Helix 179924 224721320 2008-07-10T03:14:43Z 76.117.201.190 {{Otheruses1|the shape}} [[Image:Brick helix near Tsomo.jpg|thumb|A helix constructed in [[brick]].]] [[Image:Lehn Beautiful Foldamer HelvChimActa 1598 2003.jpg|thumbnail|Crystal structure of a [[foldmer|folded molecular helix]] reported by [[Jean-Marie Lehn|Lehn]] and coworkers in Helv. Chim. Acta., 2003, 86, 1598-1624.]] [[Image:DirkvdM natural spiral.jpg|thumb|A natural left-handed helix, used by a [[Vine|climber]] plant.]] A '''helix''' (pl: '''helices'''), from the [[Greek language|Greek]] word ''έλικας/έλιξ'', is a three-dimensional, twisted shape. Common objects formed like a helix are a [[Spring (device)|spring]], a [[screw]], and a [[Stairway#Spiral_and_helical_stairs|spiral staircase]] (though the last would be more correctly called helical).<ref>"[http://demonstrations.wolfram.com/Helices/ Helices]" by Sándor Kabai, [[The Wolfram Demonstrations Project]].</ref><ref>"[http://demonstrations.wolfram.com/HelicalStaircase/ Helical Staircase]" by Sándor Kabai, [[The Wolfram Demonstrations Project]].</ref> Helices are important in [[biology]], as the [[DNA]] molecule is formed as [[double helix|two intertwined helices]], and many [[protein|proteins]] have helical substructures, known as [[alpha helix|alpha helices]]. ==Types== Helices can be either right-handed or left-handed. With the line of sight being the helical axis, if clockwise movement of the helix corresponds to axial movement away from the observer, then it is a right-handed helix. If counter-clockwise movement corresponds to axial movement away from the observer, it is a left-handed helix. Handedness (or [[chirality (mathematics)|chirality]]) is a property of the helix, not of the perspective: a right-handed helix cannot be turned or flipped to look like a left-handed one unless it is viewed through a mirror, and vice versa. Here is another test for handedness: first grip the helix with your right hand and direct your thumb parallel to the axis of the helix. Then curl your fingers toward your palm, following the path of the spiral as if the helix were a set of rails that your fingers must slide along. If this causes your entire hand to move in the same direction as your thumb is pointing, then the helix is right-handed. If not, it is left-handed. Try this test on the left-handed helix in the picture below; in this case, your hand should move in the direction opposite to the way your thumb points. Most hardware screws are right-handed helices. The alpha helix in biology as well as the [[A-DNA|A]] and [[B-DNA|B]] forms of DNA are also right-handed helices. The [[Z-DNA|Z form]] of DNA is left-handed. A [[double helix]] typically consists geometrically of two congruent helices with the same axis, differing by a translation along the axis, which may or may not be half-way.<ref>"[http://demonstrations.wolfram.com/DoubleHelix/ Double Helix]" by Sándor Kabai, [[The Wolfram Demonstrations Project]].</ref> A '''conic helix''' may be defined as a [[spiral]] on a conic surface, with the distance to the apex an exponential function of the angle indicating direction from the axis. An example of a helix would be the [[Corkscrew_%28Cedar_Point%29|Corkscrew]] roller coaster at Cedar Point amusement park. A circular helix has constant [[curvature]] and constant [[Torsion of curves|torsion]]. The '''pitch''' of a helix is the width of one complete helix turn, measured along the helix axis. A curve is called a '''general helix''' if its tangent makes a constant angle with a fixed line in space. ==Mathematics== In [[mathematics]], a helix is a [[Differential geometry of curves|curve]] in 3-[[dimension]]al space. The following three equations in [[Cartesian coordinate system|rectangular coordinates]] define a helix<ref>{{MathWorld | urlname=Helix | title=Helix}}</ref>: : <math>x = \cos(t),\,</math> : <math>y = \sin(t),\,</math> : <math>z = t.\,</math> As the [[parameter]] ''t'' increases, the point (''x'',''y'',''z'') traces a right-handed helix of pitch 2[[pi|π]] about the ''z''-axis, in a right-handed coordinate system. In [[cylindrical coordinates]] (''r'', θ, ''h''), the same helix is described by: : <math>r = 1,\,</math> : <math>\theta = t,\,</math> : <math>h = t.\,</math> The above example is an example of circular helix of radius 1 and pitch 2''π''. Circular helix of radius ''a'' and pitch 2''πb'' is described by the following equations: : <math>x = a\cos(t),\,</math> : <math>y = a\sin(t),\,</math> : <math>z = bt.\,</math> Another way of mathematically constructing a helix is to plot a complex valued exponential function (e^xi) taking imaginary arguments (see [[Euler's formula]]). Except for [[rotation]]s, [[translation (geometry)|translation]]s, and changes of scale, all right-handed helices are equivalent to the helix defined above. The equivalent left-handed helix can be constructed in a number of ways, the simplest being to negate either the x, y or z component. The length of a circular helix of radius ''a'' and pitch 2''πb'' expressed in rectangular coordinates as :<math>t\mapsto (a\cos t, a\sin t, bt), t\in [0,T]</math> equals <math>T\cdot \sqrt{a^2+b^2}</math>, its curvature is <math>\frac{|a|}{a^2+b^2}</math> and its torsion is <math>\frac{b}{a^2+b^2}.</math> ==Examples== In [[music]], [[pitch space]] is often modeled with helices or double helices, most often extending out of a circle such as the [[circle of fifths]], so as to represent [[octave equivalency]]. == References == {{reflist|2}} == See also == * [[Collagen]] *[[Helicoid]] *{{ml|Symmetry|Helical_symmetry|Helical symmetry}} *[[Spiral (railway)]] *[[Seashell surface]] *[[Alpha helix]] [[Category:Helices| ]] [[Category:Geometric shapes]] [[Category:Curves]] [[ar:لولب]] [[bg:Винтова линия]] [[cs:Šroubovice]] [[da:Skruelinje]] [[de:Helix]] [[es:Hélice (geometría)]] [[fr:Hélice]] [[gl:Hélice (xeometría)]] [[id:Heliks]] [[it:Elica (geometria)]] [[hu:Csavarvonal]] [[nl:Helix (wiskunde)]] [[no:Helix]] [[nn:Heliks]] [[pl:Linia śrubowa]] [[pt:Hélice (geometria)]] [[ru:Винтовая линия]] [[sr:Хеликс]] [[sh:Heliks]] [[sv:Helix]] [[zh:螺旋]]