EP2238288B1 - Verfahren und vorrichtung zur herstellung eines kabels mit zwei schichten der in-situ-verbindungstype - Google Patents
Verfahren und vorrichtung zur herstellung eines kabels mit zwei schichten der in-situ-verbindungstype Download PDFInfo
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- EP2238288B1 EP2238288B1 EP08869079.7A EP08869079A EP2238288B1 EP 2238288 B1 EP2238288 B1 EP 2238288B1 EP 08869079 A EP08869079 A EP 08869079A EP 2238288 B1 EP2238288 B1 EP 2238288B1
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- wires
- cable
- inner layer
- rubber
- assembling
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B5/00—Making ropes or cables from special materials or of particular form
- D07B5/12—Making ropes or cables from special materials or of particular form of low twist or low tension by processes comprising setting or straightening treatments
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B1/00—Constructional features of ropes or cables
- D07B1/06—Ropes or cables built-up from metal wires, e.g. of section wires around a hemp core
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B1/00—Constructional features of ropes or cables
- D07B1/16—Ropes or cables with an enveloping sheathing or inlays of rubber or plastics
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B3/00—General-purpose machines or apparatus for producing twisted ropes or cables from component strands of the same or different material
- D07B3/02—General-purpose machines or apparatus for producing twisted ropes or cables from component strands of the same or different material in which the supply reels rotate about the axis of the rope or cable or in which a guide member rotates about the axis of the rope or cable to guide the component strands away from the supply reels in fixed position
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B7/00—Details of, or auxiliary devices incorporated in, rope- or cable-making machines; Auxiliary apparatus associated with such machines
- D07B7/02—Machine details; Auxiliary devices
- D07B7/14—Machine details; Auxiliary devices for coating or wrapping ropes, cables, or component strands thereof
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B7/00—Details of, or auxiliary devices incorporated in, rope- or cable-making machines; Auxiliary apparatus associated with such machines
- D07B7/02—Machine details; Auxiliary devices
- D07B7/14—Machine details; Auxiliary devices for coating or wrapping ropes, cables, or component strands thereof
- D07B7/145—Coating or filling-up interstices
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B1/00—Constructional features of ropes or cables
- D07B1/06—Ropes or cables built-up from metal wires, e.g. of section wires around a hemp core
- D07B1/0606—Reinforcing cords for rubber or plastic articles
- D07B1/062—Reinforcing cords for rubber or plastic articles the reinforcing cords being characterised by the strand configuration
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B1/00—Constructional features of ropes or cables
- D07B1/06—Ropes or cables built-up from metal wires, e.g. of section wires around a hemp core
- D07B1/0606—Reinforcing cords for rubber or plastic articles
- D07B1/062—Reinforcing cords for rubber or plastic articles the reinforcing cords being characterised by the strand configuration
- D07B1/0626—Reinforcing cords for rubber or plastic articles the reinforcing cords being characterised by the strand configuration the reinforcing cords consisting of three core wires or filaments and at least one layer of outer wires or filaments, i.e. a 3+N configuration
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/10—Rope or cable structures
- D07B2201/1012—Rope or cable structures characterised by their internal structure
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- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2015—Strands
- D07B2201/2023—Strands with core
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2015—Strands
- D07B2201/2024—Strands twisted
- D07B2201/2025—Strands twisted characterised by a value or range of the pitch parameter given
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- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2015—Strands
- D07B2201/2024—Strands twisted
- D07B2201/2027—Compact winding
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- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2015—Strands
- D07B2201/2024—Strands twisted
- D07B2201/2027—Compact winding
- D07B2201/2028—Compact winding having the same lay direction and lay pitch
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- D—TEXTILES; PAPER
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- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2015—Strands
- D07B2201/2024—Strands twisted
- D07B2201/2029—Open winding
- D07B2201/203—Cylinder winding, i.e. S/Z or Z/S
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- D—TEXTILES; PAPER
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- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2015—Strands
- D07B2201/2024—Strands twisted
- D07B2201/2029—Open winding
- D07B2201/2031—Different twist pitch
- D07B2201/2032—Different twist pitch compared with the core
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2015—Strands
- D07B2201/2038—Strands characterised by the number of wires or filaments
- D07B2201/2039—Strands characterised by the number of wires or filaments three to eight wires or filaments respectively forming a single layer
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2015—Strands
- D07B2201/2046—Strands comprising fillers
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2047—Cores
- D07B2201/2052—Cores characterised by their structure
- D07B2201/2059—Cores characterised by their structure comprising wires
- D07B2201/2061—Cores characterised by their structure comprising wires resulting in a twisted structure
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2201/00—Ropes or cables
- D07B2201/20—Rope or cable components
- D07B2201/2047—Cores
- D07B2201/2052—Cores characterised by their structure
- D07B2201/2059—Cores characterised by their structure comprising wires
- D07B2201/2062—Cores characterised by their structure comprising wires comprising fillers
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2205/00—Rope or cable materials
- D07B2205/20—Organic high polymers
- D07B2205/2075—Rubbers, i.e. elastomers
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2205/00—Rope or cable materials
- D07B2205/20—Organic high polymers
- D07B2205/2075—Rubbers, i.e. elastomers
- D07B2205/2082—Rubbers, i.e. elastomers being of synthetic nature, e.g. chloroprene
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2205/00—Rope or cable materials
- D07B2205/30—Inorganic materials
- D07B2205/3021—Metals
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2207/00—Rope or cable making machines
- D07B2207/20—Type of machine
- D07B2207/204—Double twist winding
- D07B2207/205—Double twist winding comprising flyer
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2207/00—Rope or cable making machines
- D07B2207/40—Machine components
- D07B2207/4072—Means for mechanically reducing serpentining or mechanically killing of rope
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- D—TEXTILES; PAPER
- D07—ROPES; CABLES OTHER THAN ELECTRIC
- D07B—ROPES OR CABLES IN GENERAL
- D07B2501/00—Application field
- D07B2501/20—Application field related to ropes or cables
- D07B2501/2046—Tire cords
Definitions
- the present invention relates to processes and devices for manufacturing two-layer metal cables, of M + N construction, used in particular for the reinforcement of rubber articles, in particular tires.
- a radial tire comprises in known manner a tread, two inextensible beads, two flanks connecting the beads to the tread and a belt circumferentially disposed between the carcass reinforcement and the tread.
- This belt consists of various plies (or “layers") of rubber reinforced or not by reinforcing elements (“reinforcements”) such as cords or monofilaments, metal or textile type.
- the tire belt generally consists of at least two superimposed belt plies, sometimes called “working” plies or “crossed” plies, whose reinforcing cords, generally of metal, are arranged substantially parallel to each other at the same time. interior of a web, but crossed from one web to another, that is to say inclined, symmetrically or otherwise, with respect to the median circumferential plane, of an angle which is generally between 10 ° and 45 ° depending on the type of tire considered.
- the crossed plies may be supplemented by various other plies or layers of auxiliary rubber, of variable widths depending on the case, with or without reinforcements;
- examples of simple rubber cushions include so-called “protection” plies intended to protect the rest of the belt from external aggression, perforations, or so-called “hooping” plies comprising reinforcements oriented substantially along the circumferential direction (so-called “zero degree” plies), whether radially external or internal with respect to the crossed plies.
- the third requirement is particularly strong for tire casings for industrial vehicles such as heavy vehicles, designed to be retreaded once or more when the treads they comprise reach a degree of critical wear after prolonged rolling.
- steel cables For reinforcing belts above, are generally used steel cables ( “steel cords”) called “layers” ( “layered cords”) consisting of a central core and one or more concentric layers son arranged around this soul.
- the most widely used layered cables are essentially M + N or M + N + P construction cables, formed of a core of M wire (s) surrounded by at least one layer of N wires which may itself be surrounded by an outer layer of P son, the M, N or P son having generally the same diameter for reasons of simplification and cost.
- the two-layer cables most used today in tire belts are essentially M + N construction cables consisting of an inner core or layer of M wires (especially of 3 or 4 wires) and an outer layer of N wires (e.g., from 6 to 12 wires).
- the outer layer is relatively desaturated due to the high diameter of the inner layer provided by the presence of M core son, especially when the diameter of the core son is chosen to be greater than that of the son of the outer layer.
- This type of construction promotes, as is known, the external penetrability of the cable by the tire calendering rubber or other rubber article during the cooking of the latter, and consequently, it is possible to improve the endurance of the cables in fatigue and fatigue-corrosion, particularly with regard to the cleavage problem mentioned above.
- the construction cables 3 + N or 4 + N have the disadvantage that they are not penetrable to the core because of the presence of a channel or capillary in the center of the three or four core wires, which remains vacuum after impregnation with rubber and therefore conducive, by a kind of "wicking" effect, to the propagation of corrosive media such as water.
- This disadvantage is well known, it has been exposed for example in patent applications WO 01/00922 , WO 01/49926 , WO 2005/071157 , WO 2006/013077 .
- the inner layer Ci by removing its son, through a unit core wire (or "core wire") and remove a wire from the outer layer; thus, the cable obtained, for example of construction 1 + 3 + (N-1), becomes penetrable from the outside to its center.
- the core wire should be neither too thin, otherwise it does not produce the desaturation effect that is targeted, nor too big otherwise the wire does not stay in the center of the cable.
- a 0.12 mm diameter core wire is used for 0.35 mm diameter C 1 and C 1 wire wires (see for example RD (Research Disclosure) August 1990, No. 316107, "Steel cord construction ").
- calendering consists in transforming the cable, by incorporation between two layers of rubber in the green state, into a metal rubberized fabric used as a semi-finished product for any subsequent manufacture, for example for the manufacture of a tire.
- the winding and the intermediate storage of the inner layer require, during the coil winding of the inner layer, the use of spacers and steps important slicing to prevent parasitic bonding between the wound layers and, for the same layer, between the turns.
- any range of values designated by the expression "between a and b" represents the range of values from more than a to less than b (i.e., terminals a and b excluded) while any range of values designated by the expression “from a to b” means the range from a to b (i.e., including the strict limits a and b).
- a first essential characteristic of the above method is to use, both for the assembly of the inner layer and for that of the outer layer, a twisting step.
- the M core wires are twisted together (direction S or Z) to form the inner layer Ci, in a manner known per se; the son are delivered by feeding means such as coils, a distribution grid, coupled or not to a joining grain, intended to converge the core son in a common point of torsion (or assembly point).
- the M yarns of the inner layer have for example a diameter d 1 of between 0.20 and 0.50 mm, in particular in a range of 0.23 to 0.40 mm; their twisting pitch p 1 is for example between 5 and 30 mm.
- the pitch "p" represents the length, measured parallel to the axis of the cable, at the end of which a wire having this pitch performs a complete revolution about said axis of the cable.
- the inner layer (Ci) thus formed is then sheathed with filling gum in the green state, provided by an extrusion screw at an appropriate temperature.
- the filling rubber can thus be delivered at a fixed point, unique and compact, by means of a single extrusion head, without using an individual sheathing son upstream of the assembly operations, before forming the inner layer, as described in the prior art.
- This method has the significant advantage of not slowing down the conventional assembly process. It enables the complete operation of initial twisting, scrubbing and final twisting in one line, irrespective of the type of cable produced (compact layer cable as a cylindrical layer cable), all at high speed.
- the method of the invention may be implemented at a speed (running speed of the cable on the twisting-scrub line) greater than 70 m / min, preferably greater than 100 m / min.
- the tension stress exerted on the M threads is preferably between 10 and 25% of the breaking force of the son.
- the extrusion head may comprise one or more dies, for example an upstream guide die and a downstream die calibration. It is possible to add continuous measurement and control means of the diameter of the cable connected to the extruder.
- the extrusion temperature of the filling rubber is between 60 ° C and 120 ° C, more preferably between 70 ° C and 110 ° C.
- the extrusion head thus defines a cladding zone having the shape of a cylinder of revolution whose diameter is of course adjusted to the specific construction of the cable manufactured.
- the extrusion diameter is preferably between 0.4 and 1.2 mm, more preferably between 0.5 and 1.0 mm.
- the extrusion length is preferably between 4 and 10 mm.
- the inner layer Ci at any point of its periphery, is covered with a minimum thickness of filling rubber which is preferably greater than 5 ⁇ m, more preferably greater than 10 ⁇ m, for example between 10 and 50 microns.
- the amount of filling gum delivered by the extrusion head is adjusted to a preferred range of 5 to 40 mg per gram of final cable (i.e., gummed in situ).
- the amount of filling gum delivered be between 5 and 30 mg, more preferably still within a range of 10 to 25 mg per g of cable.
- the diene elastomer of the filling rubber is preferably chosen from the group consisting of polybutadienes (BR), natural rubber (NR), synthetic polyisoprenes (IR), different copolymers of butadiene, the various copolymers of isoprene, and mixtures of these elastomers.
- a preferred embodiment consists in using an "isoprene" elastomer, that is to say a homopolymer or a copolymer of isoprene, in other words a diene elastomer chosen from the group consisting of natural rubber (NR). , the synthetic polyisoprenes (IR), the various isoprene copolymers and the mixtures of these elastomers.
- the filling rubber is of the vulcanizable type, that is to say that it generally comprises a vulcanization system adapted to allow the crosslinking of the composition during its cooking, typically based on sulfur and one or more accelerators.
- the filling rubber may also comprise all or part of the usual additives intended for tire rubber matrices, such as, for example, reinforcing fillers such as carbon black or silica, antioxidants, oils, plasticizers, anti-eversion agents, resins, adhesion promoters, and cobalt salts.
- the filling rubber has, in the crosslinked state, a secant modulus in extension E10 (at 10% elongation) which is between 5 and 25 MPa, more preferably between 5 and 20 MPa.
- the final assembly is carried out, always by twisting (S or Z direction), of the N wires of the outer layer (Ce) around the inner layer (Ci) and sheathed.
- the N threads come lean on the filling rubber, embed itself in it.
- the filling rubber moving under the pressure exerted by these external son, naturally has a tendency to fill, at least in part, each of the interstices or cavities left empty by the son, between the inner layer and the outer layer.
- the number N of wires of the outer layer N is, of course, a function not only of the respective diameters d 1 and d 2 , but also of the number M of wires of the inner layer.
- M preferably equal to 3 or 4
- M preferably from 6 to 12.
- These N son have for example a diameter d 2 of between 0.20 and 0.50 mm, in particular in a range of 0.23. at 0.40 mm, d 2 which can of course be identical to or different from the diameter d 1 of the M core son.
- the inner layer comprises 3 or 4 wires, more preferably 3 wires, and the outer layer preferably comprises 8, 9 or 10 wires.
- the inner layer has 3 wires and the outer layer has 9 wires.
- the twisting pitch p 2 which is identical to or different from the pitch p 1 , is preferably between 10 and 30 mm, more preferably between 12 and 25 mm. Preferably, there is the relationship 0.5 ⁇ p 1 / p 2 ⁇ 1 which is verified.
- the method of the invention is implemented with p 1 and p 2 which are equal.
- the outer layer Ce has the preferred characteristic of being a saturated layer, that is to say that, by definition, there is not enough room in this layer to add at least one (N max +1) th wire diameter d 2 , N max representing the maximum number of windable son in a layer around the inner layer Ci.
- This construction has the advantage of limiting the risk of overflow of filling rubber at its periphery and of offer, for a given diameter of the cable, a higher resistance.
- the number N of wires can vary to a very large extent according to the particular embodiment of the invention, for example from 6 to 12 wires for an internal layer Ci of 3 wires, it being understood that the maximum number N max of wires N will be increased if their diameter d 2 is reduced compared to the diameter d 1 of the M core wires, in order to preferentially preserve the saturated outer layer.
- the M + N cable can be of two types, namely of the compact type or the type with cylindrical layers.
- the son of the outer layer (Ce) are helically wound at the same pitch and in the same direction of twist (that is to say in the direction S (provision "S / S"), or in the direction Z ("Z / Z" arrangement)) and the wires of the inner layer (Ci), for obtaining a layer cable of the compact type as schematized for example to the figure 2 .
- the compactness is such that virtually no distinct layer of wires is visible; as a result, the cross-section of such cables has an outline that is polygonal and non-cylindrical, as illustrated for example in figure 2 (compact cable 3 + 9 gummed in situ) and figure 3 (compact cable 3 + 9 conventional, that is to say, not gummed in situ).
- the cable M + N is not yet complete.
- the central channel delimited by the M core wires when M is equal to 3 or 4, is not yet filled with filling rubber, in any case insufficiently to obtain a watertightness property. the air is acceptable.
- M is equal to 2
- the filling rubber surrounds the inner layer without sufficiently penetrating between the two wires which remain in contact with each other, which can be detrimental in particular with respect to the risks of wear. possible by fretting.
- torsion balancing is meant here in known manner the cancellation of the residual torsional torques (or of the detorsion springback) exerted on each wire of the cable, in the inner layer as in the outer layer.
- Torsion balancing tools are well known to those skilled in the art of twisting; they may consist for example of “trainers” or “twisters” or “twister-trainers”, consisting of either pulleys for twisters, or small diameter rollers for trainers, pulleys and / or rollers through which circulates the cable.
- the method of the invention exploits the rotation of the M core wires, in the final stage of manufacture of the cable, to distribute, naturally, the filling rubber in and around the inner layer (Ci), while perfectly controlling the amount of filling compound provided.
- This cable can be wound on a receiving reel, for storage, before being processed, for example, through a calendering installation, for preparing a metal / rubber composite fabric.
- the cable M + N can be described as airtight or impervious to air: in the air permeability test described in paragraph II-1-B which follows, it is characterized by a flow rate average air less than 2 cm 3 / min, preferably less than or equal to 0.2 cm 3 / min.
- the method of the invention makes possible the manufacture of M + N cables which may be advantageously free (or virtually free) of filling gum at their periphery.
- an expression it is meant that no particle of filling compound is visible, with the naked eye, at the periphery of the cable, that is to say that the person skilled in the art does not make any difference at the output of manufacture, with the naked eye and at a distance of two or three meters, between a coil of M + N cable gummed in situ prepared according to the invention and a conventional M + N cable coil (that is, ie not erased in situ).
- This method of the invention is of course applicable to the manufacture of compact type cables (for recall and by definition, those whose layers Ci and Ce are wound at the same pitch and in the same direction) as cables of the type to cylindrical layers (for recall and by definition, those whose layers Ci and Ce are wound either in different steps, or in opposite directions, or in different steps and in opposite directions).
- supply means (110) deliver M (for example three) core wires (11) through a distribution grid (12) (axisymmetrical distributor), coupled or not to an assembly line ( 13), beyond which converge the M core wires into an assembly point or twisting point (14), for forming the inner layer (Ci).
- the inner layer Ci once formed, then passes through a cladding zone consisting for example of a single extrusion head (15) through which is intended to circulate the inner layer.
- the distance between the point of convergence (14) and the sheathing point (15) is for example between 50 cm and 1 m.
- the final cable M + N thus formed is finally collected on a rotary reception (19), after passing through the torsion balancing means (18) consisting for example of a twister-trainer.
- FIG 2 schematically, in section perpendicular to the axis of the cable (assumed rectilinear and at rest), an example of a preferred cable 3 + 9 gummed in situ, obtainable using the method according to the invention previously described.
- This type of construction has the consequence that the internal (20) and external (21) wires form two concentric layers which each have a substantially polygonal contour (represented in dotted lines) (triangular for the Ci, hexagonal layer for the Ce layer), and not cylindrical as in the case of cables with cylindrical layers which will be described later.
- the filling rubber (22) fills the central capillary (23) (symbolized by a triangle) formed by the three core wires (20) by spreading them very slightly, while completely covering the inner layer Ci formed by these three wires. (20). It also fills each interstice or cavity (also symbolized by a triangle) formed either by a core wire (20) and the two external wires (21) which are immediately adjacent to it, or by two core wires (20) and the outer wire (21) adjacent thereto; in total, 12 interstices (helical capillaries, also symbolized by a triangle) are thus present in this cable 3 + 9, to which is added the central channel or capillary (23).
- the filling rubber extends in a continuous manner around the layer Ci it covers.
- the figure 3 recalls the section of a cable 3 + 9 (noted C-2) conventional (ie, not gummed in situ), also of the compact type.
- C-2 conventional (ie, not gummed in situ), also of the compact type.
- the absence of filling gum means that virtually all the threads (30, 31) are in contact with each other, which leads to a particularly compact structure, very difficult to penetrate (not to say impenetrable) of the outside by rubber.
- the characteristic of this type of cable is that the three core wires (30) form a channel or central capillary (33) which is empty and closed and thus conducive, by "wicking" effect, to the propagation of corrosive media such as that water.
- the figure 4 schematizes another example of a preferential cable 3 + 9 according to the invention.
- this type of construction has the consequence that the wires are arranged in two adjacent and concentric layers (Ci and Ce), tubular, giving the cable (and the two layers) an outline (shown in dotted lines) cylindrical and not polygonal.
- the filling rubber (42) fills the central capillary (43) (symbolized by a triangle) formed by the three core wires (40) slightly apart, while completely covering the inner layer Ci formed by the three wires ( 40). It also fulfills, at least in part (here, in this example, totally) each interstice formed either by a core wire (40) and the two external wires (41) which are immediately adjacent to it (the nearest), or by two core wires (40) and the adjacent outer wire (41); in total, 12 interstices or capillaries are thus present in this cable 3 + 9, to which is added the central capillary (43).
- the figure 5 recalls the section of a cable 3 + 9 (noted C-4) conventional (ie, not gummed in situ), also of the type with two cylindrical layers.
- C-4 conventional (ie, not gummed in situ), also of the type with two cylindrical layers.
- the absence of filling rubber causes the three wires (50) of the inner layer (Ci) to come into close contact with each other, which leads to an impenetrable, closed and impenetrable central capillary (53). on the outside by rubber and propitious on the other hand to the propagation of corrosive media.
- the method of the invention also applies advantageously to 2 + N construction cables. Thanks to an optimized penetration of the cable, from the inside, by the filling rubber, it is no longer necessary to desaturate the outer layer to improve its penetrability from the outside, in particular by rubber. At identical wire diameters between the layers Ci and Ce, this advantageously makes it possible, for example, to replace 2 + 7 construction cables with 2 + 8 construction cables, which are more resistant for the same size.
- the method of the invention is of course not limited to the manufacture of preferential cables whose son have diameters between 0.20 and 0.50 mm, as indicated above.
- the method of the invention can be used for the manufacture of cables whose M and N wires have diameters of 1 and 2 d smaller, for example in a range of 0.08 to 0 , 20 mm, such cables being used, for example, for reinforcing parts of tires other than their crown reinforcement, in particular for reinforcing the carcass reinforcement of tires for industrial vehicles such as heavy goods vehicles.
- Fm maximum load in N
- Rm tensile strength in MPa
- At total elongation in %
- the modulus measurements are made in tension, unless otherwise indicated according to the ASTM D412 standard of 1998 (specimen "C”): one measures in second elongation (that is to say after a cycle of accommodation) the secant modulus "true” (that is to say, reduced to the actual section of the test piece) at 10% elongation, denoted E10 and expressed in MPa (normal conditions of temperature and hygrometry according to the ASTM D 1349 of 1999).
- This test makes it possible to determine the longitudinal permeability to the air of the cables tested, by measuring the volume of air passing through a specimen under constant pressure for a given time.
- the principle of such a test is to demonstrate the effectiveness of the treatment of a cable to make it impermeable to air; it has been described for example in ASTM D2692-98.
- the test is here carried out either on cables extracted from tires or rubber sheets that they reinforce, so already coated with rubber in the cooked state, or on raw manufacturing cables.
- the raw cables must be previously embedded, coated from the outside by a so-called coating gum.
- a series of 10 cables arranged in parallel is placed between two skims (two rectangles of 80 x 200 mm) of a rubber composition in the raw state, each skim having a thickness 3.5 mm; the whole thing is then locked in a mold, each of the cables being kept under tension sufficient (for example 2 daN) to ensure its straightness when placed in the mold, using clamping modules; then the vulcanization (baking) is carried out for 40 min at a temperature of 140 ° C and a pressure of 15 bar (rectangular piston 80 x 200 mm). After that, the assembly is demolded and 10 specimens of cables thus coated, in the form of parallelepipeds of dimensions 7 ⁇ 7 ⁇ 20 mm, are cut for characterization.
- the test is carried out on 2 cm of cable length, thus coated by its surrounding rubber composition (or coating gum), as follows: air is sent to the cable inlet, under a pressure of 1 bar, and the volume of air at the outlet is measured using a flow meter (calibrated for example from 0 to 500 cm 3 / min). During the measurement, the cable sample is locked in a compressed seal (eg a dense foam or rubber seal) in such a way that only the amount of air passing through the cable from one end to the other, along its longitudinal axis, is taken into account by the measure; a preliminary seal check of the seal is made using a solid rubber specimen, ie, without a cable.
- a compressed seal eg a dense foam or rubber seal
- the measured flow rate is lower as long as the longitudinal imperviousness of the cable is high.
- measured values equal to or less than 0.2 cm 3 / min are considered to be zero; they correspond to a cable that can be described as airtight along its axis (ie, in its longitudinal direction).
- the amount of filling compound is measured by difference between the weight of the initial cable (thus erased in situ) and the weight of the cable (and therefore that of its threads) whose filling rubber has been eliminated by a suitable electrolytic treatment.
- a sample of cable (length 1 m), wound on itself to reduce its bulk, constitutes the cathode of an electrolyzer (connected to the negative terminal of a generator), while the anode (connected to the positive terminal ) consists of a platinum wire.
- the electrolyte consists of an aqueous solution (demineralized water) comprising 1 mole per liter of sodium carbonate.
- the sample immersed completely in the electrolyte, is energized for 15 minutes under a current of 300 mA.
- the cable is then removed from the bath, rinsed thoroughly with water. This treatment allows the rubber to be easily detached from the cable (if this is not the case, we continue the electrolysis for a few minutes).
- the eraser is carefully removed, for example by simply wiping with an absorbent cloth, while detaching one by one the son of the cable.
- the threads are rinsed with water again and then immersed in a beaker containing a mixture of demineralized water (50%) and ethanol (50%); the beaker is immersed in an ultrasonic tank for 10 minutes.
- the yarns thus devoid of any trace of gum are removed from the beaker, dried under a stream of nitrogen or air, and finally weighed.
- the rate of filling rubber in the cable is calculated and averaged over 10 measurements (10 meters of cable in total).
- C-1 cables as schematized in the figure 2 were manufactured according to the process according to the invention, using a device as described above and schematized at the figure 1 .
- the filling gum was a conventional rubber tire crown composition, having the same formulation as that of the belt rubber web that the C-1 cable is intended to reinforce in the following tire test. This composition was extruded at a temperature of 90 ° C. through a calibration die of 0.700 mm.
- the rate of filling rubber measured according to the method previously indicated in paragraph II-1-C, is 16 mg per g of cable.
- This filling gum fills the channel or central capillary formed by the three core wires slightly apart, while completely covering the inner layer Ci formed by the three son. It also fills, at least partially if not totally, each of the twelve interstices or empty channels formed either between a core wire and the two external wires which are immediately adjacent to it, or between two core wires and the external wire which is adjacent.
- C-5 cables as shown schematically in figure 6 were manufactured using a conventional process. They are free of filling gum.
- Each C-5 cable comprises a core wire (65) of very small diameter (0.12 mm); the three inner wires (60) and the eight outer wires (61) each have a diameter of 0.35 mm.
- the 3 wires of the inner layer are wound together in a helix (direction S) in a pitch p 1 equal to 7.7 mm, this layer Ci being in contact with a cylindrical outer layer of 8 wires themselves wound together in a helix (S direction) around the soul in a pitch p 2 equal to 15.4 mm.
- the core wire (65) by removing the wires (60) of the inner layer Ci and filling in some way the central channel formed by these three core wires (60), makes it possible to desaturate (by increasing the diameter of the inner layer Ci) the outer layer Ce (with identical thread diameters from one layer to another) and thereby increase the external penetrability of the cable (C-5) by rubber. Thanks to this construction, the C-5 cable becomes penetrable from the outside to its center.
- All the wires used for the manufacture of these cables are thin carbon steel wires, manufactured according to known methods, the properties of which are given in Table 2 below.
- Table 2 ⁇ / b> Steel ⁇ (mm) Fm (N) Rm (MPa) SHT 0.30 226 3200 HT 0.35 263 2765
- the C-1 and C-5 layered cords are then calendered to rubber skims made of a conventional rubber composition for use in the manufacture of radial heavyweight tire belt plies.
- This composition is based on natural rubber (peptized) and carbon black N330 (55 phr), it also comprises the following usual additives: sulfur (6 phr), sulfenamide accelerator (1 phr), ZnO (9 phr), stearic acid (0.7 phr), antioxidant (1.5 phr), cobalt naphthenate (1 phr); the module E10 of the filling rubber is about 6 MPa.
- the cables C-1 and C-5 were then tested in a tire belt for heavy vehicle as schematized on the figure 7 .
- This radial tire 1 comprises an apex 2 reinforced by a crown reinforcement or belt 6, two sidewalls 3 and two beads 4, each of these beads 4 being reinforced with a rod 5.
- the crown 2 is surmounted by a tread represented in this schematic figure.
- a carcass reinforcement 7 is wound around the two rods 5 in each bead 4, the upturn 8 of this armature 7 being for example disposed towards the outside of the tire 1 which is shown here mounted on its rim 9.
- the carcass reinforcement 7 is in known manner constituted by at least one sheet reinforced by so-called "radial” cables, that is to say that these cables are arranged substantially parallel to each other and extend from a bead to the other so as to form an angle of between 80 ° and 90 ° with the median circumferential plane (plane perpendicular to the axis of rotation of the tire which is located halfway between the two beads 4 and passes through the middle of the crown frame 6).
- this tire 1 also comprises, in a known manner, an inner rubber or elastomer layer (commonly called “inner rubber”) which defines the radially inner face of the tire and which is intended to protect the carcass ply from the diffusion of the tire. air from the interior space to the tire.
- the crown reinforcement or belt 6 is in known manner constituted by two triangulation half-plies reinforced by metal cables inclined by 65 degrees, surmounted by two sheets called “working plies" superimposed crossed. These working plies are reinforced by metal cables arranged substantially parallel to each other and inclined by 26 degrees (radially internal ply) and 18 degrees (radially external ply). The two working plies are furthermore covered by a protective ply reinforced with conventional metal cables (high elongation) inclined at 18 degrees. All angles of inclination indicated are measured relative to the median circumferential plane of the tire.
- the test is conducted until the forced destruction of the tires.
- the cables C-1 manufactured with the method of the invention, were also subjected to the air permeability test (paragraph II-1-B), by measuring the volume of air passing through the cables in 1 min. (average of 10 measurements for each cable tested).
- In situ control gummed cables of the same 3 + 9 construction as the C-1 cables were also manufactured by individually sheathing either a single wire or each of the three wires of the inner layer Ci. using extrusion dies of variable diameter (320 to 420 ⁇ m) arranged this time upstream of the assembly point (sheathing and in-line twisting) as described in the prior art (application US 2002/160213 above); for a rigorous comparison, the amount of filling gum delivered was adjusted in such a way that the rate of filling rubber in the final control cables (ie between 6 and 25 mg per g of cable, as measured according to the method of paragraph II-1-C), is close to that of the cables of the invention.
- none of the above test leads can be qualified as an airtight cable along its longitudinal axis.
- the method of the invention allows the manufacture of M + N construction cables gummed in situ which, thanks to an optimal penetration rate by rubber, on the one hand can be implemented effectively under conditions industrial, especially without the difficulties associated with excessive overflowing of rubber during their manufacture, on the other hand have a tire belt endurance which is significantly improved compared to the best control cables known to date for such an application.
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- Ropes Or Cables (AREA)
- Moulding By Coating Moulds (AREA)
Claims (15)
- Verfahren zur Herstellung eines Metallkabels mit zwei Schichten (Ci, Ce) der Bauart M+N, aufweisend eine innere Schicht (Ci), die aus M Drähten mit dem Durchmesser d1 besteht, welche gemeinsam eine spiralförmige Wicklung gemäß einem Wiederholabstand p1 aufweisen, wobei M den Wert 2 bis 4 annehmen kann, und eine äußere Schicht (Ce) aus N Drähten mit einem Durchmesser d2, welche gemeinsam spiralförmig gemäß einem Wiederholabstand p2 um die innere Schicht (Ci) gewickelt sind, wobei das Verfahren mindestens die folgenden, in unmittelbarer Abfolge durchgeführten Schritte aufweist:- einen Schritt des Zusammenfügens der M Seelendrähte durch Verzwirnen, um an einer Zusammenfügungsstelle die innere Schicht (Ci) zu bilden;- hinter der Stelle des Zusammenfügens der M Seelendrähte, einen Schritt des Umhüllens der inneren Schicht (Ci) mit einer Dien-Kautschukzusammensetzung im rohen Zustand, welche als "Füllgummi" bezeichnet wird;- einen Schritt des Zusammenfügens der N Drähte der äußeren Schicht (Ce), indem diese rundum die auf diese Weise umhüllte innere Schicht (Ci) verzwirnt werden;- einen Schritt des abschließenden Ausgleichens der Drehungen.
- Verfahren nach Anspruch 1, wobei der Durchmesser d1 im Bereich von 0,20 bis 0,50 mm liegt und der Verzwirnungswiederholabstand p1 im Bereich von 5 bis 30 mm liegt.
- Verfahren nach Anspruch 1 oder 2, wobei die Spannbelastung, welche hinter der Zusammenfügungsstelle auf die M Drähte ausgeübt wird, im Bereich von 10 bis 25 % ihrer Bruchkraft liegt.
- Verfahren nach einem beliebigen der Ansprüche 1 bis 3, wobei das Dien-Elastomer des Füllgummis aus der Gruppe ausgewählt ist, die aus den Polybutadienen, natürlichem Kautschuk, den Polyisoprenen synthetischen Ursprungs, den Butadien-Copolymeren, den Isopren-Copolymeren und den Mischungen dieser Elastomere besteht.
- Verfahren nach Anspruch 4, wobei es sich bei dem Dien-Elastomer um natürlichen Kautschuk handelt.
- Verfahren nach einem beliebigen der Ansprüche 1 bis 5, wobei die Extrusionstemperatur des Füllgummis im Bereich von 60 °C bis 120 °C liegt.
- Verfahren nach einem beliebigen der Ansprüche 1 bis 6, wobei die Menge an Füllgummi, welche beim Umhüllen abgegeben wird, im Bereich von 5 bis 40 mg pro Gramm an Kabelendprodukt liegt.
- Verfahren nach einem beliebigen der Ansprüche 1 bis 7, wobei die innere Schicht, nach der Umhüllung, mit einer Mindestdicke an Füllgummi bedeckt ist, welche mehr als 5 µm beträgt.
- Verfahren nach einem beliebigen der Ansprüche 1 bis 8, wobei der Durchmesser d2 im Bereich von 0,20 bis 0,50 mm liegt und der Wiederholabstand p2 mindestens so groß wie p1 ist.
- Verfahren nach einem beliebigen der Ansprüche 1 bis 9, wobei die Drähte der äußeren Schicht eine spiralförmige Wicklung mit demselben Wiederholabstand und derselben Drehrichtung wie die Drähte der inneren Schicht aufweisen.
- Verfahren nach einem beliebigen der Ansprüche 1 bis 10, wobei M gleich 3 ist und N gleich 8, 9 oder 10 ist.
- Verfahren nach einem beliebigen der Ansprüche 1 bis 11, wobei die äußere Schicht Ce eine Schicht ohne Freiräume ist.
- Vorrichtung zum Zusammenfügen und Gummieren in unmittelbarer Abfolge, welche zur Durchführung eines Verfahrens nach einem beliebigen der Ansprüche 1 bis 12 verwendet werden kann, wobei die Vorrichtung von vorn nach hinten, gemäß der Vorschubrichtung des dabei gebildeten Kabels, Folgendes aufweist:- Mittel zum Zuführen der M Seelendrähte, wobei die Drähte einen Durchmesser d1 haben und M einen Wert von 2 bis 4 annehmen kann,- erste Mittel zum Zusammenfügen der M Seelendrähte durch Verzwirnen, um die innere Schicht zu bilden;- Mittel zum Umhüllen der inneren Schicht;- ausgangsseitig der Mittel zum Umhüllen, zweite Mittel zum Zusammenfügen der N äußeren Drähte durch Verzwirnen rundum die auf diese Weise umhüllte Seele, um die äußere Schicht zu bilden, wobei die Drähte einen Durchmesser d2 haben,- ausgangsseitig der zweiten Zusammenfügungsmittel, Mittel zum Ausgleichen der Drehung.
- Vorrichtung nach Anspruch 13, die eine feste Zuführung und eine sich drehende Aufnahme aufweist.
- Vorrichtung nach einem beliebigen der Ansprüche 13 oder 14, wobei die Mittel zum Drehungsausgleich der Drähte eine Entzwirnungsvorrichtung oder eine Verzwirnungsvorrichtung oder eine Entzwirnungs/Verzwirnungsvorrichtung aufweisen.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
FR0709163A FR2925923B1 (fr) | 2007-12-28 | 2007-12-28 | Procede et dispositif de fabrication d'un cable a deux couches du type gomme in situ |
PCT/EP2008/011001 WO2009083213A1 (fr) | 2007-12-28 | 2008-12-22 | Procede et dispositif de fabrication d'un cable a deux couches du type gomme in situ |
Publications (2)
Publication Number | Publication Date |
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EP2238288A1 EP2238288A1 (de) | 2010-10-13 |
EP2238288B1 true EP2238288B1 (de) | 2013-05-22 |
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EP08869079.7A Not-in-force EP2238288B1 (de) | 2007-12-28 | 2008-12-22 | Verfahren und vorrichtung zur herstellung eines kabels mit zwei schichten der in-situ-verbindungstype |
Country Status (9)
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US (1) | US8627696B2 (de) |
EP (1) | EP2238288B1 (de) |
JP (1) | JP5486509B2 (de) |
KR (1) | KR101526630B1 (de) |
CN (1) | CN101910507B (de) |
BR (1) | BRPI0821476A8 (de) |
EA (1) | EA016480B1 (de) |
FR (1) | FR2925923B1 (de) |
WO (1) | WO2009083213A1 (de) |
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FR2938558B1 (fr) * | 2008-11-17 | 2010-12-31 | Michelin Soc Tech | Procede et dispositif de fabrication d'un cable a trois couches du type gomme in situ. |
FR2943691B1 (fr) | 2009-03-31 | 2011-08-19 | Michelin Soc Tech | Procede et dispositif de fabrication d'un cable a trois couches du type gomme in situ |
FR2943690B1 (fr) | 2009-03-31 | 2011-08-19 | Michelin Soc Tech | Procede et dispositif de fabrication d'un cable a trois couches du type gomme un situ |
FR2947577B1 (fr) * | 2009-07-03 | 2013-02-22 | Michelin Soc Tech | Cable metallique a trois couches gomme in situ de construction 3+m+n |
FR2947575B1 (fr) | 2009-07-03 | 2011-08-19 | Michelin Soc Tech | Cable multitorons dont les torons elementaires sont des cables a deux couches gommes in situ. |
FR2947576B1 (fr) * | 2009-07-03 | 2011-08-19 | Michelin Soc Tech | Cable metallique a trois couches gomme in situ de construction 2+m+n |
FR2947574B1 (fr) * | 2009-07-03 | 2012-11-09 | Michelin Soc Tech | Cable multitorons dont les torons elementaires sont des cables a deux couches gommes in situ. |
BR112012007353B1 (pt) | 2009-10-06 | 2019-12-03 | Compagnie Generale Des Etablissements Michelin | processo e dispositivo de detecção e de avaliação das projeções que aparecem em cabos que saem de um processo de retorcedura e de emborrachamento |
FR2950838B1 (fr) * | 2009-10-07 | 2013-02-22 | Michelin Soc Tech | Pneumatique comportant des cables d'armatures de carcasse presentant une faible permeabilite, et des epaisseurs de melanges caoutchouteux variables. |
FR2962456B1 (fr) * | 2010-05-20 | 2012-09-21 | Michelin Soc Tech | Procede de fabrication d'un cable metallique multicouches gomme in situ par un elastomere thermoplastique insature |
FR2962454B1 (fr) * | 2010-05-20 | 2012-09-21 | Michelin Soc Tech | Procede de fabrication d'un cable metallique a trois couches du type gomme in situ |
DE102011001228A1 (de) | 2011-03-11 | 2012-09-13 | Continental Reifen Deutschland Gmbh | Fahrzeugluftreifen |
US20120241066A1 (en) * | 2011-03-24 | 2012-09-27 | Paul Harry Sandstrom | Tire containing an internal composite comprised of metal cord reinforced rubber layer with auxiliary buffer rubber layer |
FR2982885B1 (fr) | 2011-11-23 | 2014-11-07 | Michelin Soc Tech | Procede de fabrication d'un cable metallique a deux couches gomme in situ par un elastomere thermoplastique insature |
FR2982884B1 (fr) | 2011-11-23 | 2014-06-06 | Michelin Soc Tech | Cable metallique a deux couches, gomme in situ par un elastomere thermoplastique insature |
FR2990963B1 (fr) * | 2012-05-25 | 2014-12-05 | Michelin & Cie | Cable metallique multi-torons a deux couches. |
FR2990962B1 (fr) * | 2012-05-25 | 2014-06-27 | Michelin & Cie | Procede de fabrication d'un cable metallique multi-torons a deux couches. |
FR2996230B1 (fr) | 2012-09-28 | 2014-10-31 | Michelin & Cie | Cable gomme in situ comprenant une composition comprenant un polysulfure organique. |
FR2997410B1 (fr) | 2012-10-30 | 2016-01-01 | Michelin & Cie | Cable gomme in situ comprenant une composition comprenant un copolymere de styrene-butadiene. |
DK3047013T3 (da) * | 2013-09-16 | 2021-11-15 | Genzyme Corp | Fremgangsmåder og systemer til forarbejdning af en cellekultur |
FR3022264A1 (fr) | 2014-06-12 | 2015-12-18 | Michelin & Cie | Produit semi-fini comprenant un cable gomme in situ noye dans une composition de caoutchouc de calandrage |
FR3022262B1 (fr) | 2014-06-12 | 2016-06-03 | Michelin & Cie | Cable gomme in situ comprenant une composition de gommage comprenant un inhibiteur de corrosion |
FR3022261B1 (fr) | 2014-06-12 | 2016-06-03 | Michelin & Cie | Cable gomme in situ comprenant une composition de gommage comprenant un inhibiteur de corrosion |
CN105336450A (zh) * | 2015-11-19 | 2016-02-17 | 夏烬楚 | 一种高压输电线的生产设备 |
CN109537335A (zh) * | 2018-11-10 | 2019-03-29 | 江苏兴达钢帘线股份有限公司 | 一种多边形钢帘线的生产方法 |
CN109629277B (zh) * | 2018-11-10 | 2022-05-13 | 江苏兴达钢帘线股份有限公司 | 一种具有强破断力的钢帘线的制备方法及捻制装置 |
CN109338767A (zh) * | 2018-12-03 | 2019-02-15 | 江苏兴达钢帘线股份有限公司 | 一种2+7×d结构的子午线轮胎钢丝帘线的生产工艺 |
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2007
- 2007-12-28 FR FR0709163A patent/FR2925923B1/fr not_active Expired - Fee Related
-
2008
- 2008-12-22 KR KR1020107016798A patent/KR101526630B1/ko not_active IP Right Cessation
- 2008-12-22 US US12/810,999 patent/US8627696B2/en not_active Expired - Fee Related
- 2008-12-22 EA EA201070802A patent/EA016480B1/ru not_active IP Right Cessation
- 2008-12-22 WO PCT/EP2008/011001 patent/WO2009083213A1/fr active Application Filing
- 2008-12-22 EP EP08869079.7A patent/EP2238288B1/de not_active Not-in-force
- 2008-12-22 BR BRPI0821476A patent/BRPI0821476A8/pt not_active IP Right Cessation
- 2008-12-22 CN CN2008801227867A patent/CN101910507B/zh not_active Expired - Fee Related
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KR20100106539A (ko) | 2010-10-01 |
WO2009083213A1 (fr) | 2009-07-09 |
JP2011508109A (ja) | 2011-03-10 |
EA016480B1 (ru) | 2012-05-30 |
CN101910507B (zh) | 2012-11-07 |
EA201070802A1 (ru) | 2011-02-28 |
US8627696B2 (en) | 2014-01-14 |
US20110011486A1 (en) | 2011-01-20 |
FR2925923A1 (fr) | 2009-07-03 |
BRPI0821476A8 (pt) | 2016-01-05 |
EP2238288A1 (de) | 2010-10-13 |
JP5486509B2 (ja) | 2014-05-07 |
CN101910507A (zh) | 2010-12-08 |
BRPI0821476A2 (pt) | 2015-06-16 |
FR2925923B1 (fr) | 2009-12-18 |
KR101526630B1 (ko) | 2015-06-05 |
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