TEXTILE CONNECTOR, ROPE HARNESS COMPRISING SUCH A TEXTILE CONNECTOR AND MANUFACTURING METHOD

The textile connector with a tubular textile element and angularly offset connections addresses implementation and rigidity issues, offering improved mechanical resistance and uniformity, thus enhancing the efficiency of climbing harness connections.

FR3148375B1Active Publication Date: 2025-10-24ZEDEL CORP
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Patent Information

Application Number
FR2023004491
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-05-04
Publication Date
2025-10-24
Estimated Expiration
2043-05-04

AI Technical Summary

Technical Problem

Existing textile connectors used in climbing harnesses face challenges such as difficulty in implementation, rigidity due to overlapping strap thickness, and non-uniform sheath homogeneity, which complicates their use and efficiency.

Method used

A textile connector design featuring a tubular textile element with angularly offset connections and a wire element forming multiple loops, secured by a seam that passes through the textile element multiple times, providing enhanced mechanical resistance and homogeneity.

Benefits of technology

The solution results in a more efficient and easier-to-manufacture connector with improved mechanical resistance and uniform sheath homogeneity, enhancing the connection between belt and leg loops in climbing harnesses.

✦ Generated by Eureka AI based on patent content.

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Abstract

TEXTILE CONNECTOR, ROPE HARNESS COMPRISING SUCH A TEXTILE CONNECTOR AND METHOD OF MANUFACTURE A textile connector (1) comprises a woven element shaped into a tubular ring and a wire element (3) forming a plurality of loops (4) arranged in the tubular ring. The loops (4) provide mechanical strength to the textile connector (1). A seam (6) is formed by means of at least one wire (5) passing several times through two ends of the woven element (4) to close the tubular ring. The woven element is a tubular woven element (2) defining a through hole from a first end to a second opposite end along a longitudinal axis (A). The first end is an outer end (2a) which covers the second end forming an inner end (2b).The seam (6) fixes the outer end (2b) with the inner end (2a) and defines connections angularly offset from each other when observed along the longitudinal axis (A).
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Description

Title of the invention: TEXTILE CONNECTOR, ROPE HARNESS COMPRISING SUCH A TEXTILE CONNECTOR AND MANUFACTURING METHOD Technical field

[0001] The invention relates to a textile connector, to a rope harness and to a method of manufacturing such a textile connector. Prior art

[0002] In the field of working at height, it is known to form textile connectors which are in the form of a ring. In a particular embodiment, two ends of a strap are fixed to each other to define a closed ring capable of supporting a significant force, for example a fall.

[0003] A textile connector is commonly used in climbing harnesses to connect the leg loops and the waist belt. A method of manufacturing the connector is disclosed in document FR2857879 as well as in document US2008 / 229558. Document US2008 / 229558 discloses a tubular textile, in particular a braid, which is folded over itself several times or which is rolled up in order to form the ring.

[0004] It is also known from document EP3069764 to form an annular connector which has a sheath formed by a strap. A wire is wound so as to define several circles superimposed on each other. A strap is installed to wrap all of the circles and define a strap ring. A linear seam is made which extends in the longitudinal direction of the strap so as to conform the strap into a tubular ring, that is to say in the form of a tubular sheath whose wires are shaped into a circle to form the core of the connector. It appears that this production method is difficult to implement. It also appears that the two thicknesses of strap fixed to each other form a zone of rigidity which can complicate the use of the connector. The linear seam generally extends over the entire internal face of the ring.

[0005] Document US2020 / 0108294 discloses a yarn that is wound to form a plurality of circles. The circles are arranged around an annular textile that is then folded around the circles so as to enclose the yarn circles inside a sheath formed by the tubular textile. A seam is formed on the periphery of the sheath. Subject of the invention

[0006] An object of the invention is to provide a connector which has better homogeneity of the sheath.

[0007] This result is tended to be achieved by means of a textile connector comprising: - a wire element forming a plurality of loops, the loops providing mechanical resistance to the textile connector; - a textile element shaped into a tubular ring to form a sheath around the plurality of loops; and - a seam formed by means of at least one thread passing several times through the textile element to close the tubular ring.

[0008] The textile connector is remarkable in that the textile element is a tubular textile element defining a through hole from a first end to an opposite second end along a longitudinal axis; in that the stitching the first end with the second end and defines connections angularly offset from each other when viewed along the longitudinal axis.

[0009] Advantageously, the wire element has a first end and a second end which are not fixed to each other, the wire element defining at least four loops.

[0010] In a particular configuration, the wire element has a first end and a second end which are fixed to each other by a knot.

[0011] In an advantageous development, the loops represent a filling rate of the interior of the tubular ring of at least 50%.

[0012] Preferably, the connections connect the external face of the first end and the external face of the second end by spanning at least one of the first end and the second end to form a slide along the longitudinal axis.

[0013] Preferably, the first end is an outer end which covers the second end forming an inner end, the outer end covering the inner end to define an overlap zone. The connections extend from the overlap zone of the outer end to the inner end outside the overlap zone along the longitudinal axis.

[0014] According to one embodiment, two consecutive links are offset along the longitudinal axis.

[0015] Preferably, the connections are contained in a plane which is perpendicular to the longitudinal axis.

[0016] Advantageously, the successive connections extend over an angular sector at least equal to 180°. Even more advantageously, the successive connections extend over an angular sector at least equal to 360°.

[0017] In a preferred development, the seam is a radial seam with connections that pass through a central section of the tubular woven element, the section central section corresponding to a circular section representing less than 50% of the section of the tubular textile element.

[0018] The invention also relates to a roping harness whose connection between the belt and the leg loops is more efficient than the connections of the prior art.

[0019] This result is tended to be achieved by means of a rope harness comprising a belt, a pair of leg loops and a textile connector according to any one of the preceding configurations, the textile connector connecting the belt and the pair of leg loops.

[0020] The invention also relates to a method for manufacturing a textile connector which is easy to implement and which makes it possible to form a textile connector which performs better than those of the prior art.

[0021] This result is achieved by means of a method of manufacturing a textile connector comprising the following steps: - provide a tubular textile element defining a through hole and a wire element; - winding the wire element to form a plurality of loops, each loop passing through the through hole; - stretch the textile element to join the two ends of the textile element and form a tubular ring around the loops; - fixing the two ends of the textile element by a seam formed by means of at least one thread passing several times through the two longitudinal ends of the textile element to close the tubular ring, the seam defining connections angularly offset from each other when observed along the longitudinal axis. Brief description of the drawings

[0022] Other advantages and characteristics will emerge more clearly from the following description of particular embodiments and implementations of the invention given as non-limiting examples and represented in the appended drawings, in which:

[0023] [Fig-1]: a schematic view of a first step in the manufacture of a connector textiles;

[0024] [Fig.2]: a schematic view of a second stage of manufacturing a connector textiles;

[0025] [Fig.3]: a schematic view of a second stage of manufacturing a connector textile according to another embodiment;

[0026] [Fig.4]: a schematic view of a third step in the manufacture of a connector textiles;

[0027] [Fig.5]: a schematic sectional view of the closure of a textile connector according to a particular embodiment of a radial through seam;

[0028] [Fig.6]: a schematic side view of the closure of a textile connector with a spiral seam;

[0029] [Fig.7]: a schematic side view of the closure of a textile connector according to another embodiment with a radial seam;

[0030] [Fig.8]: a schematic sectional view of the closure of a textile connector along a sectional plane perpendicular to the longitudinal axis with a partial radial seam;

[0031] [Fig.9]: a schematic sectional view of the closure of a textile connector along a sectional plane perpendicular to the longitudinal axis with a radial through seam;

[0032] [Fig. 10]: a schematic elevation view of a textile connector according to the embodiment illustrated in Figures 7 to 9;

[0033] [Fig. 11]: an elevational view of a roping harness comprising a textile connector;

[0034] [Fig. 12]: a sectional view of a textile connector 1 without a wire element and a filling element; [Fig. 13]: a sectional view of a textile connector 1 provided with a filling element; [Fig. 14]: An elevation view of a roping harness with other textile connectors. Description of the embodiments

[0035] Figures 1 to 14 illustrate a textile connector 1 as well as the steps of its manufacturing process or its integration into a rope harness. The textile connector 1 is formed by means of a tubular textile element 2 and a wire element 3. The wire element 3 is a wire of any cross-section, for example circular, rectangular or square. The wire element 3 is a resistance wire which ensures mechanical resistance to a tensile force of the textile connector 1. The textile element may be a woven element, a knitted element or a braided element of tubular shape. Preferably, the textile element is formed in a single weaving, knitting or braiding operation, that is to say without moving the textile element onto other equipment.

[0036] The wire element 3 is capable of being wound so as to form a plurality of loops 4, i.e. a plurality of circles. The loops 4 are arranged one behind the other along the longitudinal axis of the wire element 3. The loops 4 are arranged one on top of the other so as to form a general annular shape.

[0037] The textile element 2 extends along a longitudinal axis A and it defines a through hole along the longitudinal axis. When forming the multiple loops 4, the wire element 3 passes through the through hole. For example, one end of the wire element 3 is associated with a needle and the needle passes several times through the through hole to form the loops 4. To facilitate the passage of the wire element 3, it is advantageous to narrow the tubular strap 2, that is to say by reducing the length of the tubular strap 2 along the longitudinal axis A, that is to say perpendicular to the cutting plane which defines the through hole. The two ends of the textile element 2 are intended to join to form a sheath around the loops. The two ends join to define a ring.

[0038] The minimum number of loops 4 depends on the performance required for the textile connector 1, for loops in a predefined material.

[0039] The multiple loops 4 can be made in different ways. In an advantageous embodiment illustrated in [Fig.2], the multiple loops 4 are formed and the two ends of the two strands 3a and 3b of the wire element 3 are not fixed to each other. The two ends are free to move relative to each other. The loops 4 are held in place by the friction forces that exist between the multiple portions of the wire that form the loops 4. The more the number of loops is increased, the more the contact surfaces between the loops are increased, which has the effect of increasing the friction forces. Even in the absence of knots at the ends of the wire element, the loops are able to maintain their dimensions when subjected to a force that tends to open the loops 4.

[0040] The number of loops to be formed to maintain the loops depends on the occupancy rate of the wires in the through hole of the tubular strap and the surface condition of the wire. The rougher the wire, the greater the friction forces will be, which makes it possible to reduce the number of turns 4. In order to reduce the number of loops, it is advantageous to have a wire whose surface roughness increases in order to have the highest possible static friction force. The surface is rough and preferably free of annular ridges or annular grooves.

[0041] In order to reduce the number of loops, it is advantageous to limit the possibilities of movement of the loops relative to each other inside the sheath. It is also advantageous to have a filling rate of the through hole by the wire of at least 50%, preferably at least 60%, even more preferably at least 70% or even at least 80% or 90% by volume. By judiciously choosing the internal section of the sheath, the section of the wire, and the surface roughness of the wire, it is possible to prevent the opening of the loops from four loops. During stress, it is the friction between the loops which ensures the maintenance and not the mechanical strength of the sheath. It is advantageous to form at least 10 loops, preferably at least 15 loops, or even at least 20 loops or at least 30 loops.

[0042] In an alternative embodiment, the multiple loops 4 are formed and the two ends of the two strands 3a and 3b of the wire element 3 are fixed with each other. It is advantageous if the fixing is a knot 3c formed by the first end 3a with the second end 3b. Since both ends are fixed, it is possible to use a reduced number of loops 4, preferably less than ten loops 4. This embodiment makes it possible to relax the constraints on the surface roughness of the wire element and on the filling rate of the sheath by the loops in the wire element.

[0043] Once the loops 4 have been formed, the textile element 2 is stretched so that the two opposite ends along the longitudinal direction A are in contact with each other. The textile element 2 defines a first end and a second end which are opposite along the longitudinal axis A. The textile element 2 follows the thread 3 and reproduces the shape of the loops 4. The textile element 2 forms a tubular ring. The textile element 2 forms a tube which limits the movements of the loops 4 relative to each other. Preferably, the textile element 2 defines a first end called the outer end 2a which is arranged around a second end called the inner end 2b as illustrated in [Fig.4]. The outer end 2a covers the inner end 2b and defines an overlapping zone which is annular in shape.In an alternative embodiment, the two ends are placed opposite each other along the longitudinal axis A, it is possible to add an annular reinforcement which covers the two ends and which is crossed by the multiple loops 4. The annular reinforcement can be a textile element, made of polymer material or any material suitable for facilitating the fixing of the two ends.

[0044] The loops 4 are limited in movement relative to each other by means of the tubular strap 2. The tubular strap 2 is preferably made of a material which has a mechanical resistance lower than the mechanical resistance of all the loops 4 for forces which tend to increase the diameter of the loops 4. In other words, the mechanical resistance of the textile connector 1 which opposes a tensile force along a diameter is not provided by the tubular strap 2 but by the multiple loops 4. In the absence of the loops 4, the tubular strap 2 tears while the textile connector 1 provided with the loops 4 supports the force, the other characteristics being identical.

[0045] The first end and the second end of the tubular strap 2 are fixed together by a seam 5. The seam 5 is formed by means of at least one sewing thread 6 which passes several times through the tubular strap 2. The seam defines a plurality of connections by means of the at least one sewing thread 6 which fixedly mount the first tubular end with the second tubular end to close the tubular ring around the loops 4. The connections are angularly offset from each other when viewed along the longitudinal axis A. The connections are arranged rotating around the longitudinal axis A passing through the center or almost through the center of the tube section. Figures 5, 6, 7, 8, 9 and 10 illustrate different embodiments of the connections which fixedly connect the two ends in the longitudinal direction A.

[0046] Preferably, the seam 5 is a radial seam with connections which pass through a central section of the tubular strap 2. The central section corresponding to a circular section representing less than 50% of the section of the tube. Such an embodiment is illustrated in [Fig.5]. This embodiment makes it possible to limit the movements of the loops 4 in wire element.

[0047] The strands of the at least one sewing thread pass exactly or approximately through the tubular strap 2 to form a diameter which limits the movements of the thread 3 forming the loops 4 in the tube. The excess thickness of the strap 2 coming from the overlap zone is limited to a small ring in the longitudinal direction A which allows for better behavior of the textile connector 1 when it is deformed. It also appears that the radial stitching is carried out over a shorter length which makes this operation more interesting to carry out.

[0048] In an embodiment illustrated in [Fig. 6], a first set of connections is contained in a plane which is perpendicular to the longitudinal axis A. In other words, the connections define a purely radial seam. The connections form diameters or substantially diameters which are included in the same plane. The connections pass only through the overlap zone in order to fix the two layers of textile element 2. Between two connections, the sewing thread 6 extends exclusively perpendicular to the longitudinal axis A.

[0049] In another embodiment also illustrated in [Fig. 6], a second set of connections is in the form of a spiral seam. Two consecutive connections are offset along the longitudinal axis A. Between two connections, the thread 6 extends mainly perpendicular to the longitudinal axis A. The portion of the sewing thread 6 which runs along the external wall of the tubular strap 2 extends along the longitudinal axis A and along an angular sector of the circle perpendicular to the longitudinal axis A such as that illustrated in [Fig. 5]. [Fig. 6] illustrates an overlap between the two ends of the textile element 2 with loops 4 shown in dotted lines and connections which form a complete turn in radial configuration and two complete turns in spiral configuration.

[0050] Preferably, the multiple links 6 connect the outer wall of the first end with the outer wall of the second end by spanning the interface between the two ends in the longitudinal direction A to close the ring. This configuration makes it possible to define an annular slide around the longitudinal direction A. a connector which slides against the outer wall of the sheath comes into contact with the connections and slides over the end(s) of the sheath. This embodiment is advantageous when the two ends of the textile element 2 are arranged opposite each other in the longitudinal direction A, preferably in contact.

[0051] However, it is particularly advantageous if there is an overlap and the sewing thread 6 runs along the outer wall of the tubular strap 2 from the outer end 2a to the inner end 2b. The sewing thread 6 is inserted into the tubular strap 2 in the overlap area to fix the outer end 2a with the inner end 2b and it is also inserted into the inner end 2b outside the overlap area. The sewing thread 6 forms a slide above the terminal portion of the outer end 2a so as to press the terminal portion of the outer end 2a against the inner end 2b or at least to prevent the terminal portion of the inner end from rising when an element slides against the tubular strap 2. An embodiment is illustrated in [Fig.7] with portions of sewing threads that extend exclusively along the longitudinal axis A, but misalignment of the seams relative to the axis A is possible as long as the seam connects the outer end in the overlap zone with the inner end outside the overlap zone. The adjacent connections are angularly offset and form an annular slide that overcomes the terminal part of the outer end so that the sliding of an element along the textile connector in the longitudinal direction A does not get caught against the terminal part. The overlap makes it possible to form an excess thickness that slightly stiffens the ring and facilitates the formation of the connections 6. [Fig.7] illustrates connections that press the terminal part of the outer end against the inner end, forming slides.In the illustrated embodiment, the connections are parallel to the longitudinal direction A in their external part, it is possible to offset them angularly. The embodiment illustrated in [Fig.7] can be made with a surface seam as shown in [Fig.8] or with a radial seam as shown in [Fig.9].

[0052] To have an effective seam between the two ends of the tubular strap 2, the successive connections extend over an angular sector at least equal to 180°. The angle is measured with an observation along the longitudinal axis 1. Even more preferably, the successive connections extend over an angular sector at least equal to 360°. An angle of 360° corresponds to complete coverage of the periphery and coverage of more than 360° corresponds to two seams which overlap in an observation along the longitudinal axis A.

[0053] The tubular textile element 2 may have any weaving pattern and may be a braid or a knit.

[0054] Preferably, the multiple loops 4 occupy more than 30% of the internal volume defined by the textile element 2, preferably more than 50% and even more preferably more than 70% or even more than 80%. Advantageously, the multiple loops 4 occupy less than 90% of the internal volume defined by the tubular strap.

[0055] [Fig. 11] illustrates a roping harness 7 which comprises a belt 8 and a pair of leg loops 9. The belt 8 is connected to the leg loops 9 by the textile connector 1. The textile connector 1 is capable of forming a ventral suspension point, that is to say it is capable of suspending the user wearing the harness. However, the textile connector 1 can be used to form another part of a roping harness, for example a sternal attachment point, an attachment point on a shoulder strap. It is also possible to attach the textile connector 1 to a lanyard.

[0056] More generally, it is advantageous to form a ring of textile material whose compromise between weight, mechanical performance and cost is better controlled. When the desired mechanical performance is high, it is advantageous to fill the tube with several loops of wire element. On the other hand, for lower mechanical performance, the ring may be devoid of wire element loops. The mechanical strength is provided by the mechanical characteristics of the textile tube. [Fig. 12] illustrates a textile connector 1 devoid of wire element loops 3.

[0057] Depending on the configuration of the connector, the latter can be used as a ventral attachment ring of a roping harness, for example a mountaineering harness. The connector can be used as a closing ring of a roping harness to form a sternal attachment point, for example for a sternal ring of a harness marketed under the name NEWTON or VOLT. It is also possible to use the textile connector as a material holder of a roping harness, a backpack, a tool bag and more generally a bag. The textile connector can be attached to another connector, preferably a metal connector, for example a carabiner. The textile connector can be used as a handle to support a stretcher. [Fig. 14] illustrates a roping harness provided with a dorsal suspension point, a lateral suspension point or a ventral suspension point formed by a textile connector 1.The rope harness is equipped with equipment holders located on the belt or on a shoulder strap.

[0058] The textile connector has a single-piece textile tube, i.e. an intrinsically annular element, for example a tubular strap or a braid, the two ends of which are connected to each other and which are fixed by a radial seam. The tube is closed by means of a single seam which is annular, which makes it possible to have a more uniform thickness around the entire circumference of the tubular ring.

[0059] When the ring is devoid of wire element loops inside the tube, it It is advantageous to fill the tube with a filler element to prevent the ring from flattening. [Fig. 13] illustrates a textile connector that is filled with different filler elements 10. The filler element 10 has a tensile strength that is lower than the tensile strength of the tubular ring alone. The mechanical effect of the filler element 10 on the performance of the textile connector is small or even zero compared to that provided by the textile ring alone. For example, the interior of the tube is filled with a foam, gel or paste. The filler element 10 may be a wire filler element, for example a thread, rope, cord or strap.It may be of interest to use a filler wire element in order to increase the friction between the wires which form the loops even if the filler wire element has lower mechanical performance, for example lower tensile strength.

[0060] It is preferable that the material disposed inside the tube is traversed by the thread of the seam. The filling material 10 has a resistance to elongation which is lower than the resistance to elongation of the tube. The mechanical performance is provided by the tube and not by the filling material 10 which only intervenes to define the shape of the textile connector 1.

Claims

Claims

1. An annular textile connector (1) comprising: - a tubular textile element (2) having a first end and a second end opposite along a longitudinal axis (A), the tubular textile element (2) being a tubular strap, a tubular knit or a tubular braid, the first end joining the second end to shape the tubular textile element (2) into a tubular ring; - a seam (6) formed by means of at least one thread (5) which passes several times through the textile element (2) to close the tubular ring;characterized in that the radial seam (6) of the first end with the second end and defines connections angularly offset from each other when observed along the longitudinal axis (A), the seam (6) being a radial seam with connections which pass through a central section of the tubular woven element (2), the central section corresponding to a circular section representing less than 50% of the section of the tubular textile element (2); in that a wire element and / or a filling element are arranged in the tubular textile element (2), the tubular textile element (2) shaped as a tubular ring forming a sheath around the plurality of loops (4) and / or the filling element;wherein the wire element (3) forms a plurality of loops (4), the tubular textile element (2) being made of a material which has a mechanical strength lower than the mechanical strength of all the loops (4) for forces which tend to increase the diameter of the loops (4), and wherein the filling element has a tensile strength lower than a tensile strength of the tubular ring.;

2. Annular textile connector (1) according to claim 1 in which the connections connect an external face of the first end and an external face of the second end and form a slide along the longitudinal axis (A) between the external face of the first end and the external face of the second end.

3. An annular textile connector (1) according to claim 2 wherein the first end is an outer end (2a) which overlaps the second end forming an inner end (2b), the outer end (2a) overlapping the inner end (2b) to define an overlapping area and wherein the connections extend from the overlapping area covering from the outer end (2a) to the inner end (2b) outside the overlap zone along the longitudinal axis (A).

4. Annular textile connector (1) according to claim 1 in which two consecutive connections are offset along the longitudinal axis (A).

5. An annular textile connector (1) according to claim 1 wherein the connections are contained in a plane which is perpendicular to the longitudinal axis (A).

6. Annular textile connector (1) according to any one of claims 1 to 5 in which the successive connections extend over an angular sector at least equal to 180°.

7. Annular textile connector (1) according to the preceding claim in which the successive connections extend over an angular sector at least equal to 360°.

8. An annular textile connector (1) according to any one of claims 1 to 7 wherein the wire element (3) has a first end (3a) and a second end (3b) which are not fixed to each other, the wire element (3) defining at least four loops (4).

9. An annular textile connector (1) according to any one of claims 1 to 7 wherein the wire element (3) has a first end (3a) and a second end (3b) which are fixed to each other by a knot (3c).

10. Annular textile connector (1) according to any one of claims 1 to 9 in which the loops (4) represent a filling rate of the interior of the tubular ring of at least 50%.

11. An annular textile connector (1) according to any one of claims 1 to 10 wherein the filling element is selected from a foam, a gel, a paste and a wire filling element.

12. A roping harness comprising a belt, a pair of leg loops and an annular textile connector (1) according to any one of the preceding claims, the annular textile connector (1) connecting the belt and the pair of leg loops or forming a dorsal or sternal suspension point.

13. A method of manufacturing an annular textile connector (1) comprising the following steps: - providing a tubular textile element (2) defining a through hole, the tubular textile element being chosen from a tubular strap, a tubular knit or a tubular braid; - providing a wire element and / or a filling element, - winding a wire element (3) to form a plurality of loops (4), each loop (4) passing through the through hole of the tubular textile element (2), and / or arranging the filling element in the tubular textile element (2); - shaping the tubular textile element (2) to join the two longitudinal ends of the tubular textile element (2) and form a tubular ring, the tubular textile element (2) shaped into a tubular ring forming a sheath around the plurality of loops (4) and / or the filling element; - fixing the two ends of the tubular textile element (2) by a seam (5) formed by means of at least one thread (6) passing several times through the two longitudinal ends of the textile element (4) to close the tubular ring, the seam (6) being a radial seam with connections which pass through a central section of the tubular woven element (2), the central section corresponding to a circular section representing less than 50% of the section of the tubular textile element (2), the seam (6) defining connections angularly offset from each other when observed along the longitudinal axis (A);wherein the tubular textile element (2) is made of a material which has a mechanical resistance lower than the mechanical resistance of all the loops (4) for forces which tend to increase the diameter of the loops (4) and wherein the filling element has a tensile strength lower than a tensile strength of the tubular ring.;