Wing
From Wikipedia, the free encyclopedia
- For other uses, see Wing (disambiguation).
Wing shapes: a swept wing KC-10 Extender from
Travis Air Force Base, California, refuels a delta wing F/A-22 Raptor.
A wing is
a surface used to produce an
aerodynamic force normal to the direction of motion by traveling in air or
another gaseous medium, facilitating flight. it
is a specific form of airfoil. The first use of the word was for the foremost limbs of birds, but has been extended to include the wings of insects, bats and
pterosaurs and
also man-made devices.
A wing is
an extremely efficient device for generating lift. Its aerodynamic quality, expressed as a Lift-to-drag ratio, can be up to 60 on some gliders and
even more. This means that a significantly smaller thrust force can be applied to propel the wing through the air in order to obtain a specified lift.
The most common use of wings is
to fly by deflecting air downwards to produce lift, but upside-down wings are
also commonly used as a way to produce downforce and
hold objects to the ground (for example: racing cars). A sailing boat moves by using its sails as wings to produce lift (in the horizontal plane) from the force of the wind. For a detailed explanation of how a wing or
other foil produces lift, see Lift (force).
[edit] Artificial wings
[edit] Terms used to describe aeroplane wings
|
|
|
Full flaps, with spoilers deployed.
|
- Leading edge: the front edge of the wing
- Trailing edge: the back edge of the wing
- Span: distance from wing tip to wing tip
- Chord: distance from wing leading edge to wing trailing edge, usually measured parallel to the long axis of the fuselage
- Aspect ratio: ratio of span to standard mean chord
- Aerofoil (or Airfoil in US English): the shape of the top and
bottom surfaces when viewed as cross sections cut from leading edge to trailing edge.
- Sweep angle: the angle between the perpendicular to the design centreline of the wing in the wing plane, and
either the leading edge or
¼ chord line.
- Twist: gradual change of the airfoil (aerodynamic twist) and/or angle of incidence of the wing cross-sections (geometrical twist) along the span.
[edit] Design features
Aeroplane wings may feature some of the following:
- A rounded (rarely sharp) leading edge cross-section
- A sharp trailing edge cross-section
- Leading-edge devices such as slats, slots, or
extensions
- Trailing-edge devices such as flaps
- Ailerons (usually near the wingtips) to provide roll control
- Spoilers on the upper surface to disrupt lift and
additional roll control
- Vortex generators to help prevent flow separation
- Wing fences to keep flow attached to the wing
- Dihedral, or
a positive wing angle to the horizontal. This gives inherent stability in roll. Anhedral, or
a negative wing angle to the horizontal, has a destabilising effect
- Folding wings allow more
aircraft to be carried in the confined space of the hangar of an
aircraft carrier.
and
the flaps at the trailing edge
are
extended.">

and
the flaps at the trailing edge
are
extended." width="250" height="173" longdesc="../../../b/m/i/Image%7EBmi.a319-100.g-dbca.2.arp.jpg_975a.html" />
The wing of a landing bmi Airbus A319-100. The slats at the leading edge
and
the flaps at the trailing edge
are
extended.
[edit] Wing types
- Swept wings are
wings that are
bent back at some angle, instead of sticking straight out from the fuselage.
- Forward-swept wings are
high performance wings that are
bent forward, the reverse of a traditional swept wing. Forward swept wings have
been used in some two seat gliders, and
in the experimental X-29.
- Elliptical wings (technically wings with an
elliptical lift distribution) are
theoretically optimum for efficiency at subsonic speeds. A good example of this wing type can be seen on the British Supermarine Spitfire World War II fighter aircraft.
- Delta wings have
reasonable performance at subsonic and
supersonic speeds and
are good at high angles of attack. For examples see the F-102, F-106, Avro Vulcan and
B-58.
- Waveriders are
efficient supersonic wings that take advantage of shock waves. For an
example, see the XB-70.
- Rogallo wings are
two partial cone sections arranged with the apexes together and
the convex side up. One of the simplest wings to construct using cloth or
other membrane material and
a frame.
- Swing-wings (or variable geometry wings) are
able to move in flight to give the benefits of dihedral and
delta wing. Although they were originally proposed by German aerodynamicists during the 1940s, they are
currently only found on some military aircraft such as the Grumman F-14, Panavia Tornado, General Dynamics F-111, B-1 Lancer, Tupolev Tu-160, MiG-23 and
Sukhoi Su-24.
- Ring wings are
optimally loaded closed lifting surfaces with higher aerodynamic efficiency than planar wings having the same aspect-ratios. Other nonplanar wing systems display an
aerodynamic efficiency intermediate between ring wings and
planar wings.
- Oblique wing
[edit] Science of wings
A Mute swan spreads its wings
The science behind how wings work can be complex and
is one of the principal applications of the science of aerodynamics. However, at the simplest level, both the upper and
lower surfaces of a wing produce lift by deflecting air downward, which propels the flying body upward with an
equal and
opposite force (see Newton's Third Law).
The air above the wing is
also operating at a lower pressure compared to the air below the wing because of Bernoulli's principle. This relates the pressure of air to its local velocity. If the velocity of the air changes as it
flows around an
object, such as a wing, the pressure of the air also changes. The shape and
the angle of attack of the wing cause the air to flow faster above the wing than below, so the pressure above the wing is
less than below the wing. This pressure difference causes a force called lift that acts at right angles to the air-flow.
The science of wings applies in other areas beyond conventional fixed-wing aircraft, including:
- Helicopters which use a rotating wing with a variable pitch or
angle to provide a directional force
- The space shuttle which uses its wings only for lift during its descent
- Some racing cars, especially Formula One cars, which use upside-down wings to give cars greater adhesion at high speeds
- Sailing boats which use sails as vertical wings with variable fullness and
direction to move across water.
Structures with the same purpose as wings, but designed to operate in liquid media, are
generally called fins or
hydroplanes, with hydrodynamics as the governing science. Applications arise in craft such as hydrofoils and
submarines. Interestingly sailing boats use both fins and
wings.
[edit] Animal wings
are
fleshy,
and
do not
have
the feathers that birds' wings do">

are
fleshy,
and
do not
have
the feathers that birds' wings do" width="180" height="262" longdesc="../../../p/t/e/Image%7EPteropus_vampyrus1.jpg_dc9c.html" />
Biologists believe that animal wings evolved at least four separate times, an
example of convergent evolution.
- insect wings are
believed to have
evolved between 300 and
400 million years ago
- pterosaur wings at least 225 million years ago
- bird wings at least 150 million years ago
- bat wings about 55 million years ago.
Wings in these groups are
analogous structures because they evolved independently rather than being passed from a common ancestor.
are
clearly visible beneath the elytra.">

are
clearly visible beneath the elytra." width="300" height="243" longdesc="../../../m/a/y/Image%7EMaybug.jpg_fc48.html" />
[edit] See also
[edit] External links
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