Antenna system assembly with built-in self-supporting antenna, and corresponding antenna system
14 claims: 5 independent, 9 dependent
- 1CLAIMS REVENDICATIONS 1. Assembly for the production of an antenna system intended for a base station of a telephone network comprising:1. Ensemble pour la réalisation d’un système d’antenne destiné à une station de base d’un réseau téléphonique comprenant : at least one antenna (1) comprising an external envelope (10) of determined height, delimiting a cavity (11) closed by two end walls (12), and in which is provided a reflector device (13), associated with radiating elements, and stiffening means (14), mechanically independent of the reflecting device, a support (2, 20, 1), connecting means (3a, 3b;4b;5b;6a, 6b;7b;80a, 80b ;81a, 81b;82a, 82b) of the antenna on said support, characterized in that the connecting means are designed to bear on both the end walls (12) of the antenna (1) and the support, so to enclose the antenna. au moins une antenne (1) comprenant une enveloppe externe (10) de hauteur déterminée, délimitant une cavité (11) fermée par deux parois d’extrémité (12), et dans laquelle est prévu un dispositif réflecteur (13), associé à des éléments rayonnants, et des moyens de rigidification (14), mécaniquement indépendants du dispositif réflecteur, un support (2, 20, 1), des moyens de liaison (3a, 3b ;4b ;5b ;6a, 6b ;7b ;80a, 80b ;81a, 81b ;82a, 82b) de l’antenne sur ledit support, caractérisé en ce que les moyens de liaison sont conçus pour prendre appui à la fois sur les parois d’extrémité (12) de l’antenne (1) et le support, de façon à enserrer l’antenne.
- 11An antenna system for a telephone network base station comprising at least one antenna, which comprises an external envelope (10) of determined height, delimiting a cavity (11) closed by two end walls (12), and in which is provided with a reflecting device (13), associated with radiating elements, and stiffening means (14), mechanically independent of the reflecting device, characterized in that said at least one antenna is fixed to a support by means of connection means bearing both on the end walls of said at least one antenna and on said support, so as to enclose the antenna. 11. Système d’antenne pour station de base d’un réseau téléphonique comprenant au moins une antenne, laquelle comprend une enveloppe externe (10) de hauteur déterminée, délimitant une cavité (11) fermée par deux parois d’extrémité (12), et dans laquelle est prévu un dispositif réflecteur (13), associé à des éléments rayonnants, et des moyens de rigidification (14), mécaniquement indépendants du dispositif réflecteur, caractérisé en ce que ladite au moins une antenne est fixée sur un support par l’intermédiaire de moyens de liaison prenant appui à la fois sur les parois d’extrémité de ladite au moins une antenne et sur ledit support, de façon à enserrer l’antenne.
- 12An antenna system for a telephone network base station, comprising at least two groups of antennas, each antenna comprising an external envelope (10) of determined height, delimiting a cavity (11) closed by two end walls ( 12), and in which a reflector device (13) is provided, associated with radiating elements, and stiffening means (14), mechanically independent of the reflector device, each group of antennas being intended for different networks, said at least two groups being placed at different heights in said system and the antennas of each group being assembled by connecting means bearing on the end walls of each antenna , so as to enclose them. 12. Système d’antenne pour station de base d’un réseau téléphonique, comprenant au moins deux groupes d’antennes, chaque antenne comprenant une enveloppe externe (10) de hauteur déterminée, délimitant une cavité (11) fermée par deux parois d’extrémité (12), et dans laquelle est prévu un dispositif réflecteur (13), associé à des éléments rayonnants, et des moyens de rigidification (14), mécaniquement indépendants du dispositif réflecteur, chaque groupe d’antennes étant destiné à des réseaux différents, lesdits au moins deux groupes étant placés à des hauteurs différentes dans ledit système et les antennes de chaque groupe étant assemblées par des moyens de liaison prenant appui sur les parois d’extrémité de chaque antenne, de façon à les enserrer.
- 14Antenna system according to one of claims 12 or 14. Système d’antenne selon l’une des revendications 12 ou 13 comprising at least one profile (9) between two antennas intended for the same network. 13 comportant au moins un profilé (9) entre deux antennes destinées au même réseau. 1/5 1/5 2 X 2 X 2/5 2/5 3/5 / A 3/5 /A 4/5 £ z Q o 4/5 £ z Q o
Independent claims5
169 paragraphs, as filed
Holder (s):
<img file="FR2932016B1_D0001.tif" />
KYEMO.
Agent (s): anonymous.
GEVERS & ORES Company
SELF-SUPPORTING ANTENNA FOR BASE STATION AND ASSEMBLY FOR ANTENNA SYSTEM INCLUDING SUCH ANTENNA.
The invention relates to the field of cellular telephony and more particularly, the base stations of a cellular or mobile telephone network.
A cellular network includes a central transceiver at the level of each cell, called "base station". A base station allows the mobile phone to connect to the network to send and receive communications. The link between the user's mobile phone and the base station is via a radio link.
A base station conventionally consists of a relay antenna and an electronic cabinet responsible for managing communications.
The relay antenna is mounted on a mast which must be placed on a raised site to cover the widest possible area.
Conventionally, a base station antenna comprises an external envelope, commonly known as a radome, which is elongated and which delimits a cavity in which a plurality of radiating elements are provided, an energy distribution system between the radiating elements and a reflecting device.
The outer envelope can be made of a composite material or alternatively of ASA or polycarbonate.
The advantage of composite materials is that they have good mechanical resistance. However, these are materials that are not very transparent to radio waves. Conversely, ASA and polycarbonate have limited mechanical resistance properties but are transparent to radio waves.
Furthermore, whether or not the antenna installation is partially pre-assembled before its installation, its assembly is complex. This is due to the multiplicity of elements to handle. This complexity which is increased by the dimensioning of the parts.
Finally, the analysis of the antennas present on the market shows that the manufacturers have developed, successively, antennas for each particular technology or application. This results in a multiplicity of antennas having very different dimensions and profiles. This considerably limits the modularity of the antenna systems as well as their possibility of adaptation, when new antennas have to be installed on an existing mast.
It is understood that, in these antenna systems, the mast is an essential element since it is he who ensures the mechanical strength of the assembly. The antenna systems must withstand strong winds, up to 200 km / h for example. This is why the diameter of the masts can be greater than 600 mm. The size of this diameter contributes to the visual bulk of conventional antenna systems.
The installation of an antenna on a mast of course requires fixing it on a mast, but also its orientation in azimuth. This orientation can be imposed by the structure of the network.
Many solutions have been proposed for securing an antenna on a mast. These fastening systems are sometimes very bulky and require moving the antenna away from the mast.
In any event, a relatively large distance must be provided between the mast and the antenna in order to orient the antenna in azimuth.
Throughout the present application, the term "mast" means an elongated support, made in particular of metal, intended to be installed so as to extend vertically and to carry telecommunication antennas.
In addition, these are generally three antennas which are fixed to a mast, substantially at 120 ° from one another.
Consequently, the antenna (s) of a base station are bulky and environmental standards impose increasing constraints on their installation.
Camouflage systems have thus been developed intended to at least partially cover the antenna. However, these systems are extremely fragile and have a fairly short lifespan, given the climatic constraints. They are also not very effective in preserving the environment.
This is why antenna systems have been proposed integrating the three antennas in a single housing of substantially cylindrical shape.
Thus, document EP-1 606 855 describes an antenna system comprising an upper active part with the antennas and a lower service part.
In the upper part, the antennas and the carrier core are placed in a cylindrical housing or radome.
Such a system makes it possible to give the antenna system a cylindrical shape and therefore to limit its visual impact on the environment.
However, the azimuth adjustment of each antenna, as well as their maintenance, prove to be extremely difficult, even impossible, due to the presence of this external box.
In addition, this box constitutes an additional part which fulfills only an aesthetic function. Thus, such an antenna system is much more costly than that of the elements that compose it.
In addition, such a box can disturb the operation of the antennas.
Finally, such an antenna system must be pre-assembled before being installed, for example on a building roof. However, such a system is bulky and cumbersome to handle, which makes it extremely complex to install, especially in an urban environment.
The object of the invention is therefore to overcome the drawbacks of the prior art by proposing an antenna which is designed to simplify its installation, even offering the possibility of eliminating the presence of the support mast, and, in all cases , by allowing an antenna system comprising one or more antennas according to the invention to limit visual disturbances in the environment, thanks to its compactness. In addition, this antenna allows the successive installation, on existing base stations, of new antennas intended for different technologies.
Thus, the invention relates to an antenna for a base station of a cellular telephone network, comprising an external envelope of determined height, delimiting a cavity closed by two end walls, and in which is provided a reflector device associated with radiant elements.
According to the invention, the external envelope further comprises stiffening means, so that the antenna is self-supporting.
This particular structure of the antenna makes it possible to lighten the structure of the mast on which it is fixed, or even to remove it completely.
The antenna system according to the invention will therefore be extremely simplified compared to conventional systems.
Preferably, the stiffening means are mechanically independent of the reflector device.
In conventional antenna systems, the mast connection means are generally connected to the reflector and not to the external envelope of the antenna. This is due to the fact that the reflector is conventionally made of aluminum and has greater mechanical resistance than the envelope itself. This type of attachment allows the mechanical strength of the reflector to be used. However, it has a major drawback which is the absence of separation between the electrical and mechanical functions. However, significant differences in expansion can occur, during use, between the reflector and the mast on which the antenna is fixed. This results in significant stresses on the reflector, constraints which can affect the electrical function of the reflector and therefore the reliability of the antenna itself.
These drawbacks are avoided when the stiffening means are mechanically independent of the reflector device.
In addition, in conventional antenna systems, the reflector is generally given a greater weight than that strictly necessary for its electrical function. This of course has consequences on the overall weight of the aritenne and on its manufacturing cost.
With the antenna according to the invention, the reflector device can be considerably lightened and the stiffening means do not bring overweight to the antenna.
Finally, when the reflector device does not have to provide a mechanical function, its design is not limited by constraints linked to a high level of mechanical resistance.
These stiffening means can be integrated into the envelope or attached to it.
Preferably, they extend over substantially the entire height of the antenna.
The invention also relates to an assembly for producing an antenna system intended for a base station, this assembly comprising:
an antenna as defined above, a mast, and means for connecting the antenna to the mast, these means being designed to bear on both the end walls of the antenna and the mast, so as to enclose the antenna.
Thus, such an assembly makes it possible to mount the antenna on a mast of simplified structure, insofar as the antenna is itself freestanding. In addition, the connecting means do not lead to an increase in the size generated by the antenna and the mast themselves.
Indeed, they are not placed between the antenna and the mast, as in the antenna systems according to the prior art, these connecting means leading to a separation of the antenna and the mast.
Thus, an antenna system produced from such an assembly is of reduced bulk compared to a conventional antenna system and therefore reduces visual nuisance on the environment.
The mast may have a shape complementary to that of the antenna, so that after connection between the antenna and the mast, the latter have a compact external shape.
This embodiment makes it possible to further reduce the visual nuisances of an antenna system produced from this assembly.
Also for this purpose, the antenna and the mast are designed to present, once linked, a substantially continuous and rounded external shape.
The invention also relates to an assembly intended for obtaining an antenna system for a base station, said assembly comprising at least two antennas as defined above and connecting means designed to bear on the walls of end of each antenna, so as to enclose said at least two antennas and ensure their connection.
This assembly makes it possible to obtain an antenna system radically different from those known in the state of the art, since it requires no mast.
The removal of such a mast is permitted, since each antenna includes stiffening means which make it self-supporting.
An antenna system produced from such an assembly is therefore particularly compact and its impact on the environment is reduced compared to conventional antenna systems.
The shape of the antennas can also be chosen so that these, once assembled, have a continuous and rounded external shape.
Preferably, the connecting means are substantially planar.
Preferably, the connecting means are designed to allow the orientation in azimuth of each antenna.
In certain cases, and in particular when the antenna system must be placed in a geographical area exposed to strong winds, the assembly according to the invention can also comprise a mast, the connection means then also being designed to be fixed to said mast.
When an assembly according to the invention comprises a mast which is part of an already existing installation, the connection means are segmented.
The invention also relates to an assembly for an antenna system intended for a base station further comprising at least one profile, intended to be mounted between two antennas.
Preferably, the height of this profile corresponds substantially to that of the antennas.
This profile can have, after assembly of the assembly, two different functions.
This profile can first of all have a stiffening function and it is particularly useful when groups of complementary antennas must be added above an already existing group of antennas.
In this case, the structure of the profile is designed so that it can perform this stiffening function.
Such a profile inserted between two antennas, can also have the function of giving the assembly constituted by the antennas and the profile a substantially continuous and rounded external shape. In this case, the profile does not need to have significant mechanical strength. It has the effect of reducing the visual nuisance of the antenna system obtained.
The invention also relates to an antenna system for a base station of a telephone network, comprising at least one antenna as defined above.
This system can comprise at least two antennas according to the invention, intended for different networks, said at least two antennas being placed at different heights in said system and each antenna being fixed by connecting means bearing at least on the walls end of said antenna, so as to enclose it.
These networks can be of the WIMAX, GSM, UMTS or PMR type for example.
This antenna system may include a mast.
In a conventional embodiment, the antenna installation comprises at least two groups of three antennas, placed at different heights of the system.
Preferably, this antenna system comprises at least one profile between two antennas intended for the same network.
The invention will be better understood and other objects, advantages and characteristics thereof will appear more clearly on reading the description which follows and which is given in relation to the appended drawings which represent exemplary embodiments of the invention and on which ones :
Figure 1 is a schematic sectional view of an antenna according to the invention, Figure 2 is a side view of an antenna according to the invention during mounting on a mast, Figure 3 is a sectional view along the line III-III of Figure 2, Figure 4 is a view similar to Figure 3 which illustrates two extreme positions of the antenna during its orientation in azimuth, Figure 5 illustrates a variant of the mast shown in Figures 2 to 4, with a detail A, Figure 6 shows a system of two antennas according to the invention assembled without a mast and associated with two sections, Figure 7 illustrates, in cross section, a system of three antennas according to the invention, Figure 8 shows an antenna system comprising three antenna groups, intended for different networks and produced from the antenna according to the invention, FIG. 9 is a perspective view of a detail of FIG. 8, FIG. 10 is a cross section of an antenna system comprising profiles, FIG. 11 is a perspective view of FIG. 12, and FIG. 12 is an alternative embodiment of FIG. 7.
For reasons of simplification, the elements common to the different figures will be designated by the same references.
Referring first to Figure 1, the antenna 1 according to the invention comprises an outer casing 10 or radome which delimits a cavity 11 which is closed by two end walls 12 (shown in Figure 2).
Inside this cavity, a reflector device 13 is provided, for radiating elements not illustrated in FIG. 1. The reflector device can consist of a single reflector or of a plurality of reflectors. In the cavity 11, stiffening means 14 are also provided.
In the example illustrated in Figure 1, these stiffening means are related to the outer casing 10 of the antenna. They could also be designed to be directly integrated into the external envelope.
In the example illustrated in FIG. 1, the stiffening means are designed to be able to come into contact with at least part of the internal wall 100 of the envelope. They comprise two symmetrical elements which are arranged on either side of the axis of symmetry XX 'of the antenna. The stiffening means are here connected together by end plates (not shown) and are not limited to this exemplary embodiment.
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The length of the stiffening means can correspond to the height of the antenna, so as to be the most effective.
The reflector device 13 is fixed in the cavity 11, by means of fixing on the stiffening means 14. This fixing can in particular be carried out by gluing. This allows slight relative movements between the reflector and the stiffening means. Such movements can in particular be due to expansion differences between the different elements forming the antenna 1.
The mounting of the antenna illustrated in FIG. 1 will now be described with reference to FIGS. 2 and 3.
These figures show the antenna 1, a mast 2 and means 3 for connecting the antenna to the mast.
These connecting means 3 comprise two elements 3a and 3b.
Each of them comprises a substantially flat part 30, here in the form of wings or an open V, and of legs 31 each extending a branch of the V, in a plane substantially perpendicular to the part 30.
In each branch of the V, an opening 32 is provided.
These two tabs frame an area 33 corresponding to the base of the V and which is intended to come into contact with the mast, as illustrated in FIG. 3.
The element 3a is symmetrical about an axis ZZ 'passing through the center of the wall 32.
Each element 3a or 3b is mounted on the mast 2 by any suitable means, in particular by means of a collar.
The antenna 1 is mounted on the mast 2 as follows.
The element 3a is firstly fixed to the mast 2.
The antenna is provided on each of its end walls
12, of two projecting threaded elements 15, one of them being illustrated in FIG. 2.
The two elements 15, located on the wall 12 which will be the bottom wall of the antenna once mounted, are then introduced into the two openings 32 of the element 3a.
When the antenna is in a vertical position, substantially parallel to the mast 2, retaining means 17, such as nuts, are screwed onto the elements 15 to ensure that they are held in the openings 32. As will be seen later, this retention n 'does not hinder the sliding movement of the elements 15 in the oblong openings 32.
Finally, the connecting element 3b is positioned above the antenna 1, as illustrated in FIG. 3. It is then slid along the mast, in the direction illustrated by the arrow F until the elements 15, placed on the wall 12 in the upper position after mounting the antenna, are inserted into the openings 32 of the connecting element 3b.
As before, retaining means 17 are then placed on the elements 15 to hold them in the openings 32 while allowing them to slide inside these openings.
Of course, the fixing of the connecting elements on the end walls of the antenna could be ensured by any other suitable means.
FIG. 4 illustrates two extreme positions of the antenna 1, relative to the mast 2.
These two extreme positions are defined relative to the median position illustrated in FIG. 3, in which the axis of symmetry XX 'of the antenna coincides with the axis of symmetry ZZ' of the connecting element 3a.
In position A, the antenna is tilted to the left with respect to the plane of the figure, so that its axis of symmetry XX 'makes an angle a with the axis of symmetry ZZ' of the element 3a. In this position, the element 17 located on the left of the figure is in abutment against the bottom 320 of the corresponding opening 32, while the element 17 located on the right part of the figure is in abutment against the bottom 321 of the opening 32 located on the right part of the figure.
Conversely, when the antenna is in position B, the element 17 located on the left part of FIG. 4 is located in abutment against the bottom 321 of the opening 32 on the left part, while the element 17 located on the right part of FIG. 4 is in abutment against the bottom 320 of the corresponding opening 32.
In this position B, the axis of symmetry XX 'of the antenna 1, also forms an angle a with the axis of symmetry ZZ' of the element 3a.
Of course, the antenna 1 can take all the intermediate positions between the positions A and B illustrated in FIG. 4. Furthermore, what has just been described for the element 3a and the antenna 1 is directly transposable to the movement relative of the antenna 1 of the element 3b.
It is therefore understood that the openings 32 and the sliding mounting of the antenna 1 in the openings 32 allow the azimuth adjustment of the antenna 1.
This adjustment is very simple and without the need to move the antenna away from the mast 2.
We now refer to FIG. 5 which illustrates an alternative embodiment of the antenna illustrated in FIG. 3.
FIG. 5 is a top view of an antenna 1, mounted on a mast 20, by means of connection means, one element of which 4b is illustrated in FIG. 5.
The mast 20 differs from the mast 2 illustrated in FIG. 3 in that it has not a cylindrical section but a semi-spherical section.
In the embodiment illustrated in FIG. 5, the mast 20 includes an external envelope 200 delimiting a cavity 201.
In the casing 200, on the wall 202 intended to be placed opposite the antenna 1, grooves are provided, here 4 in number.
Figure 5 shows that, thanks to this particular profile of the mast 20, after mounting the antenna and the mast, they have a shape not only compact but also substantially continuous and rounded. This contributes to limiting the visual impact of the antenna and the mast on the environment.
The connection means associated with the antenna 1 and the mast 20 differ from those illustrated in FIG. 3 in that they carry nuts 204 intended to be able to be inserted in the grooves 203. These nuts are, for example, pressure nuts or quarter turn nuts.
FIG. 6 illustrates two antennas 1 assembled using connection means according to the invention.
Figure 6 is therefore a view similar to Figure 5 which shows, seen from above, two antennas 1 according to the invention which are arranged so that their bottoms 16 are placed opposite.
The two antennas 1 are mounted together by means of connection means, an element 5b of which is illustrated in FIG. 6.
The connecting element 5b is supported on two end walls 12 of the antennas 1. The element 5b is located at the top of the antennas mounted and installed on a base station. The element which is symmetrically disposed on the lower end walls of the two antennas 1 is not visible in FIG. 6.
The element 5b is substantially planar and has, in this embodiment, two axes of symmetry YiYT and Y2Y2 '· After assembling the antennas and the connecting element 5b and in the median position of the antennas, the axis of symmetry Y -iYf of the element 5b coincides with the axis of symmetry XX 'of the antennas, while the axis of symmetry Y2Y2' of the connecting element 5b constitutes an axis of symmetry between the two antennas 1.
The connecting element 5b has a generally rectangular shape, comprising four openings 52 of oblong shape. The openings are symmetrical two by two with respect to the axes Y1Y1- and Y<sub>2</sub>Y<sub>2</sub>'. In these openings, the retaining elements 17 can be placed for the projecting elements 15 of each antenna.
As previously explained with reference to Figures 3 and
4, the cooperation between the retaining means 17 and the openings 52 allows the adjustment of the azimuth orientation of each antenna 1. This adjustment is carried out for each antenna independently.
Of course, after adjusting the orientation in azimuth, the axis of symmetry of each antenna may no longer coincide with the axis of symmetry Y1Y1 '.
In the embodiment illustrated in FIG. 6, the system with two antennas according to the invention also comprises two profiles 50. Each profile has an elongated shape and their height preferably corresponds substantially to that of the two antennas, so as to be able to extend between the connecting means.
Of course, the shape of these profiles 50 is chosen so as to be able to be inserted between the two antennas, without hampering their movement when adjusting their orientation in azimuth.
As shown in Figure 6, the wall 500, which constitutes the outer wall of the profiles 50 after insertion between the two antennas, has a rounded shape. Thus, thanks to these profiles 50, the system with two antennas according to the invention has a substantially continuous and rounded external shape. Consequently, these profiles 50 again make it possible to reduce the visual impact in the environment of the antenna system according to the invention.
The example illustrated in FIG. 6 shows that the antenna according to the invention makes it possible to produce a system of two antennas without the need for a mast. This is allowed by the presence of stiffening means provided in the antenna itself, stiffening means which make it self-supporting.
Reference is now made to FIG. 7 which illustrates a system of three antennas 1 according to the invention.
The three antennas 1 are placed substantially at 120 ° from one another and enclosed between connecting means which bear on their end faces 12.
Each element 6a, 6b of the connecting means has a substantially planar shape and has three branches 60, 61 and 62 substantially at 120 ° from one another. On each branch 60, 61 and 62, there are two openings facing each other 600, 610 and 620. As described above with regard to FIG. 3, these openings have an oblong shape corresponding to that of the antenna 1, so as to allow the antennas to be adjusted in azimuth.
Furthermore, each element of the connecting means comprises a central opening 6 intended in particular for the passage of cables.
The mounting of the three antennas 1 is carried out so that an antenna is connected between two branches of the fixing element 6b.
The connection between an antenna and the element 6b is carried out by means of the projecting elements 15 carried by each antenna, openings provided in each branch of the connection element and retaining means 17, similar to those which have been illustrated. previously.
Of course, the mounting of the antennas 1 on the connecting element 6a is carried out in the same way as for the element 6b.
Thus, the system of three antennas according to the invention comprises only three antennas and connecting means for their assembly, the holding of the system being ensured by the stiffening means provided in each antenna.
Figure 7 illustrates how the antennas can be adjusted in azimuth, independently of each other.
Thus, FIG. 7 illustrates three half-straight lines α1, a.2, a3 each corresponding to an axis of symmetry between two branches of the connecting element 6b. Thus, the half-straight lines a1, a2, respectively a3 are the axes of symmetry of the branches 60 and 61, 60 and 62, respectively 61 and 62 of the fixing element 6b.
FIG. 7 shows that the adjustment in azimuth of one of the antennas 1 results in positioning it so that its axis of symmetry coincides with the half-line a.2.
The orientation of the two other antennas leads to shifting their axis of symmetry by an angle a with respect to the axes of symmetry a1, respectively a3.
Of course, FIG. 7 is only an example of the relative positioning of the three antennas resulting from their orientation in azimuth. Other relative positions of the antennas of the system illustrated in FIG. 7 can be envisaged, depending on the environment in which the antenna system is installed.
In a variant of the embodiment illustrated in FIG. 7, a mast could be provided.
Referring now to Figures 8 and 9 which illustrate another antenna system according to the invention.
As shown in FIG. 8, this antenna system comprises three groups 80, 81 and 82. In this example, all the antennas are antennas according to the invention. They are therefore self-supporting and the antenna system illustrated does not include any mast.
The reference 84 designates a service chest placed at the bottom of the antenna system. This chest 84 is used both for placing cables for example and for raising the antenna system, if this is necessary taking into account the environment in which it is placed.
This antenna system has different antenna groups, each of which is dedicated to a particular technology.
FIG. 8 shows that an antenna system according to the invention is upgradeable and that it can be modified over time to add an additional antenna group.
FIG. 9 is a perspective view which shows the region between the two groups of antennas 80 and 81 illustrated in FIG. 8.
The assembly of the antennas illustrated in FIG. 8 is carried out as follows. First of all, the group of antennas 80 is assembled by means of the connection means 80a and 80b, as has been described above, in particular with regard to FIG. 7. In the embodiment illustrated in FIGS. 8 and 9, the connecting elements are in the form of a disc and have openings 800 allowing the azimuth adjustment of the antennas, independently of one another.
When the base station must be usable for a technology other than that corresponding to the first group of antennas 80, a second group of antennas 81 is mounted on the first.
To this end, interconnection means 85 are placed between the upper connecting element 80b of the first group 80 and the lower connecting element 81a of the second group of antennas 81. They are provided to allow access to the elements and therefore the adjustment of the antennas in azimuth. In addition, they allow the relative positioning of two groups of antennas to be adjusted.
The second group of antennas 81 is then mounted, enclosing the three antennas between the connecting elements 81a and 81b.
The connecting elements 81a and 81b also have openings 810, through which the antennas can be oriented in azimuth, as illustrated in FIG. 9.
Finally, if this also proves necessary, a third antenna is mounted on the second group 81, by placing beforehand an interconnection element 86 between the connection elements 81b and 82a.
Similarly to what has been described above, the antennas of the third group 82 are thus clamped between the two connecting elements 82a and 82b.
FIG. 10 illustrates a preferred embodiment of the antenna system illustrated in FIG. 8.
Figure 10 is a sectional view which therefore shows the three antennas 1 and the lower connecting element 80a. The reference 820 designates a cavity made in the connecting element 80a for the passage of cables. It is understood that the upper link key element 80b also includes such a cavity around which the connection element 85 will be disposed.
FIG. 10 shows that a profile 9 is provided between each antenna 1. The shape of the profiles 9 is designed so as not to interfere with the azimuth adjustment of the antennas. It has a length which can be much greater than the height of the antennas and contributes to reinforcing the mechanical resistance of the group of antennas 80.
These sections 9 may prove to be useful in an antenna system such as that illustrated in FIG. 8, comprising several groups of antennas and therefore having a significant overall height.
Such profiles can also be provided in the other antenna groups 81 and 82.
Reference is now made to FIGS. 11 and 12 which illustrate an alternative embodiment of FIG. 7.
This again is a set of three antennas 1 which are mounted on a mast 2, at substantially 120 ° (b) from one another.
The set of antennas differs from that illustrated in FIG. 7 in that the connecting element is segmented.
Indeed, instead of being composed of a single substantially planar element, like the element 6b illustrated in FIG. 7, the connecting element is here composed of three elements 7b separated from each other. In practice, each of these elements 7b corresponds to an element 3a illustrated in FIG. 3. They will therefore not be described in more detail.
As already described above, the mounting of each antenna 1 in an element 7b<sub>;</sub> by means of the retaining means 17 cooperating with the openings 70, allows the azimuth adjustment of each antenna, independently of the other two.
This alternative embodiment of the connecting elements is used when a set of antennas according to the invention must be mounted on an existing mast. Indeed, in this situation, it is difficult to insert a single element, such as element 6b, on an already installed mast. It is then preferable to carry out the individual assembly of three segmented elements 7b.
The reference signs inserted after the technical characteristics appearing in the claims are for the sole purpose of facilitating the understanding of the latter and should not limit their scope.
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<img file="FR2932016B1_D0003.tif" />
8 sheets
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5 members in 3 offices
Priority claims3
| Document | Office | Kind | Date |
|---|---|---|---|
| 0803038 | France | A | |
| 0803038 | France | A | |
| FR20080003038 | – | – | – |
Members5
| Document | Office | Kind | |
|---|---|---|---|
| FR2932016A1 | France | A1 | |
| WO2009156612A2 | World Intellectual Property Organization (WIPO) | A2 | |
| WO2009156612A3 | World Intellectual Property Organization (WIPO) | A3 | |
| EP2289124A2 | European Patent Office (EPO) | A2 | |
| FR2932016B1This record | France | B1 |
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Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Notification of lapseLapsedST | ST | |
| Fee paymentPLFP | PLFP |
Numbers
- Publication
- 2932016
- Publication, DOCDB
- 2932016
- Publication, EPODOC
- FR2932016
- Application
- 803038
- Application, DOCDB
- 0803038
- Application, EPODOC
- FR20080003038
Titles2
- French
- ANTENNE AUTOPORTANTE POUR STATION DE BASE ET ENSEMBLE POUR SYSTEME D'ANTENNE INTEGRANT UNE TELLE ANTENNE.
- English
- SELF-SUPPORTING ANTENNA FOR BASE STATION AND ASSEMBLY FOR ANTENNA SYSTEM INCLUDING SUCH ANTENNA.
Classification
- CPC, 2
- H01Q1/246
- H01Q1/42
- IPC, 1
- H01Q1 00
