Telecommunications tower comprising at least two stacked modules
The stacked module telecommunications pylon with earth concrete cladding addresses integration and assembly challenges, offering adjustable height, eco-friendliness, and simplified maintenance, enhancing urban and rural compatibility.
Patent Information
- Application Number
- FR2023006244
- Authority / Receiving Office
- FR · FR
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-06-17
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2043-06-17
AI Technical Summary
Existing telecommunications towers face challenges in integrating into urban and rural environments due to limited lifespan, high carbon footprint, and expensive, difficult maintenance of synthetic coverings, while also being costly and complex to assemble.
A telecommunications pylon composed of stacked modules with a sprayed earth concrete cladding, utilizing hoops and a lattice-type structure to support the cladding, allowing modular assembly and integration into various environments with simplified maintenance.
The solution facilitates adjustable height, eco-friendly construction, and secure, cost-effective assembly, while providing long-lasting integration into urban and rural settings with customizable aesthetics.
Smart Images

Figure 00000015_0000 
Figure 00000015_0001 
Figure 00000016_0000
Abstract
Description
Title of the invention: Telecommunications tower comprising at least two stacked modules Technical field
[0001] The present invention relates to the field of telecommunications pylons.
[0002] In particular, the present invention relates to a telecommunications pylon comprising at least two sprayed earth concrete modules stacked on top of each other. STATE OF THE ART
[0003] Telecommunications towers are known, which are constructions intended to allow the transmission of telecommunications waves. Known telecommunications towers comprise sections of tower structure stacked on top of each other and inside which a telecommunications antenna is housed. Each structural section is in particular covered by a plastic panel, such as polycarbonate.
[0004] However, plastic, in addition to having a reduced lifespan and a high carbon footprint, does not allow the telecommunications tower to be integrated into an urban and / or rural environment.
[0005] Telecommunications towers are also known comprising a single-piece lattice-type structure, covered by a single-piece veil reinforced by supports integral with the structure.
[0006] However, the veil, in addition to having a reduced lifespan, does not allow the telecommunications tower to be integrated into an urban and / or rural environment. In addition, the single-block structure and the single-block veil make the tower difficult and expensive to manufacture and assemble.
[0007] Telecommunications towers are also known which have an appearance designed to blend into their urban and / or rural environment, for example by means of a covering in the shape of a tree. Said towers comprise a single-piece structure over which a synthetic covering is placed. This covering can be divided into several covering portions, juxtaposed with each other.
[0008] However, the maintenance of the synthetic covering must be regular, even frequent. It is, moreover, expensive. In addition, due to the synthetic aspect of the covering, the integration of the telecommunications tower into the urban and / or rural environment is only partial and is generally perceived as artificial. In addition, the maintenance of the tower as well as its assembly, due to its single-block structure, is difficult and expensive.
[0009] The present invention therefore aims to resolve at least in part the aforementioned drawbacks of the prior art, by proposing a pylon comprising a plurality of stackable modules so as to facilitate its assembly and to adapt its size as required, and comprising a sprayed earth concrete cladding allowing the pylon to be integrated into an urban and / or rural environment, while having a long service life, and the maintenance of which is simple, convenient and secure. PRESENTATION OF THE INVENTION
[0010] More specifically, the invention relates to a pylon comprising at least two stacked modules, each module comprising at least one supporting structure, extending between a first end and a second end, at least one sprayed earth concrete cladding; and at least one cladding support;
[0011] said covering support comprising at least two hoops, a first hoop and a second hoop, the respective first and second hoops of the stacked modules facing each other and being spaced apart from each other, the first hoop being connected to the first end of the supporting structure and the second hoop being connected to the second end of the supporting structure;
[0012] the stacked modules being fixed to each other by means of respective plates of the supporting structure of said stacked modules, so as to provide a space between the first and second respective hoops of the stacked modules;
[0013] the earth concrete cladding being sprayed onto said cladding support and covering it at least in part; and
[0014] said first and second hoops being configured to transfer at least a portion of the weight of the earth concrete cladding to the supporting structure.
[0015] Stacking the different modules allows the height of the pylon to be adjusted as required by the user. The supporting structure of each of these modules is connected to the cladding support. In particular, the first hoop is connected to the first end of the supporting structure and the second hoop is connected to the second end of the supporting structure. The earth concrete cladding is sprayed onto the cladding support, between the two hoops. The earth concrete is a so-called excavation earth, flexible, which does not deplete ecological reserves and allows the consumption of fossil resources to be saved. Thus, the pylon according to the invention can be modulated to the desired height, adapt to its environment, be ecological, and its modular structure has the advantage of facilitating its manufacture and assembly.In addition, the first hoop and the second hoop are configured to transfer a substantial portion of the weight of the earth concrete cladding to the supporting structure.
[0016] Advantageously, the first hoop and the second hoop are in the form of a ring plate, said hoops each comprising at least one flat offset portion, the offset portion of the second hoop of one module and the offset portion of the first hoop of the other module on which it is stacked being configured to partially support the weight of the concrete cladding of such projected.
[0017] The offset portions of the hoops make it possible to create a surface to improve the maintenance and support of the weight of the sprayed earth concrete cladding. In addition, the earth concrete cladding rests on the hoops, and in particular on the second hoop, otherwise the one located at the bottom of the corresponding module once the pylon is in place. This second hoop therefore bears more of the weight of said cladding. Thus, the offset portions of the hoops also allow for better stability of the pylon once in place. Furthermore, the offset portions of the hoops allow, by their shape, to have a geometry of the earth concrete cladding that can be personalized as needed.
[0018] Advantageously, the hoops are metallic.
[0019] Optionally, the first hoop and the second hoop have a different thickness.
[0020] In particular, the second hoop, located closest to the ground once the pylon is in place, supports a substantial part of the weight of the earth concrete cladding. Thus, this second hoop can have a greater thickness than the first hoop, so as to be more resistant.
[0021] Advantageously, said covering support of each module comprises a mesh extending between the first hoop and the second hoop, and a geotextile fabric, said mesh following the outer periphery of the first hoop and the second hoop, the concrete covering being sprayed onto said mesh, and the geotextile fabric being applied against the mesh, on the inside of the module, so as to avoid any projection of earth concrete inside the module during its manufacture.
[0022] The mesh, which can also be referred to as projection mesh, makes it possible to fix the sprayed earth concrete cladding to the supporting structure of the pylon, while ensuring the bracing of said earth concrete cladding. Thus, the mesh contributes to an improvement in the lifespan of the pylon. The geotextile fabric placed behind the mesh, that is to say on the inside of the module and therefore towards the inside of the pylon relative to the projection mesh, makes it possible to prevent the projection of earth concrete inside the pylon.
[0023] In addition, an anti-shrinkage metal mesh can advantageously be integrated into the thickness of the sprayed earth concrete covering, between the geotextile fabric and the mesh. This gives a sandwich structure with, from the inside to the outside, a geotextile fabric, which is arranged, inside the module, parallel to the mesh, an anti-shrinkage mesh and finally the mesh. The earth concrete is then sprayed onto this assembly.
[0024] Advantageously, said cladding support of each module comprises at least two uprights each comprising a first end and a second end, the first end being connected to the first hoop and the second end being connected to the second hoop, the mesh being connected to each of the uprights, said uprights being configured to support said sprayed earth concrete cladding.
[0025] The uprights make it possible to laterally stabilize the earth concrete cladding of each module and to transmit the weight of said earth concrete cladding to the second hoop of said module.
[0026] Advantageously, the supporting structure of each module comprises a plurality of uprights connected to each other by crosspieces so as to form a lattice-type structure, the supporting structure delimiting a central opening configured to house technical equipment.
[0027] The lattice-type structure ensures the solidity of the supporting structure and therefore of the pylon and the central opening that said structure delimits allows technical equipment to be housed, such as a work platform for example, or such as cable trays, ladders or electrical and / or electronic boxes.
[0028] Advantageously, the first hoop of a first module is subject to the second hoop of a second module.
[0029] Attaching one module to another module makes it possible to form the pylon and adapt its height as required.
[0030] Advantageously, the supporting structure is made of galvanized steel.
[0031] Advantageously, the pylon further comprises at least one pylon head, configured to house at least one antenna, said pylon head comprising at least one antenna cover panel, configured to protect the quality of a signal emitted by the antenna.
[0032] The pylon head is the last stacked module forming the pylon. This pylon head is configured to house at least one antenna such as a 4G or 5G antenna for example. In addition, the pylon head protects the quality of the signals emitted by the antennas it houses. The pylon head can be composed of two sub-modules. The geometry of the pylon head is particularly particular and different from that of the other modules.
[0033] Advantageously, said at least one antenna cover panel comprises fiberglass.
[0034] Advantageously, the pylon head comprises a supporting structure to which a plurality of offset structures are connected, an antenna cover panel connecting two offset structures together.
[0035] The offset structures serve as support for the antenna cover panels.
[0036] The invention also relates to a method of mounting a pylon such as briefly described above, comprising at least the following steps:
[0037] connect the cladding support to the supporting structure;
[0038] projecting the earth concrete onto said mesh on said covering support to form the earth concrete cladding;
[0039] stacking a first and a second module by placing plates of the respective supporting structures of the first and second modules against each other; and
[0040] securing the supporting structure of the first module to the supporting structure of the second module by means of fixing members configured to fix two by two the respective plates of the first and second modules.
[0041] Such a process is simple, convenient and makes it possible to obtain a pylon that can be adjusted to the desired height, adapting to its environment and being ecological. PRESENTATION OF FIGURES
[0042] The invention will be better understood on reading the following description, given solely by way of example, and referring to the appended drawings given by way of non-limiting examples, in which identical references are given to similar objects and in which:
[0043] [Fig. 1] is a schematic perspective representation of a module of the pylon according to the invention, comprising a supporting structure and a cladding support;
[0044] [Fig.2] is a front view of two modules, such as that of [Fig.l], stacked;
[0045] [Fig.3] is a top view of the module of [Fig.l], but on which has been added a sprayed earth concrete cladding from which the cladding support crosspieces have been omitted;
[0046] [Fig.4] is a view similar to [Fig.3], to which technical equipment of the pylon has been added;
[0047] [Fig.5] is a view similar to [Fig.2], to which the pylon head has been added;
[0048] [Fig.6] is a top view of the pylon head of [Fig.5]; and
[0049] [Fig.7] is a pylon according to an embodiment of the invention, comprising modules and the pylon head of [Fig.5], onto which the earth concrete was sprayed.
[0050] It should be noted that the figures set out the invention in detail to enable the invention to be implemented; although not limiting, said figures serve in particular to better define the invention where appropriate. DETAILED DESCRIPTION OF THE INVENTION
[0051] The invention relates to a pylon 1, as shown in [Fig.7].
[0052] In particular, the invention relates to a telecommunications pylon 1 configured to house at least one telecommunications antenna 2. The antenna 2 may be a 4G and / or 5G type antenna for example. The telecommunications pylon 1 may in particular to accommodate a plurality of antennas 2.
[0053] The pylon 1 comprises at least two modules 3. An example of module 3 is shown in [Fig.l].
[0054] In particular, and according to the example shown in [Fig.7], the pylon can comprise eight modules.
[0055] In [Fig.2], two modules 3 are stacked on top of each other.
[0056] In [Fig.5], three modules 3 are stacked on top of each other.
[0057] The number of modules 3 is determined according to the height of the desired pylon 1. The higher the desired pylon 1 is, the higher the number of modules 3 will be stacked. Conversely, the lower the pylon 1 must be, the fewer modules 3 will be stacked.
[0058] The modules 3 are configured to be stacked on top of each other so as to form the pylon 1.
[0059] In particular, as can be seen in [Fig.l], a module 3 comprises at least one supporting structure 4, at least one sprayed earth concrete cladding 5 and at least one cladding support 6.
[0060] The supporting structure 4 extends between a first end 40 and a second end 4L
[0061] As shown in [Fig.l], the supporting structure 4 comprises a plurality of uprights connected to each other by crosspieces so as to form a lattice-type structure.
[0062] The uprights and crosspieces of the lattice-type structure are, for example, connected by bolts.
[0063] In particular, the lattice-type structure ensures the solidity of the supporting structure 4 and therefore of the pylon 1.
[0064] Advantageously, the supporting structure 4 is made of galvanized steel.
[0065] In addition, the supporting structure 4 delimits a central opening 42. The central opening 42 is configured to house technical equipment.
[0066] The technical equipment may be a work platform for example, or cable trays, ladders or electrical and / or electronic boxes.
[0067] All of the technical equipment is fixed by means of collars to the supporting structure 4.
[0068] The covering support 6 comprises at least two hoops 7.
[0069] Advantageously, the hoops 7 are metallic.
[0070] According to the example shown in Figures 1 and 7, the covering support 6 comprises two hoops 7, namely a first hoop 70 and a second hoop 71.
[0071] In particular, the first and second respective hoops 70, 71 of the stacked modules 3 come opposite each other and are spaced apart from each other, the stacked modules 3 being supported on each other by means of the plates 43 (visible in [Fig.l] in particular) of the respective supporting structure 4 of said modules 3. The respective plates 43 of two stacked modules 3 are fixed two by two by means of suitable fixing members. For example, the plates are fixed to each other by bolting, in particular by means of nut-washer-locknut assemblies. According to the embodiment shown in [Fig.l] in particular, each module comprises three upper plates 43 and three lower plates 43. Therefore, the upper plates 43 of a module 3 are thus intended to be fixed to three lower plates 43 of a module 3 stacked on it. The stacked modules 3 therefore rest on each other by means of said plates 43, so as to provide a space between the first and second hoops 70, 71 which face each other.The first and second hoops 70, 71 help to keep the earth concrete covering 5 in place and support it. By virtue of their shape, they also help to give a particular shape to the pylon 1.
[0072] The first hoop 70 is connected to the first end 40 of the supporting structure 4 and the second hoop 71 is connected to the second end 41 of the supporting structure 4.
[0073] According to one embodiment, the first hoop 70 and the second hoop 71 are plates, in the shape of a ring.
[0074] Preferably, in accordance with the embodiment shown, the first hoop 70 and the second hoop 71 each comprise at least one offset portion 72. Each offset portion 72 is flat.
[0075] The first hoop 70 and the second hoop 71 each have a thickness. These two thicknesses can be identical, but they can also be different.
[0076] For example, the first hoop 70 may have a thickness of 8 mm or more. The second hoop 71 may have a thickness of 15 mm. Thus, the lower hoop, in other words the second hoop 71, which supports more of the weight of the pylon 1, is thicker so as to have greater mechanical strength. The upper hoop, in other words the first hoop 70, which supports less of the weight of the pylon 1, is thinner so as to have a lower mass and cost. The first and second hoops 70, 71 may also have an identical or similar thickness, in particular to simplify their manufacture.
[0077] In particular, the offset portion 72 of the second hoop 71 of a module 3 comes to bear on the offset portion 72 of the first hoop 70 of another module 3 on which it is stacked.
[0078] The offset portions 72 of the hoops 70, 71 make it possible to create a support surface configured to participate in supporting the weight of the earth concrete cladding 5.
[0079] The first hoop 70 of a first module 3 can be subject to the second hoop 71 of a second module 3.
[0080] The attachment of a module to another module 3 makes it possible to form the pylon 1 and to adapt its height as required.
[0081] In addition, the covering support 6 of each module 3 may include a grid (not shown).
[0082] The mesh extends between the first hoop 70 and the second hoop 71. In particular, the mesh is connected to each of said hoops 70, 71.
[0083] In particular, the mesh follows the outer circumference of each of the hoops 70, 71.
[0084] The covering support 6 further comprises at least two uprights 73.
[0085] As shown in [Fig. 1], the covering support 6 may comprise five amounts 73.
[0086] The uprights 73 are configured to support the earth concrete cladding 5.
[0087] Each upright 73 has a first end 74 and a second end 75.
[0088] The first end 74 is connected to the first hoop 70 and the second end 75 is connected to the second hoop 71.
[0089] The mesh is connected to each of the uprights 73.
[0090] The earth concrete cladding 5 is projected onto the cladding support 6 and covers it at least in part.
[0091] Earth concrete is a so-called excavation earth, flexible, which does not deplete ecological reserves and allows for savings in the consumption of fossil resources.
[0092] The earth concrete therefore allows adaptation to the environment, while being ecological.
[0093] In particular, the earth concrete covering 5 is sprayed onto the mesh.
[0094] The mesh allows the earth concrete covering 5 to be fixed to the supporting structure 4. of pylon 1, while ensuring the bracing of said earth concrete cladding 5.
[0095] Thus, the mesh contributes to an improvement in the lifespan of pylon 1.
[0096] In addition, the earth concrete covering 5 thus projected makes it possible to protect the equipment housed in the supporting structure 4.
[0097] Furthermore, due to its attachment to the mesh which follows the outer circumference of the hoops 70, 71, the earth concrete covering 5 has a customizable geometry. In particular, it adapts to the geometry of the hoops 70, 71.
[0098] The cladding can in particular accommodate vegetation and / or nesting boxes in its thickness. The pylon thus coated is therefore perfectly suited to an urban and / or rural environment. Thus, the pylon 1 and its earth concrete cladding are perfectly suited to being planted as well as to receiving nesting boxes or insect hotels. The earth concrete thus makes it possible to encourage the installation of vegetation elements, nesting boxes and insect hotels.
[0099] The first hoop 70 and the second hoop 71 are configured to transfer to the less a portion of the weight of the earth concrete cladding 5 to the supporting structure 4.
[0100] The portion of the weight transferred from the earth concrete cladding 5 to the supporting structure 4 is substantial. This characteristic of the first and second hoops 70, 71, of transferring at least part of the weight of the earth concrete cladding 5 to the supporting structure, makes it possible to support and maintain the earth concrete cladding 5 of the pylon 1. Otherwise, the earth concrete cladding 5 would risk collapsing on itself. The uprights 73 of the cladding support 6 also participate in transferring the weight of the earth concrete cladding 5 to the supporting structure.
[0101] Thus, the earth concrete cladding 5 rests on the hoops 70, 71, and in particular on the second hoop 71. In particular, the second hoop 71 is located closest to the ground once the pylon 1 is in place. This second hoop 71 therefore bears more of the weight of said cladding 5. Thus, the offset portions 72 of the hoops 70, 71 also allow for better stability of the pylon 1 once in place.
[0102] The uprights 73 also make it possible to laterally stabilize the earth concrete covering 5 of each module 3 and to transmit the weight of said earth concrete covering 5 to the second hoop 71 of said module 3.
[0103] Furthermore, the pylon 1 may comprise at least one pylon head 8.
[0104] The pylon head 8 is notably composed of two sub-modules, of specific geometry. In particular, the pylon head 8 does not have the same geometry as the other stacked modules 3.
[0105] Pylon head 8 is the last stacked module forming pylon 1.
[0106] The pylon head 8 is configured to house telecom equipment such as a antenna 2. As shown in [Fig.5], the pylon head 8 houses two antennas 2, a first 4G antenna and a second 5G antenna.
[0107] The pylon head 8 comprises at least one antenna cover panel 80.
[0108] According to the example illustrated in [Fig.6], the pylon head 8 comprises three antenna cover panels 80.
[0109] The antenna cover panels 80 are configured to protect the quality of the signal emitted by the antenna 2.
[0110] In particular, each antenna cover panel 80 may be made of fiberglass. For example, the antenna cover panels 80 may be composite material panels having a fiberglass sandwich structure with flax fiber reinforcement and a honeycomb structure core made from existing raw materials. Such a composite material may comprise 38% by mass of resin, 37% by mass of fiberglass, 16% by mass corresponds to a honeycomb core, 3% by mass of flax fiber, to reinforce the panels.
[0111] In addition, the pylon head 8 comprises a supporting structure configured to cooperate with the supporting structure 4 of the modules 3.
[0112] The pylon head 8 further comprises at least one offset structure 81.
[0113] According to the example illustrated in [Fig.6], the pylon head 8 comprises three offset structures 81.
[0114] The offset structures 81 serve as support for the antenna cover panels 80.
[0115] An antenna cover panel 80 connects two offset structures 81 together.
[0116] Furthermore, earth concrete is sprayed between the antenna cover panels 80, in particular on corners, in particular made of galvanized steel, arranged between the panels 80.
[0117] Thus, the various stacked modules 3 make it possible to adjust, as required by the user, the height of the pylon 1. This modular structure has the advantage of facilitating the manufacture and assembly of the pylon 1. Said pylon 1 is, however, integrable in an urban and / or rural environment, has a long service life, and the maintenance of which is simple, convenient and secure.
[0118] The first module 3, that is to say the one closest to the ground, has an access, such as a door, allowing a user access to the interior of the supporting structure 4 so as to allow maintenance of the pylon 1, simplify it and make it secure.
[0119] The invention also relates to a method of mounting a pylon 1 as previously described.
[0120] The method may comprise a first step consisting of connecting the covering support 6 to the supporting structure 4.
[0121] In particular, the mesh may be connected to the uprights 73 and to the hoops 7 of the covering support 6. As indicated previously, preferably, a geotextile fabric may also be arranged inside the module, parallel to the mesh. Also, an anti-shrinkage mesh may be arranged between the geotextile fabric and the mesh.
[0122] The method may comprise a second step of spraying the earth concrete onto said cladding support 6, so as to form the earth concrete cladding 5.
[0123] Then, a third step may be to stack the supporting structure 4 of a first module 3 on the supporting structure of a second module 3. To this end, the plates 43 of the respective supporting structures of the stacked modules 3 are placed in abutment against each other. The plates 43 of the module 3 located above thus come into abutment against the plates 43 of the module 3 located below.
[0124] Finally, a fourth step may be to secure the supporting structure 4 of the first module 3 to the supporting structure 4 of the second module 3, by means of fixing members fixing to each other, two by two, the plates 43 of the supporting structures of the stacked modules 3.
[0125] The method of assembling the pylon 1 promotes the subsequent planting of vegetation on the pylon. The sprayed earth concrete cladding 5 makes it possible to promote the installation of nest boxes and insect hotels, as well as to easily allow vegetation to grow on earth concrete.
[0126] A step may be added consisting of stacking and then securing the pylon head 8 on a module 3, in particular the module 3 located highest in relation to the ground, once the pylon 1 is mounted on said ground.
[0127] It will also be noted that the invention is not limited to the embodiments described above. It will indeed appear to those skilled in the art that various modifications can be made to the embodiment described above, in light of the teaching which has just been disclosed to them.
[0128] In the detailed presentation of the invention which is made above, the terms used must not be interpreted as limiting the invention to the embodiment set out in the present description, but must be interpreted to include all equivalents whose prediction is within the reach of a person skilled in the art by applying his general knowledge to the implementation of the teaching which has just been disclosed to him.
Claims
Claims
1. Pylon (1) comprising at least two stacked modules (3), each module (3) comprising: • at least one supporting structure (4), extending between a first end (40) and a second end (41); • at least one sprayed earth concrete cladding (5); and • at least one cladding support (6); said covering support (6) comprising at least two hoops (70, 71), a first hoop (70) and a second hoop (71), the respective first and second hoops (70, 71) of the stacked modules (3) facing each other and being spaced apart from each other, the first hoop (70) being connected to the first end (40) of the supporting structure (4) and the second hoop (71) being connected to the second end (41) of the supporting structure (4);the stacked modules (3) being fixed to each other by means of respective plates (43) of the supporting structure (4) of said stacked modules (3), so as to provide a space between the respective first and second hoops (70, 71) of the stacked modules (3); the earth concrete cladding (5) being projected onto said cladding support (6) and covering it at least in part; and said first and second hoops (70, 71) being configured to transfer at least part of the weight of the earth concrete cladding (5) to the supporting structure (4).;
2. Pylon (1) according to the preceding claim, in which the first hoop (70) and the second hoop (71) are in the form of a ring plate, said hoops (70, 71) each comprising at least one flat offset portion (72), the offset portion (72) of the second hoop (71) of one module (3) and the offset portion (72) of the first hoop (70) of the other module (3) on which it is stacked being configured to partially support the weight of the concrete cladding of such projected (5).
3. Pylon (1) according to any one of the preceding claims, in which said cladding support (6) of each module (3) comprises a mesh extending between the first hoop (70) and the second hoop (71), and a geotextile fabric, said mesh following the outer periphery of the first hoop (70) and the second hoop (71), the concrete cladding (5) being projected onto said mesh, and the geotextile fabric being applied against the mesh, on the inside of the module, so as to avoid any projection of earth concrete inside the module (3) during its manufacture.
4. Pylon (1) according to the preceding claim, wherein said cladding support (6) of each module (3) comprises at least two uprights (73) each comprising a first end (74) and a second end (75), the first end (74) being connected to the first hoop (70) and the second end (75) being connected to the second hoop (71), the mesh being connected to each of the uprights (73), said uprights (73) being configured to support said sprayed earth concrete cladding (5).
5. Pylon (1) according to any one of the preceding claims, in which the supporting structure (4) of each module (3) comprises a plurality of uprights connected together by crosspieces so as to form a lattice-type structure, the supporting structure (4) delimiting a central opening (42) configured to house technical equipment.
6. Pylon (1) according to any one of the preceding claims, in which the supporting structure (4) is made of galvanized steel.
7. Pylon (1) according to any one of the preceding claims, further comprising at least one pylon head (8), configured to house at least one antenna (2), said pylon head (8) comprising at least one antenna cover panel (80), configured to protect the quality of a signal emitted by the antenna (2).
8. Pylon (1) according to the preceding claim, wherein said at least one antenna cover panel (80) comprises fiberglass.
9. Pylon (1) according to any one of claims 7 or 8, in which the pylon head (8) comprises a supporting structure to which a plurality of offset structures (81) are connected, an antenna cover panel (80) connecting two offset structures (81) together.
10. Method for assembling a pylon according to any one of claims 1 to 9, comprising at least the following steps: • connecting the cladding support (6) to the supporting structure (4); • spraying the earth concrete onto said cladding support (6) to form the earth concrete cladding (5); • stacking a first and a second module (3) by placing in support on each other of the plates (43) of the respective supporting structures (4) of the first and second modules (3); And securing the supporting structure (4) of the first module (3) to the supporting structure (4) of the second module (3) by means of fixing members configured to fix two by two the respective plates (43) of the first and second modules (3).