FIELD OF THE INVENTION
[0001] The present invention relates to the field of antenna systems, and is more particularly
concerned with steerable antennas for transmitting and/or receiving electromagnetic
signals.
BACKGROUND OF THE INVENTION
[0002] It is well known in the art to use steerable (or tracking) antennas to communicate
with a relatively moving target over a wide scan angle. Especially in the aerospace
industry, such steerable antennas preferably need to have high gain, low mass, and
high reliability. The antennas used in these wide scan applications typically include
two rotation axes requiring two rotary joints, cable cassettes or other means of propagating
the signal over each of the rotation axis. The elimination or the reduction of the
number of RF (radio-frequency) rotary joints is highly desirable from a cost, signal
loss and reliability perspective. Some solutions have been developed to eliminate
rotary joints in wide angle (essentially greater than 90 degrees) steerable antennas
but they are affected by the presence of a singularity which affects the ability to
track a target when the beam becomes substantially aligned with one of the rotation
axes. This singularity is referred to as the key-hole effect, because of the time
required for the rotation around the axis presenting a singularity to catch up with
the target rate of motion. Generally for satellite based systems, this singularity
is associated with the use of an azimuth rotation axis that points to the earth (sub-satellite
point or nadir). For certain missions, this singularity has little impact on the overall
system performance or complexity but in many cases, especially when a high gain is
required, it can lead to very high actuator speed in order to maintain an adequate
link as the targets gets aligned with a rotation axis. For a steerable antenna equipped
with a nadir pointing azimuth rotation axis, this happens when the sub-satellite track
makes a pass very near the intended target. This can become a driver in the choice
of the actuator and increase the complexity of the drive electronics system. Larger
rotary actuators with more complex and costly drive electronics are then required.
A solution having no rotary joints is illustrated in Figure 1 (ref
US Patent No. 6,747,604). This configuration has a key-hole or singularity at nadir (pointing towards the
Earth center for an antenna mounted on an Earth facing panel of an orbiting spacecraft)
since one of the rotation axis is pointing towards nadir. A different configuration
using an elevation over azimuth gimbal is shown in Figure 2. This approach has only
one rotary joint but also suffers from the key-hole effect at nadir. Similarly, the
approach taught in
US Patent Application Publication No. 2010/028082 A1, with three rotary joints, also has a keyhole (singularity).
US Patent No. 6 285 338 describes a method and apparatus for eliminating the key-hole problem of an azimuth-elevation
gimbal antenna. Accordingly, there is a need for an improved steerable antenna configuration.
SUMMARY OF THE INVENTION
[0003] It is therefore a general object of the present invention to provide an improved
steerable antenna architecture, or configuration, that solves the above-mentioned
problems for optimal steering of transmitting and/or receiving beam over wide scan
angles, essentially greater than 90 degrees.
[0004] An advantage of the present invention is that the architecture is capable of steering
the beam on almost a full hemisphere (2· steradians).
[0005] Another advantage of the present invention is that there are no singularities or
key-holes within the coverage area, therefore avoiding the need for high speed actuation
of the rotary actuators and the associated complexity and cost.
[0006] A further advantage of the present invention is that antenna architecture requires
only a single RF signal rotary mechanism such as RF rotary joint or flex waveguide
or flexible RF cable, therefore improving the reliability of the antenna system.
[0007] Still another advantage of the present invention is that the geometry of the antenna
can be optimized to minimize the mass and size of the antenna moving parts.
[0008] Still another advantage of the present invention is that the stowed and dynamic envelope
of the antenna can be optimized.
[0009] Yet another advantage of the present invention is that the shape of the reflectors,
their relative position as well as their orientation can be optimized to provide the
best mass, moving mass, stowed volume and swept volume. The beam generated by the
main reflector does not have to be orthogonal to the axis defined by the feed source
phase center and the center of the sub-reflector (feed axis). The angle of the beam
with the feed axis should however be at least half of the angular width of the coverage
area taken along the direction of its narrowest dimension.
[0010] According to an aspect of the present invention there is provided a transmitting
and/or receiving steerable antenna configuration for optimal beam steering of an electromagnetic
signal over wide scan angles within a pre-determined coverage area of the antenna,
said antenna configuration comprising:
- a sub-reflector and main reflector assembly defining an antenna focal point located
substantially adjacent to a reflecting surface of a main reflector;
- a transmitting and/or receiving signal feed chain having a signal source located adjacent
to the antenna focal point and defining a feed axis substantially pointing towards
a sub-reflector intersection point, the main reflector generating a signal beam having
a beam axis defining a beam angle with the feed axis;
wherein
- a first rotation member rotating the feed chain and the sub-reflector and main reflector
assembly about a first rotation axis generally perpendicular to the feed axis and
not intersecting with the coverage area; and
- a second rotation member rotating one of the main reflector and the sub-reflector
and main reflector assembly relative to the signal feed chain about a second rotation
axis substantially aligned with the feed axis, the second rotation member being rotated
by the first rotation member.
[0011] Conveniently, the beam angle is at least half of an angular width of a narrowest
dimension of the pre-determined coverage area defining a narrowest angular width of
the coverage area.
[0012] In one embodiment, the sub-reflector intersection point is located adjacent a geometrical
center of a sub-reflector of the assembly.
[0013] Conveniently, the main reflector surface and a surface of a sub-reflector of the
assembly are corresponding sections of respective conical function surfaces.
[0014] Typically, at least one of the main reflector surface and the sub-reflector surface
is shaped so as to achieve a signal gain pattern of the antenna assembly for substantially
matching a predetermined signal gain pattern.
[0015] Other objects and advantages of the present invention will become apparent from a
careful reading of the detailed description provided herein, within appropriate reference
to the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In the annexed drawings, like reference characters indicate like elements throughout.
Figure 1 is a top perspective view of a prior art steerable antenna with no rotary joint and
a key-hole singularity;
Figure 2 are top plan, front elevation, side elevation and bottom plan views of a prior art
steerable antenna with one rotary joint and a key-hole singularity;
Figures 3 and 3a are a top perspective view and a side elevation view, respectively, of a steerable
antenna in accordance with an embodiment of the present invention, with no key-hole
singularity;
Figure 4 is schematic view, showing the geometry of a steerable antenna in accordance with
the embodiment of Figure 3, with no key-hole singularity, and using a flat sub-reflector
and a parabolic main reflector to generate the antenna signal beam;
Figure 5 is schematic view, showing the geometry of a steerable antenna in accordance with
another embodiment of the present invention, with no key-hole singularity, and using
a hyperbolic sub-reflector and a parabolic main reflector to generate the antenna
signal beam;
Figure 6 is schematic view, showing the geometry of a steerable antenna in accordance with
another embodiment of the present invention, with no key-hole singularity, and using
a flat sub-reflector and a parabolic main reflector substantially offset from the
feed axis to generate the antenna signal beam; and
Figure 7 is a schematic view of a typical coverage area for the embodiment of Figure 3 mounted
on a spacecraft, showing the narrowest and widest angular widths thereof.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0017] With reference to the annexed drawings the preferred embodiments of the present invention
will be herein described for indicative purpose and by no means as of limitation.
[0018] Referring to Figures 3 and 3a, there is shown a steerable antenna 10 for allowing
transmission and/or reception of an electromagnetic signal within an antenna coverage
region 14, as shown by the shaded area in Figure 7, over a predetermined surface,
such as the surface of the Earth. The electromagnetic signal travels through a feed
chain and between a feed source 18 and a target. The target moves within the antenna
coverage region 14 in which the antenna signal beam 12 is to be steered.
[0019] Although the antenna 10 described hereinafter is mounted on the earth facing panel
24 or deck of a satellite pointing at the Earth surface (not shown) with the target
being a specific location thereon, it should be understood that any other configuration
of a similar antenna such as a ground antenna facing at orbiting satellites could
be considered without departing from the scope of the present invention.
[0020] The antenna 10 includes a dual reflector system or assembly 26. The latter defines
a sub-reflector surface 27 and a main reflector surface 28 for reflecting the electromagnetic
signal between the feed source 18 and the target, and therefore generates the antenna
signal beam 12 defining a beam axis 13. The sub-reflector surface 27 and main reflector
surface 28 define a focal point 30 of the system 26. The feed source aperture center
point is substantially located close or adjacent to the focal point 30 of the system
26. The feed source 18 is pointing substantially at the sub-reflector intersection
point 32 such that the feed source axis 40 intersects with the focal point 30 and
the sub-reflector intersection point 32. The portion of the electromagnetic signal
reaching the main reflector surface 28 is reflected with a beam axis 13 at angle α
from the feed axis 40. The angle α is at least as large as half of the angular width
or direction of the narrowest dimension 15 of the coverage area 14 (see Figure 7),
thus defining a narrowest angular width of the coverage area 14.
[0021] A first rotating member, preferably a rotary actuator 42 or the like, rotates the
dual reflector system 26 and feed source 18 about a first rotation axis RA1, extending
generally perpendicularly to the feed axis 40 and not intersecting with the coverage
area, and provides nominal signal gain steering along one direction over the coverage
region 14. Preferably, the actuator 42 rotates the dual reflector system 26 and feed
source 18 such that the beam 12 scans about the angular width 16 or direction of the
widest dimension 16 of the coverage area 14 (see Figure 7) thus defining a widest
angular width, or along the main track of the target, between a first limit position
θ
1 a second limit position θ
2, such as over a range of about 180 degrees.
[0022] Typically, the nominal sub-reflector surface 27 and the main reflector surface 28
are each a section of a conical function surface, preferably a parabolic surface (as
in the sub-reflector 27 of the embodiment 10' in Figure 5 and in the main reflector
28 of embodiments 10, 10" in Figures 3 to 4 and 6), hyperbolic surface, ellipsoid
or a flat surface (as in the sub-reflector 27 of the embodiments 10, 10" in Figures
3 to 4 and 6 and in the main reflector 28 of the embodiment 10' in Figure 5). At least
one of the nominal sub-reflector surface 27 and the main reflector surface 28 can
be respectively shaped so as to achieve a signal gain pattern of the antenna assembly
for substantially matching a predetermined signal gain pattern.
[0023] The antenna 10 further includes a second rotating member, preferably a rotary actuator
46 or the like, that rotates the dual reflector system 26 about a second rotation
axis RA2, substantially aligned or collinear with the feed axis 40, between a first
position ϕ
1 and a second position ϕ
2; whereby the beam 12 is scanned along an arc-shaped line over the coverage region
14. Typically, the rotary actuator 46 rotates over a range of at most about 180 degrees
so as to remain away from any singularity, although it could physically span over
360 degrees. Preferably, the rotary actuator 46 rotates the dual reflector system
26 such that the beam 12 scans substantially about the narrowest angular width 15
of the coverage area. When the sub-reflector 27 is substantially axi-symmetrical around
the feed axis 40, the rotary actuator 46 generally rotates only the main reflector
28, as it could have been done with an antenna configuration of Figure 4.
[0024] The dual reflector system 26 and feed source 18, and typically the second rotary
actuator 46, are rotated about a rotation axis RA1 extending generally perpendicularly
to the feed axis 40 (RA2) and not intersecting with the coverage area, so that the
antenna 10 provides a predetermined signal gain over the coverage region 14, with
no singularity.
[0025] Although not described hereinabove, encoders or the like are preferably used for
providing feedback on the angular positions θ, ϕ of both RA1 and RA2 actuators 42,
46, respectively.
1. A transmitting and/or receiving steerable antenna configuration (10) for optimal beam
steering of an electromagnetic signal over wide scan angles within a pre-determined
coverage area (14) of the antenna, said antenna configuration (10) comprising:
- a sub-reflector and main reflector assembly (26) defining an antenna focal point
(30) located substantially adjacent to a reflecting surface (28) of a main reflector;
- a transmitting and/or receiving signal feed chain having a signal source (18) located
adjacent to the antenna focal point (30) and defining a feed axis (40) substantially
pointing towards a sub-reflector intersection point (32), the main reflector (28)
generating a signal beam (12) having a beam axis (13) defining a beam angle (α) with
the feed axis (40);
being
characterized by
- a first rotation member (42) rotating the feed chain (18) and the sub-reflector
and main reflector assembly (26) about a first rotation axis (RA1) generally perpendicular
to the feed axis (40) and not intersecting with the coverage area (14); and
- a second rotation member (46) rotating one of the main reflector (28) and the sub-reflector
and main reflector assembly (26) relative to the signal feed chain (18) about a second
rotation axis (RA2) substantially aligned with the feed axis (40), the second rotation
member (46) being rotated by the first rotation member (42).
2. An antenna configuration as defined in claim 1, characterized in that the beam angle (α) is at least half of an angular width of a narrowest dimension
(15) of the pre-determined coverage area (14) defining a narrowest angular width of
the coverage area (14).
3. An antenna configuration as defined in any one of claims 1 and 2, characterized in that the sub-reflector intersection point (32) is located adjacent a geometrical center
of a sub-reflector (27) of the assembly (26).
4. An antenna configuration as defined in any one of claims 1 to 3, characterized in that the main reflector surface (28) and a surface (27) of a sub-reflector of the assembly
(26) are corresponding sections of respective conical function surfaces.
5. An antenna configuration as defined in claim 4, characterized in that at least one of the main reflector surface (28) and the sub-reflector surface (27)
is shaped so as to achieve a signal gain pattern of the antenna assembly (26) for
substantially matching a predetermined signal gain pattern.
1. Sendende und/oder empfangende steuerbare Antennenkonfiguration (10) zur optimalen
Strahlsteuerung eines elektromagnetischen Signals über weite Scanwinkel innerhalb
eines vorbestimmten Versorgungsgebiets (14) der Antenne, wobei die steuerbare Antennenkonfiguration
(10) umfasst:
- eine Subreflektor- und Hauptreflektor-Anordnung (26), durch die ein Brennpunkt (30)
der Antenne definiert ist, der sich im Wesentlichen benachbart zu einer reflektierende
Oberfläche (28) eines Hauptreflektors befindet;
- eine sendende und/oder empfangende Signalzufuhrkette, die eine zu dem Brennpunkt
(30) der Antenne benachbarte Signalquelle (18) hat und eine Zufuhrachse (40) definiert,
die im Wesentlichen auf einen Subreflektor-Schnittpunkt (32) zeigt, wobei der Hauptreflektor
(28) einen Signalstrahl (12) mit einer Strahlachse (13) erzeugt, die einen Strahlwinkel
(α) gegenüber der Zufuhrachse (40) bildet;
gekennzeichnet durch
- ein erstes Drehelement (42), das die Zufuhrkette (18) und die Subreflektor- und
Hauptreflektor-Anordnung (26) um eine erste Drehachse (RA1) dreht, die im Allgemeinen
senkrecht zu der Zufuhrachse (40) ohne Überschneidung mit dem Versorgungsgebiet (14)
liegt; und
- ein zweites Drehelement (46), das den Hauptreflektor (28) oder die Subreflektor-
und Hauptreflektor-Anordnung (26) relativ zu der Signalzufuhrkette (18) um eine zweite
Drehachse (RA2) dreht, die im Wesentlichen an der Zufuhrachse (40) ausgerichtet ist,
wobei das zweite Drehelement (46) durch das erste Drehelement (42) gedreht wird.
2. Antennenkonfiguration gemäß Anspruch 1, dadurch gekennzeichnet, dass der Strahlwinkel (α) zumindest eine Hälfte einer Winkelweite eines Mindestmaßes (15)
des vorbestimmten Versorgungsgebiets (14), durch das eine Mindest-Winkelweite des
Versorgungsgebiets (14) definiert ist, ausmacht
3. Antennenkonfiguration gemäß einem der Ansprüche 1 und 2, dadurch gekennzeichnet, dass der Subreflektor-Schnittpunkt (32) sich benachbart zu einem geometrischen Mittelpunkt
eines Subreflektors (27) der Anordnung (26) befindet.
4. Antennenkonfiguration gemäß einem der Ansprüche 1 bis 3, dadurch gekennzeichnet, dass die Hauptreflektor-Oberfläche (28) und eine Oberfläche (27) eines Subreflektors der
Anordnung (26) korrespondierende Abschnitte von jeweiligen konischen Funktionsflächen
sind.
5. Antennenkonfiguration gemäß Anspruch 4, dadurch gekennzeichnet, dass die Hauptreflektor-Oberfläche (28) und/oder die Subreflektor-Oberfläche (27) so geformt
sind, dass sie ein Signalverstärkungsmuster der Antennenanordnung (26) erzielt, um
einem vorbestimmten Signalverstärkungsmuster im Wesentlichen zu entsprechen.
1. Configuration d'antenne orientable d'émission et/ou de réception (10) pour l'orientation
optimale du faisceau d'un signal électromagnétique sur de grands angles de balayage
à l'intérieur d'une zone de couverture prédéterminée (14) de l'antenne, ladite configuration
d'antenne (10) comprenant :
- un ensemble sous-réflecteur et réflecteur principal (26) définissant un point focal
d'antenne (30) situé de façon sensiblement adjacente à une surface réfléchissante
(28) d'un réflecteur principal ;
- une chaîne d'alimentation de signal d'émission et/ou de réception ayant une source
de signal (18) située de façon adjacente au point focal d'antenne (30) et définissant
un axe d'alimentation (40) pointant sensiblement vers un point d'intersection de sous-réflecteur
(32), le réflecteur principal (28) générant un faisceau de signal (12) ayant un axe
de faisceau (13) définissant un angle de faisceau (α) avec l'axe d'alimentation (40)
;
caractérisée par :
- un premier élément de rotation (42) faisant tourner la chaîne d'alimentation (18)
et l'ensemble sous-réflecteur et réflecteur principal (26) autour d'un premier axe
de rotation (RA1) généralement perpendiculaire à l'axe d'alimentation (40) et ne croisant
pas la zone de couverture (14) ; et
- un second élément de rotation (46) faisant tourner l'un du réflecteur principal
(28) et de l'ensemble sous-réflecteur et réflecteur principal (26) par rapport à la
chaîne d'alimentation de signal (18) autour d'un second axe de rotation (RA2) sensiblement
aligné avec l'axe d'alimentation (40), le second élément de rotation (46) étant mis
en rotation par le premier élément de rotation (42).
2. Configuration d'antenne selon la revendication 1, caractérisée par le fait que l'angle de faisceau (α) est d'au moins la moitié d'une largeur angulaire de la dimension
la plus étroite (15) de la zone de couverture prédéterminée (14) définissant la largeur
angulaire la plus étroite de la zone de couverture (14).
3. Configuration d'antenne selon l'une quelconque des revendications 1 et 2, caractérisée par le fait que le point d'intersection de sous-réflecteur (32) est situé de façon adjacente à un
centre géométrique d'un sous--réflecteur (27) de l'ensemble (26).
4. Configuration d'antenne selon l'une quelconque des revendications 1 à 3, caractérisée par le fait que la surface de réflecteur principal (28) et une surface (27) d'un sous-réflecteur
de l'ensemble (26) sont des sections correspondantes de surfaces fonctionnelles coniques
respectives.
5. Configuration d'antenne selon la revendication 4, caractérisée par le fait qu'au moins l'une de la surface de réflecteur principal (28) et de la surface de sous-réflecteur
(27) est formée de façon à obtenir un motif de gain de signal de l'ensemble d'antenne
(26) pour correspondre sensiblement à un motif de gain de signal prédéterminé.