The first 200 lines.
Today on "Impossible engineering,"
the Rion-Antirion bridge...
A colossal structure built in the heart of an earthquake zone.
Spanning 2 miles across open water,
it took revolutionary engineering...
...and a look back at some hard lessons from the past...
The energy release was massive,
and now the specimen has just catastrophically failed.
...To make the impossible... Possible.
Captions by vitac
captions paid for by Discovery communications
August 2004, the Rion-Antirion bridge
opens to traffic for the first time.
It's an engineering masterpiece of the modern age.
This massive structure
spans almost 2 miles across the Gulf of Corinth in Greece.
It boasts the longest fully suspended deck
and deepest foundation piers of any bridge on earth.
For chief engineer Panayotis Papanikolas,
it was the project of a lifetime...
...but for centuries,
building a bridge across the Gulf of Corinth was just a dream
due to a long list of environmental challenges.
But wind isn't the only threat to the bridge.
The two land masses on either side of the Gulf of Corinth
are constantly drifting apart.
This, along with frequent earthquakes, high winds,
and deep water meant that
building a bridge across the Gulf would be a daunting task...
...but the need for a safe crossing was desperate.
The perilous waters of the Gulf of Corinth
often made ferry crossings impossible
and cut the peninsula off from important services.
So in the 1990s, the government embarked
on one of the most ambitious engineering projects
in modern history.
The first challenge was to design a bridge
that could span
the almost 2-mile gap across the Gulf of Corinth.
The distance was too great for a single-span bridge,
so engineers has to build support towers in water
that's over 200 feet deep.
To overcome the water-depth issue,
Panayotis and his fellow engineers
would need to look
to history's great engineering innovations for the solution.
Building in water has always been a challenge.
Early builders relied on conveniently placed rocks
for the foundation of their structures.
Fine for lighthouses, useless for bridge building.
Creating artificial islands
was time-consuming and impractical in deep water.
In the 19th century, pressurized structures called case-ins
were developed to create underwater building sites.
But they were difficult to build...
And dangerous.
Fortunately, in the 20th century,
a new technique was on the horizon.
In the 1940s, engineer guy Maunsell
came up with a solution
that finally conquered the challenge of building at sea.
Professor Luke Bisby is heading far out into the English channel
to see the remains
of Guy Maunsell's bold creation firsthand.
Maunsell's influence on contemporary engineering
I don't think really can be overstated.
This was really the first time
that this had ever been attempted,
and so it was really quite a daring feat of engineering.
Maunsell's innovation
was triggered by the second world war.
It became clear the river thames was a prime target
for German bombers during the war.
The Germans wanted to destroy London's docks
and lay mines to disrupt allied shipping.
So Maunsell came up with a radical new design
for off-shore sea defense...
...naval forts consisting of two 80-foot high concrete towers
each containing four floors of accommodations
topped with a gun deck.
But the ingenious part of Maunsell's design
wasn't the layout of the fort...
It was how it would be constructed
and deployed at sea.
Knock John here was towed out 3 to 6 miles
from where it was constructed on land,
and then it was sunk in place exactly where you see it.
Maunsell designed the bases of his forts
as huge hollow concrete barges.
Despite their enormous weight,
they had enough buoyancy to float.
Maunsell built the forts
on top of these large concrete barges
and then calculated how large the barges needed to be
in order to hold the weight of the fort
so they could be taken out and then sunk in place.
The massive 4-1/2 ton concrete forts
were constructed in a dry dock,
then towed out to sea with a 100-man crew already on board.
When they had it in the place where they wanted it,
they essentially just pulled out a stopcock at one end
and let the water flow in.
As the water was flowing in,
the barge started to list in the water.
Eventually, the nose dipped under the water.
All 100 men were hanging on
as the fort was sinking at 35 degrees.
Despite the rough submersion,
Maunsell's groundbreaking design worked perfectly.
The bottom of the barge basically filled up with water,
and eventually the entire barge sunk to the bottom
and flattened out.
Maunsell's forts helped British forces shoot down
22 enemy aircraft and 30 flying bombs.
They protected London from attack
and made engineering history.
The influence of this type of construction you can see
in all different facets of engineering today.
You can see it in the off-shore-oil-and-gas industry
with oil platforms.
You can see it being used as foundations for wind turbines.
And, of course, you can see it being used
as a way of placing foundations
for large bridge structures around the world.
But the most impressive use
of Maunsell's revolutionary floating concrete design
is at the Rion-Antirion bridge.
The Rion-Antirion bridge
spans an incredible 2 miles
across the deep waters of the Gulf of Corinth.
To support this massive structure,
engineers used principles
first exploited by Guy Maunsell in the 1940s
and super-sized them.
In 1998, construction begins on 4 enormous pier foundations.
Each one is larger than a football field
and weighs almost 80,000 tons.
The hollow pier footings are built in a dry dock
just as guy Maunsell did
but on a scale he couldn't have imagined.
Before the footings can be taken out into the Gulf of Corinth,
engineers need a solution to a serious problem...
A problem Maunsell never had to deal with.
The Gulf of Corinth lies in the heart
of one of the most active seismic zones in the world.
In an earthquake, the soft seafloor would liquify
causing the piers to sink and the bridge to collapse.
Unless an answer was found, the project was over.
The engineers came up with a radical solution.
They would drive hundreds of long tubes deep into the soil
where the four piers will sit.
This ingenious idea stabilized the soft seafloor.
Bridge footings are usually
anchored directly into the ground.
But for the Rion-Antirion,
they were placed on top of a 10-foot layer of gravel.
This allowed the footings to shift with the earth
during an earthquake.
With a solution to the earthquake problem,
the engineers are now ready to begin
one of the most audacious parts of the build...
...maneuvering the half-constructed piers
into the Gulf.
Engineers continued to build up the massive structures
while they were still floating.
Each layer of heavy concrete that was added
sunk the pier further down,
pushing it closer to its final resting place
200 feet below on the seafloor.
The end result was four enormous hollow foundation piers.
They're the first of their kind...
A series of massive concrete underwater caverns.
The pier footings for the Rion-Antirion
can survive an earthquake,
but what about its nearly 2-mile long suspended deck?
The builders of this massive structure will need to produce
even more impossible engineering.
The Rion-Antirion bridge in Greece
is a modern engineering marvel.
Over 11 million cubic feet of concrete,
more than 100,000 tons of steel, and 39 miles of cabling
make up the longest fully suspended cable-stayed bridge
on the planet.
Panayotis Papanikolas and his fellow engineers
had to overcome a long list of obstacles
before their dream
of a bridge spanning the Gulf of Corinth
could be realized.
The Gulf of Corinth
is one of the busiest trade routes in Europe.
Its shipping lanes cannot be disrupted.
To design a bridge capable of spanning this gap
without interfering with shipping,
engineers would need to turn
to the great innovators of the past for inspiration.
It was the romans who first engineered solid Bridges
using stone and a simple but revolutionary shape... the arch.
However, the wider the gap,
the more arches were needed and the heavier the bridge became.
For hundreds of years, inca communities in the high andes
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