given by this equation

704
00:49:23,390 --> 00:49:25,220
or by this equation.

705
00:49:25,220 --> 00:49:27,820
But for the given
values of omega,

706
00:49:27,820 --> 00:49:30,940
we found these are
now equivalent.

707
00:49:30,940 --> 00:49:37,890
And so if you know what
omega is, say omega A,

708
00:49:37,890 --> 00:49:43,400
one of the normal
modes, this we know.

709
00:49:43,400 --> 00:49:45,930
It's g/l.

710
00:49:45,930 --> 00:49:47,550
And this is known.

711
00:49:47,550 --> 00:49:56,170
So A1/A2, once we fix
omega A, is fixed.

712
00:49:56,170 --> 00:50:01,370
So these are not two
independent amplitudes.

713
00:50:01,370 --> 00:50:07,620
So if I go back to here when
we said let's guess a solution,

714
00:50:07,620 --> 00:50:10,150
and this was an arbitrary
number and this was an arbitrary

715
00:50:10,150 --> 00:50:15,550
number, now we see
that in a normal mode

716
00:50:15,550 --> 00:50:18,720
the ratio between them is fixed.

717
00:50:18,720 --> 00:50:22,840
It depends on the
normal mode frequency.

718
00:50:22,840 --> 00:50:25,340
But the [? overall ?]
normalization

719
00:50:25,340 --> 00:50:26,530
is still arbitrary.

720
00:50:26,530 --> 00:50:29,230
I could make this 10 times
this and 10 times that.

721
00:50:29,230 --> 00:50:31,460
[? It  would still ?] work.

722
00:50:31,460 --> 00:50:39,670
So back to here, we found one of
the normal mode's frequencies.

723
00:50:39,670 --> 00:50:43,630
Using the equation
above, it determines

724
00:50:43,630 --> 00:50:48,560
the value of A1 to A2.

725
00:50:48,560 --> 00:50:52,400
Taking the other
normal mode frequency

726
00:50:52,400 --> 00:50:57,000
determines the
ratio of those two

727
00:50:57,000 --> 00:51:00,380
but not the overall amplitude.

728
00:51:00,380 --> 00:51:04,780
Not to confuse the two, I
will call this B1 and B2.

729
00:51:04,780 --> 00:51:07,180
This is the amplitude
of the first mass,

730
00:51:07,180 --> 00:51:08,870
and this is of the other one.

731
00:51:08,870 --> 00:51:14,840
The ratio is fixed, determined
by the value of omega B.

732
00:51:14,840 --> 00:51:18,570
But the overall
amplitude is not.

733
00:51:18,570 --> 00:51:24,020
So now we have ended up
in the same situation

734
00:51:24,020 --> 00:51:29,110
we were in our three masses,
where, if you remember,

735
00:51:29,110 --> 00:51:33,020
I started by guessing
the normal modes

736
00:51:33,020 --> 00:51:37,690
and guessing the
relative amplitudes.

737
00:51:37,690 --> 00:51:42,490
And with that information alone
and the initial conditions,

738
00:51:42,490 --> 00:51:44,500
I could predict
what will happen.

739
00:51:44,500 --> 00:51:46,650
I could now repeat that here.

740
00:51:46,650 --> 00:51:51,510
But to save time, I think
you can do that for yourself.

741
00:51:51,510 --> 00:51:55,970
For each, you can write
now a single equation

742
00:51:55,970 --> 00:52:03,830
saying what a given mass will do
as the sum of two normal modes,

743
00:52:03,830 --> 00:52:11,280
where you know the frequency
of them and the amplitudes.

744
00:52:11,280 --> 00:52:14,040
And you have to remember
that for the two masses,

745
00:52:14,040 --> 00:52:16,570
the ratio of the amplitudes
in each normal mode

746
00:52:16,570 --> 00:52:20,330
have to be fixed given
by what we've done here.

747
00:52:20,330 --> 00:52:24,810
And therefore, you can
get the single equation

748
00:52:24,810 --> 00:52:28,530
for each mass, one for one
mass, one for the other.

749
00:52:28,530 --> 00:52:31,690
Which will tell you what
they will do in the future

750
00:52:31,690 --> 00:52:36,500
if you know what they're
doing initially, for example,

751
00:52:36,500 --> 00:52:40,700
the initial conditions,
that you can solve

752
00:52:40,700 --> 00:52:45,710
to get the final predicted
position of each mass.

753
00:52:45,710 --> 00:52:47,350
So that's as much
as I was hoping

754
00:52:47,350 --> 00:52:51,700
to do today on
coupled oscillators.

755
00:52:51,700 --> 00:52:56,010
And we'll continue
next time on situations

756
00:52:56,010 --> 00:52:58,920
with many, many more
degrees of freedom.

757
00:52:58,920 --> 00:53:00,770
Thank you.