Technical field
[0001] The present invention relates to an electrically controlled antenna array, i.e. an
antenna with a main lobe which may be controlled by varying the phases in the included
antenna elements. Such an antenna is used in radar reconnaissance equipment for example.
Background art
[0002] An antenna array of the kind intended here comprises a plurality of antenna elements
configured as rectangular wave guides lying parallel. In particular, the radiation
openings in the elements are formed as so-called broad side slits, i.e. longitudinal
slits along the wider surface of each wave guide in the antenna array. It is already
known to make the antenna lobe controllable in a plane at right angles to the longitudinal
direction of the wave guides by placing phase shifters in the feed path to each guide,
e.g. according to GB-B1.577.939. alternatingly above and below the centre line of
the wave guides, the illumination function will be phase modulated along the antenna
aperture, i.e. along the wave guides. This gives rise to large side lobe peaks in
the antenna array radiation diagram.
[0003] It is known to solve this problem by using radiation openings and elements that reduce
or eliminate the occurrence of periodical disturbances in the aperture. For example,
edge slits may be used instead of broadside slits, see "Low-Sidelobe Radar Antennas"
by H. E. Schrank from "Microwave Journal", July 1983 p 109 ff. Edge slits are difficult
to master from the electrical design aspect, particularly due to the strong electromagnetic
coupling between them, and it is therefore desirable to retain broadside slits to
obtain good side lobe suppression.
[0004] A slot array antenna with slotted wave guides is previously known from US-A-4.423.421.
This antenna is not provided with adjustable phase shifters to vary the phase of the
electromagnetic field to the wave guides in the array. The spacing between the slots
in one wave guide is different from that of another wave guide in order to produce
a symmetrical pencil beam with maximized antenna gain and reduced sidelobes, but the
pencil beam has a constant lobe direction.
Disclosure of invention
[0005] The object of the present invention is to achieve an electrically controlled antenna
array of the kind mentioned in the introduction, using broadside slits as radiation
elements, the antenna diagram of which shows substantially suppressed side lobes.
The invention is characterized as will be seen from the characterizing portion of
claim 1.
Brief description of drawings
[0006] The invention will now be described in detail, with reference to the accompanying
drawings, where Figure 1 illustrates an antenna array with a construction known per
se, but with further distinguishing features in accordance with the invention;
Figure 2 illustrates parts of two antenna elements included in the antenna of Figure
1;
Figure 3 is a cross section of an antenna element according to Figure 2; and
Figure 4 and 5 are radiation diagrams.
Best mode for carrying out the invention
[0007] The antenna array in Figure 1 comprises a plurality of antenna elements (4 elements
in the Figure) in the form of rectangularwave guides V1, V2, V3 and V4 lying parallel
along their respective long narrow sides. Feed wave guides M1 and M2-M4 (the latter
three being concealed in the Figure) are each connected to one of the wave guides
Vl-V4. Each wave guide is provided with radiation openings in the form of longitudinal
slits, S
11, S
12,... on the wave guide V1, S
21, S
22 on the wave guide V2, S
31, S
32, ... on the wave guide V3 and S
41, S
42, ... on the wave guide V4. All the slits or slots shown are so-called broadside slits,
i.e. uniformly wide slits or slots made in the wider face of the respective wave guide.
The end portions of the feed wave guides Ml-M4 which are attached to the wave guides
V1V4 have a feed opening (not illustrated in Figure 1) through which electromagnetic
field energy, e.g. within the X band, is fed to each wave guide V1V4. The other ends
of the feed wave guides are connected via suitable input feed elements to the phase
shifters F1―F4 (F3 and F4 being concealed in Figure 1) for controlling the phase of
the field fed in, relative to a reference phase, e.g. the phase of the field to the
wave guide VI.
[0008] The use of broadside slits or slots of the type shown in Figure 2 with uniform element
spacing d (d=d
1=d
2=, ...) gives rise to side lobe peaks in the antenna array radiation diagram, the
height of the peaks depending on the directing angle. A radiation diagram is illustrated
in Figure 4, in a plane parallel to the wave guides and through the lobe maximum when
the direction is 20° from the direction of the normal. The side lobe peaks are so-called
grating lobes whose periodicity correspond to the double element spacing 2d. If the
slits S
11, S
12, ... S
21, S
22... etc in the wave guides V1―V4 had mutually differing element spacing d
1≠d
2≠ ... instead, the grid lobes from the individual wave guides V1―V4 would occur at
different places in the radiation diagram and would not be added to each other to
form the prominent peaks (S
1, S
2) in Figure 4. According to the invention, different element spacing is achieved by
changing the wavelength of the individual wave guides.
[0009] Figure 2 illustrates a portion of the antenna array in Figure 1, portions of two
wave guides being depicted. The slits S
11' S
12, and S
13, S
14 in the wave guide V1 have the mutual spacing d
1 and the slits S
21, S
22, S
23, S
24 etc in the wave guide V2 have the mutual spacing d
2≠d
1. To attain the intended reduction of the side lobe peaks in Figure 4, the wave guide
wavelength Àg varied such that Àg is different for each of the guides V1―V4. This
is described below in connection with Figure 3. Different spacings d
1, d
2 between the slits of the different wave guides V1―V4 are obtained as a consequence.
[0010] Figure 3 is a cross section of a wave guide VI with the slits S
11, S
12, there also being shown a part of an adjacent wave guide V2. On its inner surface
facing the slits S
11, S
12 the wave guide VI is provided with a raised portion or ridge R1, situated symmetrically
about the symmetrical axis C of the wave guide. The ridge has two side walls RV1 and
RV2 extending at right angles to the inner surface Y of the wave guide in the longitudinal
direction and entire length thereof. The side walls RV1 and RV2 are bridged by a wall
RV3 at right angles to them. Both walls RV1 and RV2 have a height h
1 from the surface Y. The wave guide V1 is a so-called ridge wave guide wherein the
wavelength λg for a given wave guide width a and height b may be varied within given
limits by varying the ridge height h
1. The height h
1 is thus constant for a given wave guide in the group antenna, i.e. for the wave guide
VI the height of the ridge R1 is equal to h,, for the wave guide V2 the height of
the ridge R2 is h
2 (h1≠h2) and so on. Since the slit spacing d≈λg/2, the grating lobes may be spread
out over the lobe angle interval of the antenna, thereby reducing their effect on
the side lobe level.
[0011] In Figure 5 is shown a radiation diagram for an antenna array with a ridge wave guide
where this principle is utilised. The diagram in Figure 5 may be compared directly
with the one in Figure 4, since apart from the ridges R1, R2 the antennas are otherwise
entirely the same.
[0012] Broadside slits in antenna arrays of the type intended here have large advantages:
a) They have very low losses
b) They are simple and cheap to manufacture
c) Established and well functioning calculation methods are used.
[0013] The inventive antenna array retains the above- mentioned advantages due to the broadside
slits, but with reduced side lobes.
[0014] The invention is not restricted to embrace wave guides V1―V4, where the wave guide
wavelengths λg
1, λg
2, ... for the different wave guides have been varied by the measures described in
connection with Figure 3. What is essential in the inventive concept is that the wavelengths
λg
1, λg
2 ... have been made different, which results in that the mutual spacing d
1, d
2, ... must be dimensioned so that d1≠d2 etc. There is thus obtained variation in the
positions of the grating lobes for the entire antenna array, which causes a reduction
of the side lobe level.
Elektronisch gesteuerte Gruppenantenne mit zumindest zwei nebeneinandergestellten
Antennenelementen, die ein Hauptstrahlungskeulenrichtung in Abhängigkeit von der relativen
Phasenverschiebung der elektrischen Signale ergibt, die den entsprechenden rechteckigen
Wellenleitern (V1, V2,...) zugeführt werden, die die nebeneinandergestellten Antennenelemente
bilden, wobei eine Breitseitenoberfläche der Wellenleiter mit mehreren Strahleröffnungen
in Form von Spalten oder Schlitzen (S11, S12, ... S21, S22, ...) in Längsrichtung
ausgestattet sind, wobei die Wellenleiter derart implementiert sind, daß die Wellenleiterwellenlänge
(λg) für zumindest einige der Wellenleiter (V1, V2, ...) wechselseitig unterschiedliche
Werte annimmt und die wechselseitigen Abstände (d
i, d
2, ...) der Querseitenspalte oder -schlitze für ausgewählte Wellenleiter unterschiedlich
sind, dadurch gekennzeichnet, daß
a) die Wellenleiter (V1, V2, ...) im wesentlichen die gleiche Länge und Breite aufweisen, und
b) die unterschiedlichen Werte der Wellenleiterwellenlängen (λg) derart ausgewählt
sind, daß die Gitterstrahlungskeulen, die zu den einzelnen Antennenelementen gehören,
gestreut werden.