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How a Student's Question Saved This NYC Skyscraper
How a Student's Question Saved This NYC Skyscraper
Veritasium
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33:39 · Apr 26, 2025
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This
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Citicorp
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0:00
This is Citicorp Center.
0:01
In the summer of 1978,
0:03
it had been open for less than a year when its structural engineer,
0:06
Bill LeMessurier, made a terrifying discovery.
0:09
His cutting edge skyscraper, an engineering marvel had a fatal flaw.
0:14
Winds of just 110 kilometers per hour could cause it to collapse in the
0:19
middle of Manhattan,
0:21
potentially killing thousands.
0:23
Over 200,000 people lived and worked in the surrounding area,
0:27
and hurricane season was only weeks away.
0:30
Here I am, the only man in the world who knew this.
0:34
This thing is in real trouble.
0:37
LeMessurier faced a stark choice.
0:39
He could stay silent and hope for the best,
0:42
or he could try to fix it and risk professional ruin and mass panic.
0:47
But Citicorp Center had a 100% probability of total collapse by the end of
0:52
the century.
0:53
How could he save New York from a near certain disaster?
0:56
And how was this allowed in the first place?
0:59
Veritasium producer and engineer, Henry van Dyck, traveled to New York to investigate further.
1:05
So in the 1960s, the financial giant, Citicorp,
1:08
was trying to build a new headquarters in Manhattan.
1:10
So just down the street from their original headquarters was this entire city block,
1:15
which was up for sale.
1:16
Well, everything except for this church, Saint Peter's.
1:19
So Citicorp came to the pastor, Ralph Peterson, and asked,
1:22
"What's it gonna take for you guys to leave?"
1:24
And he came back and said, "We're not leaving.
1:26
Anything that Citicorp builds has to involve the church as part of it."
1:30
What the pastor wanted was for the church to have its own separate identity.
1:34
So eventually they agreed on two things.
1:36
One was to replace this old crumbling gothic church with a brand new one,
1:40
which you see in front of you.
1:41
And the second thing was
1:43
that the church had to be physically distinct from the new tower.
1:46
In other words, it had to be completely independent.
1:49
And again, most importantly,
1:51
two thirds of the space above the church had to be free and clear,
1:58
had to be open.
2:00
Citicorp then hired architect Hugh Stubbins to design the tower
2:03
and the church and Bill LeMessurier
2:05
as the structural engineer,
2:08
Stubbins explained the constraints they faced.
2:10
The church needed to be in the exact same spot
2:12
and they needed to build the tower around it.
2:15
If they were to maximize the floor area,
2:16
they would have to notch out one corner of the tower for the church.
2:20
LeMessurier agreed that could work, but why not notch two, three,
2:24
or even all four corners, essentially constructing the skyscraper on stilts.
2:31
So it's probably the first time in history
2:33
that an engineer has come to an architect
2:34
and said,
2:35
"Let's make our job harder for us."
2:38
The stilts would serve two main purposes.
2:40
First, they would need to support at least half of the building's gravity load.
2:44
The rest would be held up by a larger central column.
2:48
Second, they would need to withstand the load due to high winds.
2:52
But unlike an ordinary structure, the stilts wouldn't be at the corners.
2:56
They would be at the center of each face.
2:59
Imagine a chair, and instead of the columns
3:03
or the supports on each corner of the chair,
3:07
it's at the midpoint of each side.
3:10
Obviously, it's not an ideal situation.
3:13
It doesn't seem very stable.
3:14
Exactly.
3:15
So it created an engineering problem.
3:19
As LeMessurier considered the problem, he suddenly had a flash of inspiration.
3:24
He grabbed a napkin and sketched out an idea.
3:26
He drew six layers of diagonal braces up each face of the tower.
3:31
These chevrons would transfer the forces to the middle of each face
3:35
and down to the stilts.
3:38
Now we have to see the gravity loads, right?
3:40
But now here's the trick.
3:41
The gravity loads are coming down the column.
3:44
When they get to the brace,
3:45
they need to find their way into the brace.
3:49
Okay.
3:50
So what you do is you take out that column right there.
3:52
There is no way that load can jump over and go to that column.
3:56
And now they're coming down into the braces.
3:58
They get down to the bottom here, and now they continue to go down.
4:02
You take that column out, it has nowhere to go except into the brace.
4:06
By removing the columns at the top and middle of each chevron,
4:10
every tier acted as a separate unit.
4:12
They were only connected to the braces and through the central core.
4:16
So every eight stories,
4:18
half of the gravity load would be forced through the chevrons to the midface
4:21
columns,
4:22
leading down to the stilts.
4:24
Can you tell me how big of a new idea was this?
4:28
Yeah, well, this particular system was entirely unique,
4:32
driven by the placement of the columns, driven by the conditions of the building.
4:37
As satisfied the chevrons could transfer the gravity load,
4:40
LeMessurier turned his attention to the second problem, the wind.
4:45
When wind hits the left side of a normal building with corner columns,
4:48
the entire frame deforms like this.
4:51
So to reduce this deformation, we could strengthen these joints,
4:55
but there's a better way
4:57
because beams and columns are much stronger in compression
5:00
or tension than they are with bending loads.
5:02
So if we add diagonal bracing, they can carry this horizontal load.
5:07
The beams sort of act like springs, and when they're compressed,
5:10
they push on the joints.
5:11
When they're stretched, they pull inwards.
5:14
With braces like these, the wind load compresses this diagonal and stretches this one.
5:19
The left column pulls down in tension
5:21
and the right column pushes up in compression.
5:24
Where the braces meet, they both push the bottom beam to the right.
5:28
This stretches the left side and compresses the right one.
5:31
But this floor is the top of the next chevron,
5:34
so this lower section is carrying the force from the layer above it
5:38
and the normal wind load from the side.
5:40
And this keeps happening at every chevron
5:42
so the wind load builds up
5:44
as you go down the building.
5:46
But Citicorp can't have corner columns like this because of the gravity load.
5:49
So in the wind,
5:50
this entire triangle wants to rotate like this and to prevent that from happening,
5:55
this chevron pulls down going into tension
5:58
and the far chevron pushes up in compression.
6:01
The top and bottom beams are again forced into compression and tension.
6:04
The wind load ends up wrapping around the entire building.
6:07
So every chevron works to transfer the wind load to the section below.
6:13
When we think about skyscrapers, like how big of a deal is wind?
6:15
If we made a skyscraper here, you know, out of all these different things,
6:19
you push with your phone, you get a certain amount of force,
6:21
but then you push on my phone
6:23
as well with a certain amount of force,
6:24
but your phone is also pushing on my phone.
6:26
And so that's the shear in the building, what we call the building shear.
6:29
It increases as you go down the building.
6:32
You know, at the 10th floor,
6:33
you may have a smaller force than at the 60th floor,
6:36
but the total force of the 10th floor is like carrying everything above it.
6:40
So it's much bigger than what's going on on the 60th floor.
6:44
So these chevrons were key to LeMessurier's design, but the braces were massive,
6:49
almost 40 meters long end to end.
6:51
So even if you could fabricate a steel brace that long,
6:55
there would be no way to get it through Manhattan.
6:57
So instead it was sent in pieces to be welded together on site.
7:03
The chevron bracing solved the wind and gravity load issues,
7:07
but it also created a different problem.
7:11
Because of the chevron bracing system,
7:14
they were able to save a lot of money and weight.
7:18
It was a lighter construct than most other buildings in New York,
7:23
I think it was 22 pounds a square foot, which is very light.
7:27
Unfortunately, that made the building swayable, it could move in the wind.
7:32
That wasn't necessarily a structural problem, it was just,
7:36
it could have been uncomfortable for the patrons.
7:41
The way they could solve this was just let's add more structural steel
7:43
and make it a lot stiffer.
7:45
But the solution that LeMessurier came up with was far more elegant.
7:50
He adopted something that had been regularly used in bridges, power lines and ships,
7:54
but never before in a building: a tuned mass damper or TMD.
8:00
So we're here at Stark Laboratories, and I'm not with Iron Man,
8:03
but instead the Columbia Space Initiative,
8:05
the student team here on campus who has helped us build this incredible tuned
8:09
mass damper kind of system.
8:12
We'll use this cart to represent a building.
8:15
By pulling it back and releasing it, we can excite its resonant frequency,
8:19
And then we'll put on a little pendulum, aluminum rod,
8:23
and a mass at the bottom.
8:26
As the building sways, it transfers some of its kinetic energy to the pendulum,
8:30
which starts to swing.
8:32
Then some of its energy is dissipated through friction at the hinge.
8:36
The pendulum and the building oscillate out of phase from each other.
8:39
So every time the building pulls the pendulum in a different direction,
8:43
more energy is lost, significantly damping the sway of the tower.
8:48
But this system needs to be carefully tuned
8:50
so it has the same frequency
8:52
as the building itself
8:53
and the right amount of friction.
8:57
So first, the mass needs to be at least one to 5% of the
9:00
building's weight to be effective.
9:02
And we tune the frequency of the TMD by adjusting the length of the
9:06
pendulum.
9:06
I assume engineers do math around this thing,
9:08
but we're just doing it by feel. (both laugh) Second,
9:12
by loosening or tightening the bolt, we can tune the amount of damping.
9:16
We need to dissipate more energy from friction at the hinge to stop the
9:20
swaying faster.
9:21
We just tighten the top bolt, make the whole system a little bit,
9:24
you know, add a little bit more resistance,
9:26
and we'll see if we can dampen it now further.
9:32
Woohoo.
9:33
Much different.
9:33
Yeah.
9:33
Yeah, that looked great.
9:35
That was so quick.
9:37
Yeah, that was.
9:37
It is cool when an experiment works.
9:40
Does not always happen.
9:42
There are many different types of TMDs, like pendulums, liquid columns,
9:46
and a large mass on springs.
9:49
LeMessurier used this last one in Citicorp.
9:52
What you see is a mass of concrete,
9:54
which is 29 feet square and about eight feet thick and weighs 400 tons.
10:01
It was installed on the top floor
10:03
and it's affectionately known
10:05
as that great block of cheese.
10:07
As Citicorp sways to one side,
10:10
the block starts to move in the same direction.
10:12
Some energy is dissipated through separate viscous dampers.
10:16
Citicorp's oscillations are damped through those energy losses
10:20
as the block oscillates out of phase to the building's motion.
10:24
LeMessurier expected the damper to reduce the amplitude of swaying by roughly 50%,
10:29
and he saved around $4 million by not needing an additional 2,800 tons of
10:34
structural steel.
10:36
With both the chevron bracing to channel forces to the stilts
10:39
and the tuned mass damper to reduce sway,
10:42
LeMessurier was convinced the building was structurally sound.
10:46
On Citicorp Center's opening day in 1977,
10:48
it was the 11th tallest building in the world.
10:52
It was described by the press as an acrobatic act of architecture.
10:56
Later, the American Institute of Architects even gave it an honor award,
11:00
calling it a tour de force as a stylish silhouette in the skyline, and,
11:05
for the pedestrian, a hovering cantilevered hulk.
11:08
So then, it's going swimmingly for years, right?
11:13
Well, it's going swimmingly for about a year.
11:17
The first hint of trouble came in May, 1978.
11:21
LeMessurier was talking with another client about welding similar chevron braces.
11:26
The architect and the steel fabricator said, "Tell me,
11:29
how did those welded braces work out?"
11:32
Seems like overkill, they thought.
11:34
And LeMessurier says, "Yeah, they were fine.
11:36
Let me call my guys in New York and I'll check."
11:39
So he put the call into his office in New York and they say,
11:43
"Oh, Bill, didn't you know?
11:45
We bolted those connections."
11:47
The contractor had suggested saving a quarter of a million dollars by using bolts
11:52
to attach the braces instead of welds.
11:54
And LeMessurier's firm had agreed.
11:57
There is nothing that says a bolt is inherently worse
12:00
or better than a weld.
12:01
You use them in different circumstances for different reasons,
12:03
but it's a little surprising to find out,
12:06
I thought the connections in this tour de force, one of a kind skyscraper,
12:11
you know, that's on the cutting edge of structural engineering, was connected one way,
12:15
but apparently it's connected another way.
12:17
But if the braces are going like this, where are they gonna go?
12:21
You know, you only need the weld when the braces are going like this.
12:25
Since the gravity load was always compressing the braces,
12:28
some of the chevrons only went into tension under very high winds.
12:32
And even then, it wasn't a lot of tension.
12:35
LeMessurier trusted that his team did the right calculations, and the substitution was fine,
12:39
logical, even. (phone ringing) But around a month later,
12:44
LeMessurier got a phone call from a student who wanted to ask some questions
12:47
about the Citicorp Center.
12:48
And his teacher said to him,
12:50
"That engineer didn't know what he's doing
12:51
and nobody should put the columns in the middle.
12:54
They should put 'em in the corners.
12:56
That's silly."
12:57
And I told the student, I said, "Well, you're a professor's full of it.
13:01
He doesn't understand the problem we had to solve."
13:04
LeMessurier went through the calculations with the student to reassure him the stilts were
13:08
in the right place.
13:09
But the interesting thing is, is in that moment,
13:12
he's thinking about wind loads from all directions.
13:17
You know, late spring, early summer of 1978,
13:20
Bill LeMessurier is working on the back of a Hilton Hotel that, in plan,
13:23
forms a triangle, not a rectangle.
13:27
Now you got a triangle.
13:28
What's your orthogonal direction?
13:31
You just have to give up and say,
13:33
"We're gonna analyze it from every direction."
13:35
That's going on the moment that Bill LeMessurier gets this phone call.
13:40
Then I called him back
13:41
and pointed it out to him
13:42
that there's some peculiar things about this building.
13:44
The worst loading case was not the diagonal,
13:47
but it was the ordinary wind that everybody thinks about.
13:49
The wind pushes straight on the building.
13:51
That was the critical case.
13:52
He said, you know what,
13:53
I've been getting all these calls from all these people.
13:56
I'm gonna sit down and explain this thing.
13:59
He decided to double check what happens to the building
14:01
if wind is hitting a corner of the building,
14:04
not straight on one of the faces.
14:06
These are also known as quartering winds.
14:09
So he split the wind into its perpendicular components.
14:12
So the west side
14:12
and north side are hit by the force divided by the square root of
14:16
two.
14:17
He computed the forces for each, as we did before,
14:20
and summed up the result, but then he noticed something strange.
14:24
Then now we look at the diagonals, the stresses in half of them vanish,
14:30
and in the other half, double.
14:32
Since the force on each side was F over the square root of two,
14:36
these beams get double that.
14:38
Compared to LeMessurier calculations for the perpendicular wind load,
14:41
the forces here were 40% higher.
14:45
So 1.4 by itself is not enough to wreck havoc.
14:50
Okay?
14:51
It may be, but it may not be.
14:53
Okay.
14:53
So then the question is, well, what happens?
14:56
This increase in forces wouldn't have mattered in the original design since the chevrons
15:01
were fully welded together.
15:03
But that wasn't the case anymore.
15:05
LeMessurier remembered his earlier phone call.
15:08
The welds holding the chevrons together were swapped for bolts.
15:12
How did his team calculate the number of bolts per joint?
15:16
Did they consider quartering winds?
15:18
It would be a miracle if they ever thought that through,
15:22
to think about the diagonal wind.
15:23
It just wasn't in the nature of anybody.
15:26
So I had a bit of a worry.
15:29
I didn't panic right away,
15:31
but I decided to go down to New York to my office.
15:34
LeMessurier requested the building diagrams and poured over all of the connections.
15:38
He looked at how his firm calculated the number of bolts.
15:42
There was no question, they had taken straight on wind, not the diagonal wind.
15:46
Although wind speed is highest at the top of the tower,
15:48
the wind shear builds up as you go lower.
15:51
Looking at this brace around halfway down the tower,
15:54
the perpendicular wind load is 454 tons.
15:58
Because of the skipped columns, all of these braces carry the same gravity load,
16:03
just 340 tons, from the eight stories above.
16:07
The gravity load builds up in the center column, not in the braces,
16:11
which means there are 114 tons of tension in this brace.
16:16
If each bolt can withstand around 28 tons, that would require four bolts.
16:21
The original calculations said just four bolts were enough.
16:25
So that was all they used.
16:28
But when he added quartering winds,
16:29
LeMessurier's calculations showed there were some braces that needed far more bolts.
16:34
At this particular part of the building,
16:37
which I can show you on my calculations is right about here,
16:42
and Bill LeMessurier talked about the 30th floor,
16:44
and I always wondered why was it the 30th floor?
16:47
The 40% increase from quartering winds means
16:49
that this brace has a wind load of 635 tons.
16:53
The tension in the brace is now 295 tons, over double the original calculation.
17:00
So these braces actually need around 10 bolts, not four.
17:04
But then it turned out they had done something else.
17:07
LeMessurier's firm considered the braces to be minor structural elements.
17:11
They didn't use the right factor of safety to calculate the number of bolts.
17:14
They should have overestimated the tension in the brace by underestimating the gravity load.
17:19
With only 75% of the gravity load,
17:22
the tension in the beam is now 380 tons.
17:25
So they really needed 14 bolts, but they used only four.
17:30
I thought this thing is in real trouble.
17:34
Imagine, you know, what Bill LeMessurier was thinking at that moment.
17:37
You see that number and you're like, "Oh my God, this is serious.
17:42
It's really serious."
17:43
LeMessurier was starting to panic.
17:46
He didn't wanna rush to conclusions,
17:48
so he flew to Canada to check his calculations with Alan Davenport at the
17:51
Boundary Layer Wind Tunnel.
17:53
After running more tests, they found that it was even worse than LeMessurier thought.
17:59
The estimated 40% increase in stress was technically correct,
18:03
but LeMessurier made his calculations assuming the building wasn't moving.
18:06
This is called static conditions.
18:08
But the wind tunnel gave LeMessurier a dynamic analysis,
18:12
how the forces change when the building is moving around.
18:15
To LeMessurier's horror, the wind tunnel analysis showed
18:18
that the stresses could increase up to 60% more than originally anticipated.
18:25
LeMessurier squirreled himself away in Maine
18:27
and worked through the data from the wind tunnel again,
18:29
joint by joint on every floor.
18:31
The weakest joints were at the building's 30th floor.
18:34
If those failed, the entire building would fall.
18:39
But what were the chances
18:40
that a storm strong enough to topple the building would pass through New York
18:44
City?
18:45
LeMessurier dug through the historical weather reports.
18:48
On average, a storm strong enough to tear the building apart occurred every 67
18:53
years.
18:54
But only if the tuned mass damper was working.
18:57
If a storm knocked out power,
18:59
then even 110 kilometer per hour winds blowing for just five minutes would collapse
19:04
the building.
19:06
In any given year,
19:07
the chance of a storm that size happening was one in 16.
19:11
Just one year before Citicorp was completed,
19:14
wind gusts of 110 kilometers per hour roared through New York City
19:18
as Hurricane Belle passed through.
19:22
What do you think this moment was like for LeMessurier,
19:24
when he ran these calculations, like- Oh, it must have been devastating.
19:28
I mean, it just must have been, I can't imagine the fear.
19:32
I can't imagine the feelings.
19:33
I mean, like, it just must have been truly a moment he never thought
19:40
he would live through.
19:41
That storm was gonna fall down in my lifetime.
19:45
And since this was July, it could fall down the summer of 1978.
19:51
LeMessurier needed to decide and decide fast.
19:54
But revealing this mistake could mean lawsuits, bankruptcy and professional ruin.
19:59
He could stay silent, only Davenport knew and he wouldn't reveal anything,
20:03
or he could entirely disappear.
20:05
In a later interview he admitted, "I did say to myself,
20:08
I could drive down the Maine Turnpike at a hundred miles an hour
20:11
and deliberately drive into a bridge abutment.
20:14
That would be the end and all of this would go away.
20:17
I thought about that."
20:20
But there was a 1 in 16 chance of collapse that very fall.
20:25
With thousands of lives at risk,
20:27
there was never any other choice but to act.
20:31
After speaking to a few lawyers and other engineering experts, LeMessurier told the architect,
20:36
Stubbins, and together they informed Citicorp's chairman, Walter Wriston.
20:40
Within hours of that meeting, LeMessurier acquired emergency generators for the tuned mass damper.
20:45
The TMD was originally designed to stabilize any swaying for comfort,
20:49
but now it became the crutch that the tower leaned on.
20:53
LeMessurier pinned all his hopes on it.
20:55
He called the confidential repair plan Project Pandora, but that sounded ominous,
21:01
so he came up with the Special Engineering Review of Events Nobody Envisioned,
21:07
or Project Serene for short.
21:10
Each night, welders would enter the building after everyone left,
21:13
rip off the sheet rock around the chevron beams,
21:15
and then weld two five-centimeter thick,
21:18
two-meter long steel plates on each joint.
21:20
Like Band-Aids, literally Band-Aids, on both sides of these joints.
21:25
After, they'd replaced the wall
21:26
and clean everything up before the office workers came back the next morning,
21:31
They needed to weld over 200 joints and LeMessurier ranked them by importance,
21:36
starting with the ones on the 30th floor.
21:38
But the repairs wouldn't be completed before hurricane season.
21:41
So Citicorp worked with the Red Cross to develop a 10 block evacuation plan.
21:46
Like, how many people were at risk in the building and if it fell,
21:49
would it affect other buildings?
21:50
Like, were there chances of it leading to something more disastrous?
21:53
Absolutely, this would have toppled and it would've toppled into another building,
22:00
which would've toppled into another building, which would've continued a horrific process.
22:06
So it was untold what the ultimate effects could have been.
22:11
I mean, like, just the evacuation plans were how many people?
22:14
Thousands, the building itself housed thousands
22:17
and then the residents
22:18
and the businesses surrounding the building,
22:21
it was into the thousands.
22:23
Despite the risk, they decided not to tell the public
22:26
or even the office workers in the building.
22:29
No one wanted a mass panic.
22:31
Instead, they fitted strain gauges on important structural members.
22:35
The gauges monitored the skyscrapers every bend
22:38
and twist from a comm center eight blocks away.
22:41
At least that would give them a little bit of warning.
22:44
But this plan required new telephone lines,
22:46
and the phone company wouldn't get around to doing this for months.
22:50
So Citicorp's chairman immediately called AT&T's president
22:53
and the lines were installed the next morning.
22:56
Now you might not be able to install emergency telephone lines at a whim,
22:59
but you can still stay connected no matter what. (phone ringing) It's probably not
23:06
that important.
23:08
Henry, can you hear me?
23:09
Hello!
23:10
Team Veritasium travels all over the globe for our videos We traveled here to
23:13
New York to visit the Citicorp Center,
23:15
and there's one really annoying problem.
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while we're on site.
23:20
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or search around for public Wi-Fi that might not be the most secure.
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That's not something we wanna be dealing with while making a video.
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So Saily makes it incredibly easy and affordable to stay connected while abroad.
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24:15
And now back to Project Serene. (phone ringing) (sighs) I mean,
24:21
should probably take this. (phone beeps)
24:23
But even though LeMessurier tried to keep Project Serene under wraps,
24:27
people started asking questions.
24:30
On August 8th, Citicorp released a statement about the repairs.
24:34
Now, we had to cook up a line of bull, I'll tell you.
24:37
And white lies at this point are entirely moral. (class laughs) You don't wanna
24:42
spread terror in the community to people
24:45
that don't need to be terrorized.
24:47
We were terrorized, no question about that.
24:49
Several newspapers reported on it, but they didn't have the details.
24:53
Then LeMessurier got a message.
24:55
The New York Times was trying to reach him.
24:58
If he didn't respond, they would know something was up.
25:02
So I mixed a martini for myself and it's one minute past six.
25:07
I dialed The New York Times.
25:09
I pick it up the phone, they pick up the phone,
25:12
it's a tape recorder saying,
25:14
The New York Times has gone on strike
25:16
as of six o'clock. (class laughs) Not only did The New York Times go
25:21
on strike,
25:22
but all the newspapers in New York went on strike until October.
25:27
So we had a press blackout
25:29
and that was the greatest thing
25:30
that ever happened. (class laughs) The press was off their back
25:35
and the weather was beautiful.
25:36
The repair work continued smoothly.
25:39
But late August brought the news everyone had been dreading.
25:43
Hurricane Ella starts brewing in the Caribbean.
25:49
And this is the one storm that they're nervous about.
25:53
The repairs were halfway done by now.
25:56
I think it was a one in 200 year storm that it could withstand,
26:00
but LeMessurier wasn't taking chances 'cause he didn't know the intensity of the storm.
26:05
And this was a strong storm.
26:07
So there was, there was a chance.
26:08
There was absolutely a chance and they had to prepare for that chance.
26:14
By Friday, September 1st, Ella was making her way toward New York,
26:18
with winds reaching 200 kilometers per hour.
26:21
City officials braced to start the evacuation.
26:24
Police would go door to door to get everyone out within a 10 block
26:26
radius.
26:29
For 24 tense hours, Ella stalled around North Carolina.
26:34
Like LeMessurier said, we were sweating blood.
26:38
But sometime in the night,
26:39
Hurricane Ella veered off into the sea at the last minute.
26:42
It intensified and hit Canada with peak winds of 225 kilometers per hour.
26:49
But Citicorp was safe.
26:53
LeMessurier described that next morning in New York
26:56
as the most beautiful day
26:57
that the world's ever seen.
27:00
They completed the repairs in October, just six weeks after LeMessurier told Citicorp.
27:05
Now the building, according to LeMessurier, can withstand a one in 1000 storm.
27:11
The repairs cost between $4 and $5 million,
27:14
but LeMessurier argued that Citicorp approved an earlier building design
27:17
that cost $5 to $6 million more,
27:20
so they were willing to spend that much on the skyscraper anyway.
27:25
And for almost two decades, the secret was confined to a small inner circle.
27:30
But in 1995, "The New Yorker" finally brought Project Serene into the light.
27:35
Far from being vilified,
27:37
LeMessurier was praised for owning up to his mistake
27:40
and fixing the issue
27:41
as soon as possible.
27:42
After the article, New York updated the building code to require quartering wind calculations.
27:48
And since that first damper in Citicorp,
27:50
TMDs have spread across the globe. allowing architects to push skyscrapers taller and slimmer.
27:56
It's in the first tall building in the world ever built with mechanical help
28:00
to make the structure work.
28:02
That's remarkable.
28:03
Incidentally, that has been now copied a hundred times in Japan, this is ubiquitous,
28:07
and when I go to Japan,
28:08
I'm treated like a tin god 'cause I'm the father of the tuned mass
28:11
damper.
28:12
I said, "Really?"
28:13
Of the 20 tallest buildings in the world, six include the tuned mass damper,
28:18
and they're especially critical in typhoon or earthquake-prone regions.
28:22
For example, Taipei 101 has a massive 660 ton pendulum that stabilizes the building.
28:29
It can withstand up to 200 kilometer per hour winds
28:32
and earthquakes with magnitudes over 6.8.
28:35
But the legacy of this building is still steeped in controversy.
28:39
First, who was the mysterious student that started it all?
28:43
I think it was spring of 1978.
28:47
There's a student at Princeton, an undergraduate student by the name of Diane Hartley,
28:52
and she's studying structural engineering.
28:56
It was time for her to consider a senior thesis,
28:59
and then they decided
29:00
that a study of the new Citicorp Tower would be wonderful.
29:05
It's a remarkable thesis.
29:06
It contains a lot of the original engineering calculations by the engineers.
29:10
She's looking through the documentation, where did they consider quartering winds?
29:17
And she's not seeing it "I must be wrong," she says.
29:20
She's just an undergraduate student and you guys are award-winning structural engineers.
29:26
The engineer explains to Diane Hartley,
29:29
quartering winds are not a factor in this building.
29:33
So she's satisfied.
29:34
She graduates, that's it.
29:36
Doesn't think about it again.
29:39
But a year after "The New Yorker" article,
29:41
the BBC released a documentary on the crisis.
29:43
And so she, she was holding her baby and she turned on the television,
29:49
and lo and behold, she heard them reference a conversation with a student,
29:56
an engineering student from New Jersey reaching out to LeMessurier.
30:00
And she said, "I almost dropped my baby."
30:03
And then so she just assumed for years afterwards,
30:05
she assumed that it wasn't me because I didn't speak to LeMessurier.
30:10
But then in 2003,
30:11
her thesis advisor told Diane
30:13
that he checked all the other New Jersey engineering
30:16
and architecture programs,
30:17
and no one else was working on a project about Citicorp in 1978.
30:22
She was the only one.
30:24
She never spoke to LeMessurier personally.
30:26
She never claimed to speak to LeMessurier personally.
30:28
The assumption was that either LeMessurier was mistaken
30:33
and that it was Diane Hartley who made the call,
30:36
it was a female,
30:37
or more likely that LeMessurier was basically tipped off by his New York engineers.
30:43
Then, in 2011, a man named Lee DeCarolis came forward.
30:48
And the phone call, as we understand it,
30:50
came from a student at the New Jersey Institute of Technology.
30:53
His name is Lee DeCarolis.
30:54
He's not asking for money, he's not asking for fame or glory.
30:58
He's just saying, "This is interesting.
31:00
And I'm the guy who made this call."
31:03
And he said, "Yeah, I had a conversation with Bill LeMessurier."
31:05
And he pretty much lined up with what LeMessurier himself said.
31:10
Sadly, LeMessurier passed away in 2007 before he could confirm the student's identity.
31:16
Believe it or not, 40 years later, there's still, I learned,
31:20
a lot of raw feeling still on this.
31:23
People aren't anxious to talk about this, especially people that were involved in it,
31:27
even people that weren't involved in it but were tangentially involved in it.
31:33
We reached out to a LeMessurier Associates
31:34
and they refused to respond to our request.
31:36
You think that the namesake for their company stood up
31:37
and did the right thing,
31:38
but I don't think they wanna be associated with mistakes.
31:39
Their project description for Citicorp doesn't even mention the repairs.
31:39
The building was sold to Boston Properties in 2001, who renamed it 601 Lexington.
31:39
They also didn't respond to our request for comment
31:39
and refused to let us film inside the building.
31:39
Further questions arose in 2021,
31:39
with a new study from the National Institute of Standards and Technology.
31:39
They wanted to see
31:39
if quartering winds were more demanding for a building like Citicorp,
31:39
Although they did conclude that the pressure from perpendicular winds was greater,
31:39
their analysis didn't include any internal structure specific to Citicorp.
31:39
As for LeMessurier, the engineering field still regards his actions as upstanding.
31:39
And the Citicorp case is taught all over the world
31:39
as a case of good engineering ethics.
31:39
In fact, in my own engineering ethics course, I learned about the Citicorp building.
31:39
And every structural engineer experiences this.
31:39
When you actually feel the weight of the responsibility, you're saying,
31:39
"Based on my engineering, that building is gonna stand up."
31:40
Nobody else worries about it.
31:40
And so if you think about the emotional pressure
31:41
that Bill LeMessurier was under
31:41
and then needing to come back
31:41
and do something about it
31:41
and to mobilize and to hold
31:41
that during this entire process,
31:41
it's truly a remarkable story.
31:42
I mean, I can't imagine it.
31:42
I can't imagine it.
31:42
I said, look, if you got a license from the state
31:42
and a certification from university first,
31:42
then now you're gonna use that license to hold yourself out as a professional,
31:42
you have a responsibility beyond yourself.
31:42
If you see something that is a social risk, good heavens,
31:42
this thing would kill thousands, you must do something, you must do something.
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