Some shapes help things fly.
Some shapes help things move.
An airfoil is a special shape. It helps things move through air or water. Wings and sails are examples of airfoils.
When an airfoil moves, it pushes the fluid away. This creates a force called lift. Lift pulls the object up. It also creates drag. Drag is a force that pulls back.
How does lift work? An airfoil moves air in a certain way. The air moves faster over the top surface. This creates a low-pressure area. The air on the bottom has higher pressure. This difference in pressure helps lift the wing.
Airfoils have different shapes for different speeds. Shapes for slow flight have a round leading edge. This is the front part. Shapes for very fast flight are slim. They have a sharp leading edge. All airfoils have a sharp trailing edge. This is the back part.
Some airfoils can make lift even when they are flat. These are called cambered airfoils. Other shapes are used for special jobs. Some help cars stay on the road. Others help gliders fly for a long time.
An airfoil is a special, streamlined shape. It is designed to create a lot of lift. Lift is the upward force that helps things fly. An airfoil also creates drag, which is a force that pulls backward.
How does an airfoil actually work? It works by moving the air around it. When an airfoil moves, it deflects the air downward. This downward movement creates an equal upward force on the wing.
Scientists have studied these shapes for a long time. A man named Richard von Mises wrote about them in 1945. He noted that wings must have a sharp trailing edge. The trailing edge is the very back part of the shape. This sharp edge helps create well-defined lift. 
Airfoils come in many different shapes for different jobs. Shapes for slow flight have a rounded leading edge. The leading edge is the front part of the wing. Shapes for very fast, supersonic flight are much slimmer. These fast shapes often have very sharp leading edges.
Modern technology uses computers to design perfect airfoils. In the 1970s and 1980s, NASA did important research. They studied laminar flow, which is smooth air movement. This research helped make modern planes more efficient. Today, we use new materials like composites to build them. We can even use different airfoil shapes along a single wing. This helps the plane fly better in different parts of the sky.
An airfoil is a streamlined body designed to generate significantly more lift than drag. Lift is the upward aerodynamic force that acts perpendicular to the direction of the moving fluid. Drag is the force that acts parallel to the fluid flow, pulling against the object.
The mechanism of an airfoil relies on how it deflects passing fluid. When a solid body moves through a fluid at a suitable angle, it deflects the fluid downward. This deflection creates a reaction force on the airfoil in the opposite direction. This upward component is the lift.
Airfoils are categorized by their specific geometric shapes and intended flight regimes. A symmetric airfoil has identical upper and lower surfaces. These are often used in aerobatic airplanes to allow for frequent inverted flight. In contrast, cambered airfoils have a curved shape. A cambered airfoil can generate lift even at a zero angle of attack.
Understanding the geometry of an airfoil requires specific technical terms. The leading edge is the front point with maximum curvature. The trailing edge is the point furthest from the front. The chord line is the straight line connecting these two points. The chord length is the measurement of this line.
History shows how mathematical theories helped refine these designs. In the 1920s, German mathematician Max Munk devised thin airfoil theory. This theory relates the angle of attack to lift for incompressible, inviscid flows. British aerodynamicist Hermann Glauert later refined these ideas. In 1945, Richard von Mises noted that wings must have a sharp trailing edge to obtain well-defined lift. 
Efficiency in an airfoil is often measured by its lift and drag curves. As the angle of attack increases, lift generally increases in a linear relation. However, if the angle becomes too steep, the airfoil may stall. At about 18 degrees in some models, the lift falls off quickly. This happens because the upper-surface boundary layer separates and thickens. This thickened layer changes the effective shape of the airfoil. It reduces the circulation and the lift while causing a sharp increase in pressure drag.
Modern aeronautical engineering uses airfoils in many complex systems. Designers use computer programs to create specific shapes for different functions. For example, a supercritical airfoil has its maximum thickness near the leading edge. This helps manage supersonic flow in transonic aircraft. Some wings even use different airfoil sections along their entire span to optimize performance.
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