Versions Compared

Key

  • This line was added.
  • This line was removed.
  • Formatting was changed.

Anchor
A11.6
A11.6

Image RemovedImage Added

Anchor
F417F419F417
F419
Figure 417419: Antenna pattern identication dialog box


Anchor
T071T072T071
T072
Table 7172: Description of the Antenna pattern user interface in SEAMCAT

...


Description

Symbol

Type

Unit

Comments

Library

-

Library

-

Allows

to import

importing/

export

exporting of antennas from/to the library to/from the workspace

Name: name of the Antenna

 


 

 

 


Description: comments on the antenna

 


 

 

 


Antenna peak gain

gmax

S

Scalar

dBi

Describes peak antenna gain, i.e. gain in the direction of maximum radiation (main lobe)

Horizontal patterns: Horizontal

normalized

normalised antenna pattern

g

V

H (

theta

φ)

F

Function (X,Y)

dB/deg

Defined by pairs (φ, gH(φ)), where φ (deg, range 0...+360) describes the angular offset in horizontal plane with relation to the direction of maximum radiation, and gH(φ) describes the relative gain, related to the antenna maximum peak gain.

Note: gH(φ) values should be negative.

Note: The antenna pattern range definition for CDMA has been modified to match the antenna patterns specified by 3GPP (deg, range -180...+180)

Vertical patterns: Vertical

normalized

normalised antenna pattern

g

H

V (φ)

F

Function (X,Y)

dB/deg

Input angle values between –90O and 90O.

For the gain, only input negative values relative to the Antenna peak gain.

Spherical patterns: Spherical

normalized  

normalised antenna pattern

Unit

 Image Removed

body$g_{{}}^{S}\left( \varphi \right)$


 

It describes the antenna spherical radiation pattern, defined by pairs (Φ,

gS(Φ)

Unit
body$g_{{}}^{S}\left( \varphi \right)$
), where Φ (deg, range 0...+180) describes the spherical angle, and

gS(Φ)

Unit
body$g_{{}}^{S}\left( \varphi \right)$
describes the relative gain, related to the antenna maximum peak gain.

gS(Φ)

Unit
body$g_{{}}^{S}\left( \varphi \right)$
values are negative and relative to the Antenna peak gain:

cos ф= cos (θ)*cos(φ)
 




 To define the horizontal, vertical or spherical antenna patterns, the dialog dialogue window is similar to those used to enter the function dialog dialogue windows. However the an important difference is that antenna pattern dialog dialogue windows do not allow to set setting Constant parametersvalues, and they have two displays to present the entered data - the usual XY plane, and the Polar display. These are illustrated by two respective pictures below.

Image Removed Image Added

Anchor
F418F420F418
F420
Figure 418420: Antenna pattern dialog box


 Image Added

Image Removed

Anchor
F419F421F419
F421
Figure 419421: Defining antenna pattern , using XY coordinates system


 Image Added

Image Removed

Anchor
F420F422F420
F422
Figure 420422: Defining antenna pattern , using Polar coordinates system

 


By default all antennas have 0 dBi gain and are non-directional, i.e. not having any directivity patterns associated. Depending on the type of antenna to be described in the scenario, you may define it no associated directivity pattern. The antenna pattern can be defined by modifying the antenna gain and activating one or more of radiation patterns (e.g. user may feel it depending on the requirements of the scenario. For example, it may be sufficient to activate only the horizontal pattern, but if the vertical discrimination is important in the scenario, both vertical and horizontal patterns could be activated as well).It is assumed that the frequency has no impact on antenna efficiency/gain, therefore antenna gains are calculated based on pure peak gain combined with necessary angular discrimination in case of directional antennas (i.e. antennas having radiation patterns assigned in the scenario). 

 Image Added

Image Removed

Anchor
F421F423F421
F423
Figure 421423: Horizontal, vertical and Spehrical antenna pattern convention

 

...