Planes have special parts on their wings. 

Planes have special parts on their wing edges. 

Planes use special parts on the front of their wings. These parts are called slats. 



A slat is a special part on the front edge of an airplane wing. 

When a pilot uses the slats, they slide forward. This creates a small gap or slot between the slat and the wing. Air from underneath the slat flows through this slot. This new air helps replace the old air that has lost its energy. This happens because of skin friction drag, which slows air down as it moves over a surface. By bringing in fresh air, the wing can work at a higher angle of attack. The angle of attack is how much the wing tilts up into the air. This prevents a stall, which is when a wing stops lifting the plane. 
People have been working on this idea for a long time. Gustav Lachmann first developed the idea for slats in 1918. He wanted to help after a plane crash in August 1917. He built a small wooden model in Cologne to test his ideas. 
There are different ways that slats can work on different planes. Some slats are automatic and use springs to pop out when the plane slows down. 
Slats are a lot like something you might see in nature. Some birds have a special part on their wings called an alula. 
A leading-edge slat is an aerodynamic surface located at the front of an aircraft wing. 
When the slats are deployed, they slide forward to create a narrow gap called a slot. This slot changes how air moves over the wing. As air flows from beneath the slat, it travels through the slot and meets the air moving over the main wing. This process helps manage the boundary layer. A boundary layer is the layer of air that travels closely against the surface of the wing. As air moves, it loses kinetic energy due to skin friction drag. The fresh air from the slot helps manage this energy loss. This allows the wing to operate at a higher angle of attack, which is the angle at which the wing meets the oncoming air. A higher angle of attack allows the plane to fly slower before it reaches a stall, the point where the wing stops producing lift.
Scientists have identified several specific ways that slats improve aerodynamics. One effect is the reduction of pressure peaks at the leading edge of the main wing. This happens because the circulation of the slat reduces the velocities at the downstream element. Another effect is known as the circulation effect. In this case, the circulation of the main wing actually increases the circulation of the slat, which improves the slat's own performance. There is also a dumping effect. This occurs when the discharge velocity at the trailing edge of the slat is increased. This helps alleviate separation problems or increases the total lift. Finally, the slat provides a fresh boundary layer effect. Each new part of the wing starts with a new, thin boundary layer. These thin layers can withstand stronger adverse gradients than thick ones.
There are three main types of slats used in aviation. The first type is the automatic slat. These are often called Handley-Page slats. They are held flush against the wing by air pressure. As the aircraft slows down, the air pressure decreases, and internal springs extend the slats. 
The history of the slat began with the work of Gustav Lachmann. In 1917, a Rumpler C aeroplane crashed due to a stall. This event prompted Lachmann to develop the idea of the slat. He built a small wooden model in Cologne to test his theories. In 1918, he presented a patent for leading-edge slats in Germany. Interestingly, the German patent office initially rejected his application. They did not believe that dividing a wing could postpone a stall. Later, Handley Page Ltd in Great Britain developed a similar slotted wing design. They applied for a patent in 1919. To avoid legal challenges, Handley Page and Lachmann eventually reached an agreement regarding ownership of the technology.
During World War II, different versions of these technologies were used in combat. The German Fieseler Fi 156 Storch used fixed slots on its leading edges. This design was very effective for short takeoffs and landings. The Storch could take off into a light wind in less than 45 meters. It could also land in just 18 meters. Other aircraft, such as those from the Messerschmitt company, used automatic, spring-loaded slats. For example, the Messerschmitt Bf 109 utilized these automatic slats as a general rule. However, the Me 163B Komet used fixed slots instead. These historical developments show how much the slat improved the ability of planes to operate in difficult conditions.
In nature, a similar mechanism can be found in birds. Some birds possess a structure called an alula. The alula is a group of feathers that a bird can extend using its thumb. 
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