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Millau Viaduct

technology Maturity 7-9

A big bridge sits in France.

ViaducdeMillau.jpg
ViaducdeMillau.jpg
It goes over a deep valley. It is very, very tall. Cars drive across it to go on trips. It helps people move fast. Do you want to see it?

41 words

A huge bridge sits in France.

ViaducdeMillau.jpg
ViaducdeMillau.jpg
It crosses a deep valley. This bridge is very tall. It was the tallest in the world for a long time.
Millau Viaduct, France (39307678014).jpg
Millau Viaduct, France (39307678014).jpg
Many cars use it to travel. It helps people avoid traffic jams. The bridge was built in just three years. It uses strong cables to stay up. It is a great feat of building.
Millau Viaduct construction south.jpg
Millau Viaduct construction south.jpg

70 words

The Millau Viaduct is a giant bridge in Southern France.

ViaducdeMillau.jpg
ViaducdeMillau.jpg
It crosses the deep Tarn valley. For over twenty years, it was the tallest bridge in the world. Its height is 343 meters.
Millau Viaduct, France (39307678014).jpg
Millau Viaduct, France (39307678014).jpg

Engineers built this bridge to help with traffic. In the 1980s, many cars got stuck near the town of Millau. People wanted a faster way to drive through the area. A team led by Michel Virlogeux and Norman Foster designed it. They chose a cable-stayed design. This means strong cables hold up the road.

Millau Viaduct construction south.jpg
Millau Viaduct construction south.jpg

The bridge cost about 400 million euros to build. It took three years to finish. Workers used a lot of materials. They used 36,000 tonnes of concrete. They also used 9,000 tonnes of steel for the cables. The bridge opened to cars in December 2004. It is part of a big road from Paris to Montpellier. Experts say it is a great feat of building. It may last for at least 120 years.

169 words

The Millau Viaduct is a huge bridge in Southern France.

ViaducdeMillau.jpg
ViaducdeMillau.jpg
It crosses the deep Tarn valley in the Occitanie Region. This bridge is part of a major road path called the A75–A71 autoroute. This path connects Paris to the cities of Béziers and Montpellier. For over twenty years, it was the tallest bridge in the world. Its total height reaches 343 meters.
Millau Viaduct, France (39307678014).jpg
Millau Viaduct, France (39307678014).jpg
Because it is so big, it is a famous engineering achievement.

The bridge uses a cable-stayed design to stay strong. This means many thick cables hold up the road deck.

Millau Viaduct construction south.jpg
Millau Viaduct construction south.jpg
The road sits on top of tall pillars called pylons. Each pylon stands on four deep concrete pilings in the ground. These pilings go deep into the earth to keep everything steady. Workers used a special way to move the road into place. They used launching technology to slide the road deck across the pylons.
Viaduc de Millau (7).jpg
Viaduc de Millau (7).jpg
This way of working helped them build such a high structure.

In the 1980s, many cars got stuck near the town of Millau. This traffic was very bad during the summer months. People traveling from Paris to Spain caused a lot of congestion.

Projets A75 autour de Millau.jpg
Projets A75 autour de Millau.jpg
Leaders wanted a way to help local businesses and residents. They wanted to make trips faster for people driving long distances. After many years of studying different paths, they chose a high solution. This high solution allowed the bridge to cross the valley high above the river.

A team of experts led the design of the bridge. Engineer Michel Virlogeux and architect Norman Foster led the team.

Viaduc-Millau Pile-P2 Eiffel.svg
Viaduc-Millau Pile-P2 Eiffel.svg
They worked with a group called Arcadis to make the plan. The building process took about three years to finish. Construction cost around 400 million euros. The bridge was officially inaugurated on 14 December 2004. It opened to cars just two days later on 16 December. The company Eiffage won the contract to build it.

You can think of the bridge like a giant, strong web. The pylons are like the legs of a table. The cables are like the strings that hold the tabletop up.

Millau7658.JPG
Millau7658.JPG
Just like a table, the bridge must stay steady against the wind. Engineers tested the design in wind tunnels to make sure it was safe. The bridge is built to last for at least 120 years. It is a wonderful example of how people use science to cross hard places.

420 words

The Millau Viaduct is a massive multispan cable-stayed bridge located in Southern France.

ViaducdeMillau.jpg
ViaducdeMillau.jpg
It spans the deep gorge valley of the Tarn river near the town of Millau. This structure is a vital part of the A75–A71 autoroute axis. This highway connects Paris to the cities of Béziers and Montpellier. For over two decades, it held the record as the tallest bridge in the world. Its total structural height reaches 343 meters.
Millau Viaduct, France (39307678014).jpg
Millau Viaduct, France (39307678014).jpg
It is widely considered one of the greatest engineering achievements of modern times.

The bridge functions using a cable-stayed design to support its weight. In this system, the road deck is held up by many thick cables. These cables connect the deck directly to tall vertical pillars called pylons.

Viaduc de Millau (7).jpg
Viaduc de Millau (7).jpg
Each pylon rests on four deep concrete pilings driven into the ground. These pilings are large in diameter and ensure the structure remains steady. To place the road, workers used a process called launching technology. This allowed them to slide the steel road deck across the pylons.
Millau Viaduct construction south.jpg
Millau Viaduct construction south.jpg
Engineers even used wind tunnel tests to refine the shape of the deck.

Engineers had to choose between several different types of routes for the bridge.

Projets A75 autour de Millau.jpg
Projets A75 autour de Millau.jpg
One option was a "Great Eastern" route that used two very long spans. This route would have been difficult to build and served the local area poorly. Another option was a "Great Western" route that was longer and more expensive. It also would have harmed the environment near several picturesque villages. A third route near the RN9 road presented many technical difficulties. Finally, the "Intermediate" route was supported by locals but had geological problems. The chosen "high solution" allowed the viaduct to stay high above the river.

The history of the project began in the 1980s due to heavy traffic.

Millau tracé.jpg
Millau tracé.jpg
Road congestion near Millau was a major problem, especially during summer holidays. Travelers moving between Paris and Spain often caused long delays. Leaders wanted to bypass the town to help local businesses and residents. In 1987, the CETE began discussing the first plans for a bridge. By 1991, the decision was made to build a high crossing. After years of studies and competitions, a design team was chosen in 1996. This team included engineer Michel Virlogeux and architect Norman Foster.

The construction of the viaduct was a massive financial and physical undertaking. The total cost of construction was approximately 400 million euros. An additional 10 million euros was spent on a toll plaza. The builder, Eiffage, financed the project to collect tolls for 75 years. This concession is set to last until the year 2080. However, the French government could take control as early as 2044. The project required huge amounts of raw materials to complete. Builders used 36,000 tonnes of concrete and 20,000 tonnes of steel. They also used 22,000 tonnes of pre-stressed steel for the cables.

Construction details reveal the complexity of such a large-scale project.

Viaduc-Millau Pile-P2 Eiffel.svg
Viaduc-Millau Pile-P2 Eiffel.svg
The P2 pier is a notable example of this scale. It is the tallest structure in France, standing 13 meters taller than the Eiffel Tower. Workers began by digging deep shafts for the pilings in late 2001. The steel roadway was built by the Eiffel company. This company previously built the Garabit viaduct in 1884. The road deck was designed by the firm Greisch. They calculated how the bridge would resist winds up to 150 km/h. This careful planning ensures the bridge will last at least 120 years.

Despite its success, the project faced significant opposition from various groups. Organizations like the World Wildlife Fund and France Nature Environnement argued against it. Some opponents believed a western route would have been cheaper. Others feared the toll would prevent people from using the bridge. Some experts even worried that the pylons would not be stable on the shale. They thought the bridge might be dangerous or unsustainable for the region. They also feared the detour would hurt the local economy of Millau. However, the completed viaduct has since become a celebrated landmark of modern engineering.

694 words
🖼️ Images & Media (9)
File:ViaducdeMillau.jpg
ViaducdeMillau.jpg
File:Projets A75 autour de Millau.jpg
Projets A75 autour de Millau.jpg
File:Millau tracé.jpg
Millau tracé.jpg
File:Viaduc-Millau Pile-P2 Eiffel.svg
Viaduc-Millau Pile-P2 Eiffel.svg
File:Millau Viaduct construction south.jpg
Millau Viaduct construction south.jpg
File:Creissels et Viaduct de Millau.jpg
Creissels et Viaduct de Millau.jpg
File:Viaduc de Millau (7).jpg
Viaduc de Millau (7).jpg
File:Millau7658.JPG
Millau7658.JPG
File:Millau Viaduct, France (39307678014).jpg
Millau Viaduct, France (39307678014).jpg
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