SUBMARINE COMMUNICATIONS CABLE, AND METHOD AND DEVICE FOR THE PRODUCTION THEREOF
20190086624 ยท 2019-03-21
Assignee
Inventors
Cpc classification
International classification
Abstract
In submarine communications cables having a copper tube surrounding optical conductors, an armoring that surrounds the tube and is made of braided strands, a jacket layer made for example of a copper tube and external insulation, the jacket layer of copper or copper tube is complicated and expensive to produce and the copper jacket layer impairs the flexibility of the submarine communications cable. The invention provides for the copper jacket layer around the strands of the armoring to be replaced by a wrapped layer formed by at least one thin, flexible band that can be easily wrapped like a tape around the strands of the armoring, and the wrapped layer formed from the at least one thin, flexible band increases the flexibility of the submarine communications cable.
Claims
1. A submarine communications cable comprising: optical conductors (10) surrounded by an electrically conductive tube (11); an armoring which surrounds the tube (11) externally and which is surrounded by a jacket layer; and an external insulation, wherein the jacket layer is formed by at least one wrapped layer (14).
2. The submarine communications cable as claimed in claim 1, wherein the wrapped layer (14) is formed by at least one thin flexible and/or elastic strip-like band (15, 17).
3. The submarine communications cable as claimed in claim 2, wherein the at least one band (15, 17) is formed by at least one at least partially conductive material, by an at least slightly and/or partially conductive plastic material, or by a plastic material which is more conductive than one for the purpose of electric insulation.
4. The submarine communications cable as claimed in claim 3, wherein the plastic material of the at least one band (15, 17) is self-bonding, the plastic material of the at least one band (15, 17) is cold self-bonding, and/or the plastic material of the at least one band (15, 17) is provided with an adhesive coating on at least one side.
5. The submarine communications cable as claimed in claim 2, wherein the at least one band (15, 17) is configured to widen and/or swell.
6. The submarine communications cable as claimed in claim 2, wherein the at least one thin, strip-like band (15, 17) is wrapped, or is wrapped with elastic pre-tensioning, in a helical or spiral manner around the armoring surrounding the tube (11) and/or the wrapped layer (14) is formed by a plurality of layers of bands (15, 17) wrapped around the armoring.
7. The submarine communications cable as claimed in claim 1, wherein the armoring is formed by a plurality of tensile elements, or a plurality of high-tensile strands or wires, which are arranged in a ring-like manner, or are braided, around the tube (11).
8. A method for producing a submarine communications cable, comprising: providing a tube (11), the tube (11) having an interior with optical conductors (10) arranged in the interior of the tube (11), with an outer armoring; and applying a jacket layer and an external insulation (18) around the armoring, wherein the jacket layer is produced by at least one thin band (15, 17) being wrapped around the armoring.
9. The method as claimed in claim 8, wherein the at least one band (15, 17) is wrapped around the armoring under pre-tensioning and/or elastically stretched.
10. The method as claimed in claim 8, wherein the at least one band (15, 17) is guided around the armoring in a helical and/or spiral manner, preferably or wherein the at least one band (15, 17) is guided around the armoring in a helical and/or spiral manner according to the winding or stranding principle.
11. The method as claimed in claim 8, wherein the at least one band (15, 17) is wrapped around the armoring such that marginal regions of adjacent windings of the at least one band (15, 17) overlap in order to form overlap areas (16).
12. The method as claimed in claim 8, wherein a plurality of the bands (15, 17) are wrapped simultaneously around the armoring, are wrapped at the same stranding angle, and/or are wrapped with overlapping of the marginal regions of each band (15, 17).
13. The method as claimed in claim 12, characterized in that overlapping marginal regions of the at least one band (15, 17) form liquid-tight overlap areas (16) during wrapping around the armoring and/or that when the at least one band (15, 17) is wrapped around the armoring, the marginal regions of adjacent windings of the band (15) and/or (17) are adhesively bonded in the overlap area (16), preferably in an automatic manner.
14. The method as claimed in claim 8, wherein, after the formation of the wrapped layer (14) forming the jacket layer, the at least one band (15, 17) swells, or the at least one band (15, 17) swells such that the wrapped layer (14) first swells after it has been produced and/or upon completion of the external insulation (18) surrounding the wrapped layer (14).
15. A device for producing a submarine communications cable, comprising: an apparatus for the formation of a tube (11) which surrounds optical conductors (10); an apparatus for the stranded application, if necessary, of an armoring to the tube (11); an apparatus for the production of a jacket layer which encloses the armoring; and an apparatus for generating an external insulation (18), wherein the apparatus for producing the jacket layer has at least one unwinder for accommodating a supply of a band (15, 17) and for the formation of the jacket layer from the band (15, 17).
16. The device as claimed in claim 15, further comprising an annular supply reel (26) which accommodates a stock of a band (15, 17) and through which a partially completed submarine communications cable to be provided with the armoring passes in a manufacturing direction (24).
17. The device as claimed in claim 16, wherein the annular supply reel (26) is rotatable, preferably in a rotatably driven manner, about a longitudinal center line (27) which coincides with the longitudinal center line (27) running in the manufacturing direction of the submarine communications cable to be produced.
18. The device as claimed in claim 15, further comprising two parallel supply reels (29, 30) whose longitudinal center axes lie on a common rotational axis (31) which intersects a longitudinal center axis (27) of the submarine communications cable to be produced at a right angle.
19. The device as claimed in claim 16, wherein the supply reel (26) is assigned a deflection, which revolves with the supply reel (26), for the band (15, 17) drawn off from the supply reel (26), preferably such that the band (15, 17) runs at an oblique angle, as seen in the manufacturing direction (24), from the deflection to the armoring of the communication cable to be wrapped, in particular downstream of the supply reel (26) as seen in the manufacturing direction (24).
20. The device as claimed in claim 18, wherein each of the supply reels (29, 30) is assigned a deflection, which revolves with the supply wheels (29, 30), for the band (15, 17) drawn off from each of the respective supply reels (29, 30), preferably such that the band (15, 17) runs at an oblique angle, as seen in a manufacturing direction (24), from the deflection to the armoring of the communication cable to be wrapped, in particular downstream of each of the respective supply reels (29, 30) as seen in the manufacturing direction (24).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Preferred exemplary embodiments of the invention are described below in more detail on the basis of the drawing, in which:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0033]
[0034] The electrically conductive tube 11 is surrounded on the outside by an armoring. The armoring serves to stabilize the submarine communications cable and to protect the electrically conductive tube 11 which forms the core. For this purpose, the armoring is configured to be resistant to tensile and compressive forces. In the shown exemplary embodiment, the armoring is formed from a plurality of cylindrical strands 13 having an identical diameter between 0.1 mm and 5 mm, as well as a tensile strength of at least 500 N/mm.sup.2. The strands 13 are preferably steel wires. These may be massive steel wires; but many thin steel strands can be braided to form the strand 13. The individual strands 13 are arranged to lie tightly together, in other words virtually gap-free, around the tube 11. Preferably the strands 13 are braided around the tube 11.
[0035] In the shown exemplary embodiment, the armoring surrounding the electrically conductive tube 11 is formed from only one layer of strands 13 that lie closely to one another and are preferably braided. But it is also conceivable to form the armoring from strands 13 arranged in a plurality of layers. It is also conceivable that the armoring is not formed by cylindrical strands 13, but instead by strands having a different cross-sectional shape, for example a rectangular or elliptical cross-section, or even to employ profiled strands.
[0036] The armoring is surrounded by a jacket layer. According to the invention, the jacket layer is configured as a wrapped layer 14. The wrapped layer 14 is formed from at least one thin and flexible, strip-like and/or flat band 15. Such a band 15 is flexible and thus constitutes a tape. The at least one band 15 is wrapped around the strands 13 in a helical or spiral configuration to form the jacket layer 14 surrounding the armoring. As shown in
[0037] It is also conceivable to form the single wrapped layer 14 of
[0038] The band 15 or the bands 15 and 17 are made of a thin pliable, flexible and/or elastic material which is ductile and contractible. The band 15 and/or 17 is thus realized in the manner of a tape. The material to be considered for the band 15 and/or 17 is preferably a semi-conductive, preferably slightly conductive, material, such as plastic, rubber or other elastomer. The thickness of the band 15 and/or 17 is less than 1 mm. In particular, the thickness of the band 15 and/or 17 lies in the range between 0.5 mm and 0.01 mm. Particularly preferred is a thickness ranging from 0.35 mm to 0.1 mm. The tensile strength of the band 15 and/or 17 is greater than 5 N/cm, in particular greater than 20 N/cm.
[0039] It is also conceivable for the band 15 and/or 17 to be realized as a thin fabric tape made of plastic with reinforcement fibers, in particular plastic fibers serving as the reinforcement.
[0040] In a preferred embodiment of the submarine communications cable, the wrapped layer 14 is formed from a semi-conductive band 15 and/or 17. The latter is created preferably by making the non-conductive plastic or other type of elastomer partially conductive for the formation of the band 15 and/or 17. For example, the plastic can be made conductive by the addition of carbon, which can be carbon black. The conductivity of such a band 15 and/or 17 is greater than that of electrical insulation materials.
[0041] The wrapped layer 14 of the submarine communications cable is surrounded by a preferably waterproof insulation 18. In the case of the submarine communications cable shown in
[0042] In the case of the submarine communications cable shown in
[0043] In the overlap areas 16, the overlapping marginal regions of adjacent windings of the bands 15 and/or 17, as a result of the elastic pre-tensioning of the bands 15 and/or 17, for example, when the strands 13 of the armoring are being wrapped, are elastically pre-tensioned and pressed onto one another so firmly that the wrapped layer 14 is or becomes impervious to liquids. In principle, the wrapped layer 14 then surrounds the strands 13 of the armoring in the manner of a shrink tubing. However, it is also conceivable that at least one side of each band 15 and/or 17 is provided with an adhesive layer, with the result that the overlapping marginal regions of adjacent windings of the band 15 and/or 17 are bonded together to become liquid-tight in the overlap areas 16. As an alternative or supplementary measure, it is conceivable to provide the band 15 and/or 17 with cold self-bonding characteristics so that the overlap areas 16 of adjacent windings of the band 15 and/or 17 bond to each other automatically, particularly during the wrapping of the strands 13 under elastic pre-tensioning, or are even bonded together by vulcanization, with the overlap areas 16 between adjacent windings of the bands 15 and/or 17 becoming liquid-tight.
[0044] The wrapped layer 14 formed from flexible thin bands 15 and/or 17 thereby assumes the task of holding the strands 13 of the armoring together during the production process, which in the case of conventional submarine communications cables is assumed by the jacket layer made of copper. In addition, at least slightly conductive bands 15 and/or 17 result in electrical field-smoothing by the wrapped layer 14. The remaining functions of the copper material replaced by the bands 15 and/or 17 for the formation of the jacket layer, in particular electrical conductivity and the formation of a hydrogen barrier, is assumed by the copper tube 11 surrounding the optical conductors 10 or another conductive material. The submarine communications cable having a jacket layer formed as a wrapped layer 14 from the band 15 and/or 17 exhibits the comparable properties of a submarine communications cable having a copper jacket layer. Furthermore, the wrapped layer 14 comprising the band 15 or bands 15 and 17 is also more flexible and cost-efficient, and can be produced more easily.
[0045]
[0046]
[0047]
[0048] The supply reel 26 with the attached roller 28 is rotatably driven circumferentially around the longitudinal center line 27 of the submarine communications cable to be produced. The rotational speed of the supply reel 26 with the roller 28 is synchronized with the production speed of the submarine communications cable, that is to say with the feed rate of the latter in the manufacturing direction 24 as the wrapped layer 14 is applied, such that a closed wrapped layer 14 with overlap areas 16 of overlapping marginal regions of the individual windings of the band 15 pursuant to
[0049]
[0050] The supply reels 29 and 30 are arranged on opposite sides of the longitudinal center line 27 of the submarine communications cable to be produced. Here the supply reels 29 and 30 lie in two parallel lines equidistant from the longitudinal center line 27. The supply reels 29 and 30 can be rotated about a common rotational axis 31. This rotational axis 31 runs vertically through the longitudinal center line 27 of the submarine communications cable to be produced, in other words the rotational axis 31 intersects the longitudinal center line 27 at a right angle. In the shown exemplary embodiment, each supply reel 29 and 30 is assigned an obliquely directed roller 32, 33. The rollers 32, 33 of the opposite supply reels 29, 30 are inversely directed at an oblique angle, specifically such that their longitudinal center lines intersect, as seen in the manufacturing direction, upstream of the position at which the bands 15 and 17 are wrapped on the strands 13 of the armoring. The rollers 32 and 33 are also permanently attached to their respective supply reel 29 and 30.
[0051] The rollers 32 and 33 are just as freely rotatable about their longitudinal center line as the supply reels 29 and 30. The rotational axis 31 of the two supply reels 29 and 30, on the other hand, can be rotatably driven, by means of a drive unit not shown in any detail in
[0052] The installation shown in
[0053] The method according to the invention for the production of the wrapped layer around the strands 13 for the formation of an armoring around the tube is explained in more detail in the following:
[0054] In the case of the method according to the invention, the jacket layer around the strands 13 is not formed by a copper layer, as was previously the case, but rather by a single or multilayer wrapped layer 14. This wrapped layer 14 is formed by at least one band 15, if necessary also by two bands 15 and 17, or even by more than two bands if required. The flexible and/or pliable bands 15 and/or 17 are made of thin, flat plastic strips. The band 15 and/or 17 is thus realized in a film-like configuration. One can therefore also refer to such a film-like band 15 and/or 17 as a tape. Such a band 15 and/or 17 is pliable and above all very flexible. The band 15 and/or 17 is wrapped around the strands 13 of the armoring by the devices shown in
[0055] The band 15 and/or 17 is preferably tightly wrapped around the armoring under tension. The wrapped layer 14 formed by the band 15 and/or 17 can thereby encompass the armoring with elastic pretensioning and therefore reliably hold the braided strands 13 of the armoring together in the manner of a shrink tubing. Furthermore, the overlapping marginal regions of adjacent windings of the band 15 and/or 17 are pressed onto each other in the overlap areas 16 due to elastic pretensioning when the bands 15 and/or 17 are wrapped around the strands 13, whereby a wrapped layer 14 is formed which is at least water-tight.
[0056] It is also conceivable that the band 15 and/or 17 is stretched in its elastic region during the wrapping of the arming and under constant pretensioning it thereby holds the strands 13 together. The elastic expansion of the band 15 and/or 17 as it is wrapped around the strands 13 can also result in the activation of specific characteristics of the bands 15 and/or 17, for example the swelling capacity of the bands 15 and/or 17. In such a case, the swelling of the bands 15, 17 does not commence until the wrapped layer 14 has been produced. As a result, it is above all possible for the outer interstices 23 between the adjacent strands 13 of the armoring to be reliably filled out by the swelling band 15 and/or 17.
[0057] It is also conceivable for the band 15 and/or 17 to acquire self-bonding, in particular cold self-bonding, properties by virtue of elastic elongation, thereby resulting in, for example, a cold bonding or a vulcanization of the overlapping marginal regions of adjacent windings of the band 15, 17 in the overlap areas 16.
[0058] The invention is not only suited for the submarine communications cable shown in
LIST OF REFERENCES
[0059] 10 optical conductor [0060] 11 tube [0061] 12 interior space [0062] 13 strand [0063] 14 wrapped layer [0064] 15 band [0065] 16 overlap area [0066] 17 band [0067] 18 insulation [0068] 19 inner layer [0069] 20 intermediate layer [0070] 21 outer layer [0071] 22 interstice [0072] 23 interstice [0073] 24 manufacturing direction [0074] 26 supply reel [0075] 27 longitudinal center line [0076] 28 roller [0077] 29 supply reel [0078] 30 supply reel [0079] 31 rotational axis [0080] 32 roller [0081] 33 roller