|
|
Line 1: |
Line 1: |
| [[Image:Sidelobes en.svg|thumb|right|Diagram showing directivity]]
| | Hi there. Let me clairvoyance - [http://cartoonkorea.com/ce002/1093612 cartoonkorea.com], begin by introducing the writer, her title is Sophia. I've usually loved living in Mississippi. Since he was 18 he's been working as an info officer but he plans on changing it. The favorite pastime for him [http://www.aseandate.com/index.php?m=member_profile&p=profile&id=13352970 certified psychics] and his children is to play lacross and he would never give it up.<br><br>Also visit my website :: live psychic reading [[http://myoceancounty.net/groups/apply-these-guidelines-when-gardening-and-grow/ myoceancounty.net]] |
| {{Antennas|Characteristics}}
| |
| | |
| In [[electromagnetism|electromagnetics]], '''directivity''' is a [[figure of merit]] for an [[antenna (radio)|antenna]]. It measures the power density the antenna radiates in the direction of its strongest emission, versus the power density radiated by an ideal [[isotropic radiator]] (which emits uniformly in all directions) radiating the same total power.
| |
| | |
| An antenna's directivity is a component of its [[antenna gain|gain]]; the other component is its (electrical) [[antenna efficiency|efficiency]]. Directivity is an important measure because most emissions are intended to go in a particular direction or at least in a particular plane (horizontal or vertical); emissions in other directions or planes are wasteful (or [[multipath propagation|worse]]).
| |
| | |
| The directivity of an actual antenna can vary from 1.76 dBi for a [[dipole|short dipole]], to as much as 50 dBi for a large [[dish antenna]].<ref name="antenna_tutorial"/>
| |
| | |
| ==Definition==
| |
| | |
| The ''directivity'', ''D'', of an antenna is the maximum value of its ''directive gain''. Directive gain is represented as <math>D(\theta,\phi)</math>, and compares the [[radiation intensity]] (power per unit [[solid angle]]) <math>U(\theta, \phi)</math> that an antenna creates in a particular direction against the average value over all directions:
| |
| | |
| :<math>D(\theta,\phi) = \frac{U(\theta, \phi)}{P_\mathrm{tot}/\left(4\pi\right)}.</math> | |
| | |
| Here <math>\theta</math> and <math>\phi</math> are the standard [[spherical coordinate]] angles, <math>U(\theta, \phi)</math> is the [[radiation intensity]], which is the power density per unit solid angle, and <math>P_\mathrm{tot}</math> is the [[total radiated power]] (TRP). The quantities <math>U(\theta,\phi)</math> and <math>P_\mathrm{tot}</math> satisfy the relation:
| |
| :<math>P_\mathrm{tot} = \int_{\phi=0}^{\phi=2\pi}\int_{\theta=0}^{\theta=\pi}U\sin\theta\,d\theta\,d\phi;</math>
| |
| that is, the total radiated power <math>P_\mathrm{tot}</math> is the power per unit solid angle <math>U(\theta, \phi)</math> integrated over a spherical surface. Since there are 4π [[steradians]] on the surface of a sphere, the quantity <math>P_\mathrm{tot}/4\pi</math> represents the ''average'' power per unit solid angle.
| |
| | |
| In other words, directive gain is the radiation intensity of an antenna at a particular <math>(\theta, \phi)</math> coordinate combination divided by what the radiation intensity would have been had the antenna been an isotropic antenna radiating the same amount of total power into space.
| |
| | |
| ''Directivity'', then, is the maximum directive gain value found among all possible solid angles: | |
| | |
| :<math>\begin{align}D & = \max\left(\frac{U}{P_\mathrm{tot}/\left(4\pi\right)}\right) \\
| |
| & = \frac{\left. U(\theta,\phi)\right|_\mathrm{max}}{\frac{1}{4 \pi} \int _{0}^{2 \pi}\int _{0}^{\pi}U(\theta,\phi) \sin\theta \, d\theta\, d\phi}.\end{align}
| |
| </math>
| |
| | |
| The word ''directivity'' is also sometimes used as a synonym for directive gain. This usage is readily understood, as the direction will be specified, or directional dependence implied. Later editions of the IEEE Dictionary<ref name="IEEEdict1997"/> specifically endorse this usage; nevertheless it has yet to be universally adopted.
| |
| | |
| ==Relation to beam width==
| |
| | |
| The beam solid angle, represented as <math>\Omega_A</math>, is defined as the solid angle which all power would flow through if the antenna radiation intensity were constant and maximum value. If the beam solid angle is known, then directivity can be calculated as: | |
| | |
| :<math>D = \frac{4\pi}{\Omega_A}</math> | |
| | |
| ...which simply calculates the ratio of the beam solid angle to the total surface area of the sphere it intersects.
| |
| | |
| The beam solid angle can be approximated for antennas with one narrow major lobe and very negligible minor lobes, by simply multiplying the half-power [[beamwidth]]s (in radians) in two perpendicular planes. The half-power beamwidth is simply the angle in which the radiation intensity is at least half of the peak radiation intensity.
| |
| | |
| The same calculations can be performed in degrees rather than in radians:
| |
| | |
| :<math>D \approx 4\pi\frac{(\frac{180}{\pi})^2}{\Theta_{1d}\Theta_{2d}} = \frac{41253}{\Theta_{1d}\Theta_{2d}}</math>
| |
| | |
| ...where <math>\Theta_{1d}</math> is the half-power beamwidth in one plane (degrees) and <math>\Theta_{2d}</math> is the half-power beamwidth in a plane at a right angle to the other (degrees). | |
| | |
| In planar arrays, a better approximation is:
| |
| | |
| :<math>D \approx \frac{32400}{\Theta_{1d}\Theta_{2d}}</math>
| |
| | |
| ==Expression in decibels== | |
| | |
| The directivity is rarely expressed as the unitless number <math>D</math>. Rather, the directivity is usually expressed as a [[Decibel#Antenna measurements|decibel]] comparison to a reference antenna:
| |
| | |
| :<math>D_{dB} = 10 \cdot \log_{10}\left[\frac{D}{D_{reference}}\right]</math>
| |
| | |
| The reference antenna is usually the theoretical perfect [[isotropic radiator]] which radiates uniformly in all directions and hence has a directivity of 1. The calculation is therefore simplified to:
| |
| | |
| :<math>D_{dBi} = 10 \cdot \log_{10}\left[D\right]</math>
| |
| | |
| Another common reference antenna is the theoretical perfect half-wave [[dipole]] which radiates perpendicular to itself with a directivity of 1.64:
| |
| | |
| :<math>D_{dBd} = 10 \cdot \log_{10}\left[\frac{D}{1.64}\right]</math> | |
| | |
| ==Accounting for polarization==
| |
| | |
| When [[Polarization (antenna)|polarization]] is taken under consideration, three additional measures can be calculated:
| |
| | |
| ===Partial directive gain===
| |
| | |
| '''Partial directive gain''' is the power density in a particular direction and ''for a particular component of the polarization'', divided by the average power density for all directions and ''all polarizations''. For any pair of orthogonal polarizations (such as left-hand-circular and right-hand-circular), the individual power densities simply add to give the total power density. Thus, if expressed as dimensionless ratios rather than in dB, the total directive gain is equal to the sum of the two partial directive gains.<ref name="IEEEdict1997"/>
| |
| | |
| ===Partial directivity===
| |
| | |
| '''Partial directivity''' is calculated in the same manner as the partial directive gain, but without consideration of antenna efficiency (i.e. assuming a lossless antenna). It is similarly additive for orthogonal polarizations.
| |
| | |
| ===Partial gain===
| |
| | |
| '''Partial gain''' is calculated in the same manner as gain, but considering only a certain polarization. It is similarly additive for orthogonal polarizations.
| |
| | |
| {{main|Antenna gain}}
| |
| | |
| ==In other fields==
| |
| | |
| The term directivity is also used in [[acoustics]], as is a measure of the radiation pattern from a source indicating how much of the total energy from the source is radiating in a particular direction. In electro-acoustics, these patterns commonly include omni-directional, cardioid and hyper-cardioid microphone polar patterns. A loudspeaker with a high degree of directivity (narrow dispersion pattern) can be said to have a high ''Q''.<ref name="rane_audio"/>
| |
| | |
| ==References==
| |
| {{Reflist|
| |
| refs=
| |
| <ref name="antenna_tutorial">[http://www.antenna-theory.com/basics/directivity.php Antenna Tutorial]</ref>
| |
| <ref name="IEEEdict1997">Institute of Electrical and Electronics Engineers, “The IEEE standard dictionary of electrical and electronics terms”; 6th ed. New York, N.Y., Institute of Electrical and Electronics Engineers, c1997. IEEE Std 100-1996. ISBN 1-55937-833-6 [ed. Standards Coordinating Committee 10, Terms and Definitions; Jane Radatz, (chair)]</ref>
| |
| <ref name="rane_audio">[http://www.rane.com/par-q.html Rane Professional Audio Reference Home<!-- Bot generated title -->]</ref>
| |
| }}
| |
| * {{cite book
| |
| | first = Christopher
| |
| | last = Coleman
| |
| | authorlink =
| |
| | coauthors =
| |
| | year = 2004
| |
| | month =
| |
| | title = An Introduction to Radio Frequency Engineering
| |
| | chapter = Basic Concepts
| |
| | chapterurl =
| |
| | editor =
| |
| | others =
| |
| | edition =
| |
| | pages =
| |
| | publisher = Cambridge University Press
| |
| | location =
| |
| | isbn = 0-521-83481-3
| |
| | url =
| |
| }}
| |
| | |
| [[Category:Antennas (radio)]]
| |
Hi there. Let me clairvoyance - cartoonkorea.com, begin by introducing the writer, her title is Sophia. I've usually loved living in Mississippi. Since he was 18 he's been working as an info officer but he plans on changing it. The favorite pastime for him certified psychics and his children is to play lacross and he would never give it up.
Also visit my website :: live psychic reading [myoceancounty.net]