[0001] The present invention concerns a planar antenna, in particular employable in fixed
and mobile terminals adapted for reception of satellite TV and for multimedia satellite
links, that is reliable, simple and efficient, having a wide operation bandwidth,
a very limited volumetric dimensions, and being extremely inexpensive with reference
to the manufacturing, installation, and maintenance costs.
[0002] The present invention further concerns the process of manufacturing such planar antenna.
[0003] It is known that for reception of satellite TV and multimedia satellite links, for
instance belonging to the Internet, reflector antennas are presently normally used.
[0004] However, reflector antennas suffer from some drawbacks, such as an insufficient aperture
efficiency, significant volumetric dimensions, the need of an accurate electric adjustment,
and high manufacturing, installation, and maintenance costs.
[0005] In order to solve these problems of reflector antennas, radiating element array planar
antennas have been developed.
[0006] However, even this type of antennas suffers from some drawbacks, substantially due
to the fact that this antenna architecture has considerable combination losses of
the feeding network or BFN (
Beam Forming Network) of the individual radiating elements.
[0007] In fact, differently from the reflector, a planar antenna benefits in terms of antenna
gain from the coherent sum of the contributions due to the individual elements constituting
the planar antenna. Such contributions must be coherently added through a Radio Frequency
or RF combiner.
[0008] The implementing technology of a planar antenna is nowadays essentially based on
the microstrips. Although the microstrip approach entails advantages in terms of dimensions,
ensuring very small thicknesses, microstrip planar antennas have significant losses
due to ohmic dissipation of the same microstrip lines. Some recently developed solutions
in planar technology may mitigate this problem but certainly they cannot solve it,
especially at high frequencies, particularly starting from 10 GHz, usuallly used in
satellite applications.
[0009] The ohmic loss associated with the BFN, that grows with the increase of the antenna
dimensions, limits the attainment of the antenna gain, at the same time making the
same antenna inefficient. This means that the antenna does not fully exploit its size.
[0010] Technologies developed in order to obviate the BFN ohmic losses, resulting in the
"active antennas", are based on active components. These, suitably arranged within
the BFN as close to the radiating element as possible, allows to minimise the contribution
of such losses, thus improving the efficiency and hence the gain of the antennas.
The possibility of directly inserting onto the radiating element an active element,
such as a Low Noise Amplifier or LNA, a Solid State Power Amplifier or SSPA, or a
transmitter/receiver or Tx/Rx module, further allows to control, for instance through
the use of phase shifters, the shape and the aim of the antenna radiation pattern.
[0011] However, active antennas suffer from the drawback of being particularly complex and,
consequently, expensive. Moreover, the use of active elements requires an accurate
tracking in amplitude and phase (tuning) of the same, that is hard to achieve and
it depends on environmental parameters (for instance temperature), especially with
the increase of the operating frequency.
[0012] A further antenna type is the slotted array antenna one. These antennas essentially
consist in a wave guide provided with suitably designed slots which interrupt the
current lines present onto the same guide and which consequently become small radiating
elements.
[0013] Depending on the desired antenna radiative characteristics, the wave guide structure
may terminate with either a resistive termination, and in this case there is a so-called
travelling wave antenna, or a simple short circuit termination, and this case there
is a resonant antenna.
[0014] However, even slot antennas suffer from some drawbacks.
[0015] First of all, form the configuration point of view, this antenna architecture substantially
achieves a linear, not planar, antenna. Hence, in the case when a planar antenna is
required, it is necessary to have a set of linear slot antennas provided with a series
of combiners which allow the coherent sum of the inputs/outputs of the individual
linear antennas. Consequently, the resulting planar antennas are complex, they have
significant ohmic losses, and their dimensions are increased by the thickness required
by the various components.
[0016] Moreover, the simultaneous double polarization, as well as the circular polarization,
are obtainable only with difficulty and by considerably increasing the antenna complexity.
[0017] Furthermore, the aim of the radiation pattern peak moves with frequency.
[0018] Still, in case of a short circuit, or resonant, termination antenna, the operating
bandwidth is limited to few percents, of the order of 3-5%, around the central frequency,
and a very high accuracy in manufacturing the slots is also necessary.
[0019] Finally, in case of use of a resistive termination, or travelling wave, antenna the
efficiency of the individual linear antenna is lower than the theoretical one, since,
due to design requirements, for its own operation, the antenna must absolutely dissipate
part of its power on the end resistive load.
[0020] Document
US 6246264 discloses a lightweight modular low-level reconfigurable beamformer for array antennas,
wherein the BFN is designed by dividing a large array into a discrete number of smaller
subarrays of radiating elements.
[0021] Document
US 6225960 discloses a microwave planar antenna, and the related manufacturing process, including
a pair of rectangular section channel pluralities, communicating with cavities of
receiving square-section horns, each plurality of channels acting as waveguides for
differently polarised microwave signals separated by the specific conformation of
the cavities.
[0022] Document
US 5909191 discloses a multiple beam or phased array antenna and beamforming network integrated
into a single package, wherein the antenna element and beamforming network comprises
a plurality of radiators and a number of microwave components.
[0023] It is therefore an object of the present invention to provide a planar antenna, in
particular employable in high frequency applications, that is reliable, simple, and
efficient, and that has a wide operation bandwidth.
[0024] It is still an object of the present invention to provide such an antenna that has
a radiation pattern peak which is constant over the operation bandwidth, and that
is extremely inexpensive with reference to the manufacturing, installation, and maintenance
costs.
[0025] It is specific subject matter of the present invention an array planar antenna as
defined in independent claim 1.
[0026] Further embodiments of the array planar antenna are defined in the dependent claims
2-13.
[0027] It is still specific subject matter of the present invention a process of manufacturing
an array planar antenna as defined in independent claim 14.
[0028] Further embodiments of the process are defined in the dependent claims 15-19.
[0029] The present invention will now be described, by way of illustration and not by way
of limitation, according to its preferred embodiments, by particularly referring to
the Figures of the enclosed drawings, in which:
Figure 1 shows a perspective view of a first embodiment of the antenna according to
the invention, exploded into the forming layers;
Figure 2 shows a particular of the antenna of Figure 1;
Figure 3 shows a perspective view of a first section of the antenna of Figure 1;
Figure 4 shows a perspective view of a second section of the antenna of Figure 1;
Figures 5a and 5b respectively show an arrangement of the antenna of Figure 1 and
the related amplitude distribution over the aperture in the horizontal plane; and
Figure 6 show a second embodiment of the antenna according to the invention.
[0030] In the Figures, alike elements are indicated by same reference numbers.
[0031] With reference to Figures 1-4, it may be observed that the preferred embodiment of
the array antenna 1 according to the invention comprises a set of shaped apertures
2 tapered as a truncated square based pyramid, each one of which constitutes an array
radiating element. However, it should be understood that the square shape of the shaped
apertures 2 of the antenna of Figures 1-4 is shown by way of example and not by way
of limitation, other embodiments being able to adopt different shapes of the base
of the truncated pyramid of the apertures 2, such as for instance rectangular, circular,
hexagonal, octagonal shapes, depending on the electromagnetic characteristics which
are desired to obtain for the specific applications of the antenna. Similarly, the
truncated pyramid shape of the apertures 2 is shown by way of example and not by way
of limitation.
[0032] The apertures 2 are fed by means of a BFN network of parallel type for a fine control
of the characteristics of the antenna 1 in terms of operative bandwidth, gain, minimum
movement of the beam within the band, purity of polarization. The BFN network is based
on the use of wave guides 3 directly obtained from the bulk of the antenna 1, underneath
the radiating elements 2 of the antenna 1. In particular, it may be observed that
outputs 4 of the square wave guides of the BFN network are arranged with the cross
section tilted by 45 degrees in respect to the bases of the truncated pyramid of the
apertures 2. The antenna also comprises a wave guide input (or an output) (not shown),
having square section, that is preferably arranged either sideways to the antenna
1 or backwards, onto the surface opposite to that of the radiating apertures 2.
[0033] Obviously, the size and the shape of the wave guides 3, as well as the BFN network
configuration, depends on the electromagnetic characteristics which are desired to
obtain for the specific applications of the antenna, such as for instance on the frequency
band wherein the antenna is used.
[0034] As shown in Figures 1-4 (and more in particular in Figures 1 and 2), the antenna
1 comprises a lower layer 5, an intermediate layer 6, and an upper layer 7 (that corresponds
to the radiating elements 2), each one of which is obtained from the machining of
the material(s) used for manufacturing the antenna 1. Such machining of the three
layers 5, 6, and 7 makes a portion of the wave guides 3 of the BFN network. At the
end of the machining, the three layers 5, 6, and 7 are integrally coupled to each
other so as to make the respective portions of the BFN network wave guides 3 and the
apertures 2 correspond to each other (by way of example and not by way of limitation,
through the aid of shaped pins of a layer which insert into corresponding notches
of the adjacent layer).
[0035] In particular, the material may be either metallic or low-cost material, such as
for instance plastic that is subsequently metallised.
[0036] In the case when the used material is metallic, the machining of each one of the
three layers is a micromachining, for instance a mechanical and/or electrical one,
and the integral coupling of the three layers 5, 6, and 7 may be obtained through
standard techniques (by way of example and not by way of limitation, through laser
welding).
[0037] In the case when the used material is plastic, the machining of each one of the three
layers may be simply a moulding, and the integral coupling of the three layers 5,
6, and 7 may be obtained through standard techniques (by way of example and not by
way of limitation, through welding). In particular, after the machining of the plastic
layers, and either before or after the integral coupling, the surfaces of the wave
guides 3 and horns constituting the shaped apertures 2 are metallised.
[0038] The antenna 1 of Figures 1-4 comprises apertures 2 and two BFN networks capable to
operate with two orthogonal polarizations, linear and/or circular ones. The antenna
of Figure 1 thus allows to obtain 2 largely insulated simultaneous polarizations.
[0039] Other embodiments of the antenna according to the invention may comprise radiating
apertures and one single BFN network capable to provide a single polarization.
[0040] The characteristics of the two operating polarizations, corresponding to two separated
inputs (or outputs) of the antenna 1, are very similar over the whole operating band.
[0041] In particular, the antenna according to the invention may be used both in passive
configuration, (such as that shown in Figures 1-4) since it is characterised by extremely
reduced ohmic losses of the BFN network, and in "active antenna" configuration, i.e.
provided (always within the antenna body) with a LNA amplifier and/or a SSPA amplifier
and/or a Tx/Rx module and/or a phase shifter.
[0042] The different embodiments of the antenna according to the invention may comprise
a number of machined layers different from three, depending on the complexity of the
BFN network that is to be made, and on the possible active components of an "active
antenna" configuration.
[0043] The advantage offered by the antenna according to the present invention in respect
to the presently available reflector antennas and planar antennas and slot antennas
are considerable.
[0044] First of all, it has a percentage operating frequency bandwidth at least up to 50%.
[0045] Moreover, the antenna according to the invention may operate with any type of polarization,
for instance single linear, dual linear, single circular, dual circular, with a separation
of the orthogonal components better than 30 dB. The circular polarization may be obtained
either at BFN network level, or through the insertion of suitable dielectric "slabs"
into the radiating apertures, or through the use of an external polariser.
[0046] Furthermore, the antenna according to the invention has an aperture efficiency substantially
equal to the theoretical value, with a whole antenna efficiency better than 85%.
[0047] Still, the technology of the antenna, based on the wave guides, causes it to be preferably
used at high frequencies, up to the order of 100 GHz.
[0048] Still, ease of manufacturing and possibility of making the antenna according to the
invention even in low-cost material, such as for instance metallised plastic, make
it particularly attractive for mass productions.
[0049] The antenna according to the invention may be used in great many applications, as
for instance: TV satellite reception in Ku band; multimedia satellite link in Ku band;
multimedia satellite link in Ka band; high definition TV satellite reception in Ka
band; connection between radio links from Ku band upwards; use as mobile terminal
on transport means, such as trains, cars, airplanes, and shifts, in C, Ka, Ku, Q/V,
and W bands; use as fixed terminal; and use for terrestrial remote sensing applications
(repeater/calibrator) in C band and in X band.
[0050] In particular, for most of the aforementioned applications, the antenna according
to the invention may need a spatial discrimination among contiguous satellites.
[0051] As shown in Figure 5a, this is easily obtainable by positioning the antenna 1 at
45 degrees (in case of square antenna as that of Figures 1-4) and exploiting the natural
taper of amplitude illumination (amplitude taper) towards the edge of the same antenna
1 in the horizontal plane, resulting in very low side lobes of the radiation pattern.
In other words, this shape of amplitude distribution corresponds to an antenna far
field radiation pattern characterised by extremely low side lobes, capable of discriminating
the reception of the desired signal from that of interfering signals coming from other
satellites located close to that of interest. In particular, the antenna 1 of Figures
1-4 provides for linear polarizations which are parallel (horizontal) and perpendicular
(vertical) in respect to the aforesaid horizontal plane (that is the reason because
the output square wave guide horns 4 of the BFN network are placed with the cross
section tilted by 45 degrees in respect to the bases of the truncated pyramid of the
apertures 2).
[0052] Another manner for obtaining an amplitude taper capable of providing for a spatial
discrimination, slightly more complex in terms of layout of the BFN network, is the
one shown in Figure 6, wherein an antenna 1' according to the invention comprises
a set of square radiating apertures 2 arranged in an array having a substantially
rhombus-like configuration, wherein the number of radiating apertures 2 in the vertical
columns decreases from the centre of the antenna towards the sides of it.
[0053] The preferred embodiments have been above described and some modifications of this
invention have been suggested, but it should be understood that those skilled in the
art can make other variations and changes, without so departing from the related scope
of protection, as defined by the following claims.
1. Array planar antenna (1, 1'), comprising a set of at least two reception and/or transmission
radiating elements and wave guides (3) arranged within the bulk of the antenna (1,
1'), each one of said radiating elements comprising an aperture (2), characterised in that said at least two reception and/or transmission radiating elements are fed by means
of at least one beam forming network or BFN of parallel type, said at least one BFN
network being made through said wave guides (3) arranged within the bulk of the antenna
(1, 1'), whereby each one of the apertures (2) is an input and/or output horn (4)
of a wave guide (3) of the BFN network.
2. Array antenna according to claim 1, characterised in that it comprises one BFN network for each wave polarization which the antenna is capable
of receiving and/or transmitting.
3. Array antenna according to claim 1 or 2, characterised in that it comprises at least one input and/or output wave guide connection, arranged either
sideways and/or onto the surface opposite to that of the apertures (2).
4. Array antenna according to any one of the preceding claims, characterised in that at least one aperture (2) has square or rectangular or circular or hexagonal or octagonal
shape.
5. Array antenna according to any one of the preceding claims, characterised in that at least one aperture (2) is tapered.
6. Array antenna according to claim 5, characterised in that said at least one aperture (2) has a truncated pyramid or truncated cone shape.
7. Array antenna according to any one of the preceding claims, characterised in that it simultaneously receives and/or transmits dual polarization waves.
8. Array antenna according to any one of the preceding claims, characterised in that the apertures (2) are arranged in a square array, each one of the apertures (2) having
truncated square based pyramid shape and being fed by an output (4) of a corresponding
square wave guide (3) of said at least one BFN network the cross section of which
is tilted by 45 degrees in respect to the square base of the truncated pyramid of
the aperture (2).
9. Array antenna according to any one of claims 1 to 7, characterised in that each one of the apertures (2) has a truncated square based pyramid shape and is fed
by an output (4) of a corresponding square wave guide (3) of said at least one BFN
network the cross section of which corresponds to a square base of the truncated pyramid
of the aperture (2), the set of the apertures (2) being arranged in an array having
a rhombus-like configuration, wherein the number of apertures (2) in the vertical
columns of the array decreases from the centre of the antenna towards the sides of
it.
10. Array antenna according to any one of the preceding claims, characterised in that it further comprises micro wave active components.
11. Array antenna according to any one of the preceding claims, characterised in that it is capable of operating in C band and/or in Ku band and/or in Ka band and/or in
Q/V band and/or in W band.
12. Array antenna according to any one of the preceding claims, characterised in that it is made in metallic material.
13. Array antenna according to any one of claims 1 to 11, characterised in that it is made in plastic material, the surfaces of the wave guides (3) and of the apertures
(2) being metallised.
14. Process of manufacturing an array planar antenna (1, 1') according to any one of the
preceding claims 1-13,
characterised in that it comprises the following steps:
- manufacturing at least two layers (5, 6, 7), so as to make in each one of said at
least two layers (5, 6, 7) at least one respective portion of the wave guides (3)
of the BFN network and/or of the apertures (2);
- integrally coupling said at least two layers (5, 6, 7), so as to make the respective
portions of adjacent layers correspond to each other.
15. Process according to claim 14, characterised in that the array antenna to manufacture is an array antenna according to claim 12, and in that the step of manufacturing said at least two layers (5, 6, 7) is a step of mechanical
and/or electrical micromachining.
16. Process according to claim 15, characterised in that the step of integrally coupling said at least two layers (5, 6, 7) is a step of welding.
17. Process according to claim 14,
characterised in that the array antenna to manufacture is an array antenna according to claim 13, and
in that it further comprises the following step:
- metallising the surfaces of the wave guides (3) and of the apertures (2).
18. Process according to claim 17, characterised in that the step of manufacturing said at least two layers (5, 6, 7) is a step of moulding.
19. Process according to claim 17 or 18, characterised in that the step of integrally coupling said at least two layers (5, 6, 7) is a step of welding.
1. Array-Planarantenne (1, 1'), umfassend einen Satz von zumindest zwei Empfangs- und/oder
Sendestrahlungselementen und Hohlleitern (3), die innerhalb der Hauptmasse der Antenne
(1, 1') angeordnet sind, wobei jedes der Strahlungselemente eine Apertur (2) aufweist,
dadurch gekennzeichnet, dass die zumindest zwei Empfangs- und/oder Sendestrahlungselemente mittels zumindest eines
Beam-Forming-Netzwerks oder BFN des Parallel-Typs gespeist werden, wobei das zumindest
eine BFN-Netzwerk durch die Hohlleiter (3) gebildet wird, die innerhalb der Hauptmasse
der Antenne (1, 1') angeordnet sind, wobei jede der Aperturen (2) ein Eingangs- und/oder
Ausgangshorn (4) eines Hohlleiters (3) des BFN-Netzwerks ist.
2. Array-Antenne nach Anspruch 1, dadurch gekennzeichnet, dass sie ein BFN-Netzwerk für jede Wellenpolarisation aufweist, die die Antenne empfangen
und/oder senden kann.
3. Array-Antenne nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass sie zumindest eine Eingangs- und/oder Ausgangshohlleiterverbindung aufweist, die
entweder seitlich und/oder auf der Oberfläche angeordnet ist, die derjenigen der Aperturen
(2) gegenüberliegt.
4. Array-Antenne nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass zumindest eine Apertur (2) eine quadratische oder rechtwinkelige oder kreisförmige
oder sechseckige oder achteckige Form hat.
5. Array-Antenne nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass zumindest eine Apertur (2) verjüngt ist.
6. Array-Antenne nach Anspruch 5, dadurch gekennzeichnet, dass die zumindest eine Apertur (2) eine abgeschnittene Pyramiden- oder abgeschnittene
Konusform hat.
7. Array-Antenne nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass sie Wellen mit dualer Polarisation gleichzeitig empfängt und/oder sendet.
8. Array-Antenne nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die Aperturen (2) in einem quadratischen Array angeordnet sind, wobei jede der Aperturen
(2) eine abgeschnittene Pyramidenform mit quadratischer Basis hat und durch eine Ausgabe
(4) eines entsprechenden quadratischen Hohlleiters (3) des zumindest einen BFN-Netzwerks
gespeist wird, dessen Querschnitt in Bezug auf die quadratische Basis der abgeschnittenen
Pyramide der Apertur (2) um 45 Grad geneigt ist.
9. Array-Antenne nach einem der Ansprüche 1 bis 7, dadurch gekennzeichnet, dass jede der Aperturen (2) eine abgeschnittene Pyramidenform mit quadratischer Basis
hat und durch eine Ausgabe (4) eines entsprechenden quadratischen Hohlleiters (3)
des zumindest einen BFN-Netzwerks gespeist wird, dessen Querschnitt einer quadratischen
Basis der abgeschnittenen Pyramide der Apertur (2) entspricht, wobei der Satz der
Aperturen (2) in einem Array angeordnet ist, das eine rautenartige Konfiguration aufweist,
wobei die Anzahl von Aperturen (2) in den vertikalen Spalten des Arrays von der Mitte
der Antenne in Richtung ihrer Seiten abnimmt.
10. Array-Antenne nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass sie ferner mikrowellen-aktive Komponenten aufweist.
11. Array-Antenne nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass sie in einem C-Band und/oder in einem Ku-Band und/oder in einem Ka-Band und/oder
in einem Q/V-Band und/oder in einem W-Band arbeiten kann.
12. Array-Antenne nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass sie in einem metallischen Material hergestellt ist.
13. Array-Antenne nach einem der Ansprüche 1 bis 11, dadurch gekennzeichnet, dass sie in einem Kunststoffmaterial hergestellt ist, wobei die Oberflächen der Hohlleiter
(3) und der Aperturen (2) metallisiert sind.
14. Verfahren zum Herstellen einer Array-Planarantenne (1, 1') nach einem der vorhergehenden
Ansprüche 1- 13,
dadurch gekennzeichnet, dass es die folgenden Schritte umfasst:
- Herstellen zumindest zweier Schichten (5, 6, 7), um in jeder der zumindest zwei
Schichten (5, 6, 7) zumindest einen jeweiligen Bereich der Hohlleiter (3) des BFN-Netzwerks
und/oder der Aperturen (2) auszubilden;
- integrales Koppeln der zumindest zwei Schichten (5, 6, 7), um die jeweiligen Bereiche
benachbarter Schichten einander entsprechen zu lassen.
15. Verfahren nach Anspruch 14, dadurch gekennzeichnet, dass die herzustellende Array-Antenne eine Array-Antenne nach Anspruch 12 ist, und dadurch,
dass der Schritt zum Herstellen der zumindest zwei Schichten (5, 6, 7) ein Schritt
einer mechanischen und/oder elektrischen Mikrobearbeitung ist.
16. Verfahren nach Anspruch 15, dadurch gekennzeichnet, dass der Schritt zum integralen Koppeln der zumindest zwei Schichten (5, 6, 7) ein Schweißschritt
ist.
17. Verfahren nach Anspruch 14,
dadurch gekennzeichnet, dass die herzustellende Array-Antenne eine Array-Antenne nach Anspruch 13 ist, und dadurch,
dass es ferner den folgenden Schritt umfasst:
- Metallisieren der Oberflächen der Hohlleiter (3) und der Aperturen (2).
18. Verfahren nach Anspruch 17, dadurch gekennzeichnet, dass der Schritt zum Herstellen der zumindest zwei Schichten (5, 6, 7) ein Gussschritt
ist.
19. Verfahren nach Anspruch 17 oder 18, dadurch gekennzeichnet, dass der Schritt zum integralen Koppeln der zumindest zwei Schichten (5, 6, 7) ein Schweißschritt
ist.
1. Antenne planaire réseau (1, 1'), comprenant un ensemble d'au moins deux éléments rayonnants
de réception et/ou d'émission et des guides d'onde (3) agencés à l'intérieur du substrat
de l'antenne (1, 1'), chacun desdits éléments rayonnants comprenant une ouverture
(2), caractérisée en ce que lesdits au moins deux éléments rayonnants de réception et/ou d'émission sont alimentés
au moyen d'au moins un réseau conformateur de faisceau ou BFN de type parallèle, ledit
au moins un réseau BFN étant réalisé par le biais desdits guides d'onde (3) agencés
à l'intérieur du substrat de l'antenne (1, 1'), selon laquelle chacune des ouvertures
(2) est un cornet d'entrée et/ou de sortie (4) d'un guide d'onde (3) du réseau BFN.
2. Antenne réseau selon la revendication 1, caractérisée en ce qu'elle comprend un réseau BFN pour chaque polarisation d'onde que l'antenne est capable
de recevoir et/ou d'émettre.
3. Antenne réseau selon la revendication 1 ou 2, caractérisée en ce qu'elle comprend au moins une connexion de guide d'onde d'entrée et/ou de sortie, agencée
soit sur les côtés et/ou sur la surface opposée à celle des ouvertures (2).
4. Antenne réseau selon l'une quelconque des revendications précédentes, caractérisée en ce qu'au moins une ouverture (2) a une forme carrée ou rectangulaire ou circulaire ou hexagonale
ou octogonale.
5. Antenne réseau selon l'une quelconque des revendications précédentes, caractérisée en ce qu'au moins une ouverture (2) est effilée.
6. Antenne réseau selon la revendication 5, caractérisée en ce que ladite au moins une ouverture (2) a une forme de pyramide tronquée ou une forme de
cône tronqué.
7. Antenne réseau selon l'une quelconque des revendications précédentes, caractérisée en ce qu'elle reçoit et/ou émet simultanément des ondes de polarisation duale.
8. Antenne réseau selon l'une quelconque des revendications précédentes, caractérisée en ce que les ouvertures (2) sont agencées dans une matrice carrée, chacune des ouvertures
(2) ayant une forme de pyramide tronquée basée sur un carré et étant alimentée par
une sortie (4) d'un guide d'onde carré correspondant (3) dudit au moins un réseau
BFN dont la section transversale est inclinée de 45 degrés par rapport à la base carrée
de la pyramide tronquée de l'ouverture (2).
9. Antenne réseau selon l'une quelconque des revendications 1 à 7, caractérisée en ce que chacune des ouvertures (2) a une forme de pyramide tronquée de base carrée et est
alimentée par une sortie (4) d'un guide d'onde carré correspondant (3) dudit au moins
un réseau BFN dont la section transversale correspond à une base carrée de la pyramide
tronquée de l'ouverture (2), l'ensemble des ouvertures (2) étant agencées dans une
matrice ayant une configuration semblable à un losange, dans laquelle le nombre d'ouvertures
(2) dans les colonnes verticales de la matrice diminuent du centre de l'antenne vers
les côtés de celle-ci.
10. Antenne réseau selon l'une quelconque des revendications précédentes, caractérisée en ce qu'elle comprend en outre des composants réagissant aux microondes.
11. Antenne réseau selon l'une quelconque des revendications précédentes, caractérisée en ce qu'elle est capable de fonctionner dans la bande C et/ou dans la bande Ku et/ou dans
la bande Ka et/ou dans la bande Q/V et/ou dans la bande W.
12. Antenne réseau selon l'une quelconque des revendications précédentes, caractérisée en ce qu'elle est faite en un matériau métallique.
13. Antenne réseau selon l'une quelconque des revendications 1 à 11, caractérisée en ce qu'elle est faite en un matériau plastique, les surfaces des guides d'onde (3) et des
ouvertures (2) étant métallisées.
14. Procédé de fabrication d'une antenne planaire réseau (1, 1') selon l'une quelconque
des revendications 1 à 13,
caractérisé en ce qu'il comprend les étapes suivantes :
- fabrication d'au moins deux couches (5, 6, 7) de sorte à faire dans chacune desdites
au moins deux couches (5, 6, 7) au moins une partie respective des guides d'onde (3)
du réseau BFN et/ou des ouvertures (2) ;
- couplage intégral desdites au moins deux couches (5, 6, 7) de sorte à faire en sorte
que les parties respectives de couches adjacentes correspondent les unes aux autres.
15. Procédé selon la revendication 14, caractérisé en ce que l'antenne réseau à fabriquer est une antenne réseau selon la revendication 12, et
en ce que l'étape de fabrication desdites au moins deux couches (5, 6, 7) est une étape de
microusinage mécanique et/ou électrique.
16. Procédé selon la revendication 15, caractérisé en ce que l'étape de couplage intégral desdites au moins deux couches (5, 6, 7) est une étape
de soudage.
17. Procédé selon la revendication 14,
caractérisé en ce que l'antenne réseau à fabriquer est une antenne réseau selon la revendication 13, et
en ce qu'il comprend en outre l'étape suivante :
- métallisation des surfaces des guides d'onde (3) et des ouvertures (2).
18. Procédé selon la revendication 17, caractérisé en ce que l'étape de fabrication desdites au moins deux couches (5, 6, 7) est une étape de
moulage.
19. Procédé selon la revendication 17 ou 18, caractérisé en ce que l'étape de couplage intégral desdites au moins deux couches (5, 6, 7) est une étape
de soudage.