NACA airfoil
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The NACA airfoils are airfoil shapes for aircraft wings developed by the National Advisory Committee for Aeronautics (NACA). The shape of the NACA airfoils is described using a series of digits following the word "NACA." The parameters in the numerical code can be entered into equations to precisely generate the cross-section of the airfoil and calculate its properties.
Four-digit series
The NACA four-digit wing sections define the profile by:[1]- One digit describing maximum camber as percentage of the chord.
- One digit describing the distance of maximum camber from the airfoil leading edge in tens of percent's of the chord.
- Two digits describing maximum thickness of the airfoil as percent of the chord.
The NACA 0015 airfoil is symmetrical, the 00 indicating that it has no camber. The 15 indicates that the airfoil has a 15% thickness to chord length ratio: it is 15% as thick as it is long.
Equation for a symmetrical 4-digit NACA airfoil
The formula for the shape of a NACA 00xx foil, with "xx" being replaced by the percentage of thickness to chord, is:[2]
where:
- c is the chord length,
- x is the position along the chord from 0 to c,
- y is the half thickness at a given value of x (centerline to surface), and
- t is the maximum thickness as a fraction of the chord (so 100 t gives the last two digits in the NACA 4-digit denomination).
Equation for a cambered 4-digit NACA airfoil
The simplest asymmetric foils are the NACA 4 digit series foils, which use the same formula as that used to generate the 00xx symmetric foils, but with the line of mean camber bent. The formula used to calculate the mean camber line is:[2]
- m is the maximum camber (100 m is the first of the four digits),
- p is the location of maximum camber (10 p is the second digit in the NACA xxxx description).
Five-digit series
The NACA five-digit series describes more complex airfoil shapes:[6]- The first digit, when multiplied by 0.15, gives the designed coefficient of lift (CL).
- Second and third digits, when divided by 2, give p, the distance of maximum camber from the leading edge (as per cent of chord).
- Fourth and fifth digits give the maximum thickness of the airfoil (as per cent of the chord).
The camber-line is defined in two sections:
Modifications
Four- and five-digit series airfoils can be modified with a two-digit code preceded by a hyphen in the following sequence:- One digit describing the roundness of the leading edge with 0 being sharp, 6 being the same as the original airfoil, and larger values indicating a more rounded leading edge.
- One digit describing the distance of maximum thickness from the leading edge in tens of percent of the chord.
In addition, for a more precise description of the airfoil all numbers can be presented as decimals.
1-series
A new approach to airfoil design pioneered in the 1930s in which the airfoil shape was mathematically derived from the desired lift characteristics. Prior to this, airfoil shapes were first created and then had their characteristics measured in a wind tunnel. The 1-series airfoils are described by five digits in the following sequence:- The number "1" indicating the series
- One digit describing the distance of the minimum pressure area in tens of percent of chord.
- A hyphen.
- One digit describing the lift coefficient in tenths.
- Two digits describing the maximum thickness in percent of chord.
6-series
An improvement over 1-series airfoils with emphasis on maximizing laminar flow. The airfoil is described using six digits in the following sequence:- The number "6" indicating the series.
- One digit describing the distance of the minimum pressure area in tens of percent of chord.
- The subscript digit gives the range of lift coefficient in tenths above and below the design lift coefficient in which favorable pressure gradients exist on both surfaces
- A hyphen.
- One digit describing the design lift coefficient in tenths.
- Two digits describing the maximum thickness in tens of percent of chord.
7-series
Further advancement in maximizing laminar flow achieved by separately identifying the low pressure zones on upper and lower surfaces of the airfoil. The airfoil is described by seven digits in the following sequence:- The number "7" indicating the series.
- One digit describing the distance of the minimum pressure area on the upper surface in tens of percent of chord.
- One digit describing the distance of the minimum pressure area on the lower surface in tens of percent of chord.
- One letter referring to a standard profile from the earlier NACA series.
- One digit describing the lift coefficient in tenths.
- Two digits describing the maximum thickness in tens of percent of chord.
- "a=" followed by a decimal number describing the fraction of chord over which laminar flow is maintained. a=1 is the default if no value is given.
8-series
Supercritical airfoils designed to independently maximize airflow above and below the wing. The numbering is identical to the 7-series airfoils except that the sequence begins with an "8" to identify the series.See also
References
- ^ E. N. Jacobs, K. E. Ward, & R. M. Pinkerton 1933 The characteristics of 78 related airfoil sections from tests in the variable-density wind tunnel, NACA Report No. 460.
- ^ a b Moran, Jack (2003). An introduction to theoretical and computational aerodynamics. Dover. p. 7. ISBN 0486428796.
- ^ http://www.aerospaceweb.org/question/airfoils/q0041.shtml
- ^ http://www.fges.demon.co.uk/cfd/naca.html#07
- ^ Marzocca, Pier. "The NACA airfoil series" (PDF). Clarkson University. Retrieved 07-03-2009.
- ^ E. N. Jacobs & R. M. Pinkerton 1936 Test in the variable-density wind tunnel of related airfoils having the maximum camber unusually far forward, NACA Report No. 537.
![y_t = \frac{t}{0.2}c\, \left[ 0.2969 \sqrt{\frac{x}{c}} - 0.1260 \left(\frac{x}{c}\right) - 0.3516 \left(\frac{x}{c}\right)^2 + 0.2843 \left(\frac{x}{c}\right)^3 - 0.1015 \left( \frac{x}{c} \right)^4 \right],](http://upload.wikimedia.org/wikipedia/en/math/0/c/d/0cd31a5e8db6e8435a19e37e41e319d9.png)






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