METHOD FOR WARNING OF RISK OF RUPTURE OR DEFORMATION OF A PART MADE OF A COMPOSITE MATERIAL, AND PART PRODUCED

20210156751 ยท 2021-05-27

    Inventors

    Cpc classification

    International classification

    Abstract

    The method for warning of risk of rupture or deformation of a part made of a composite material when it is subjected to a force relates to a part including a fibre-reinforced thermoplastic or thermohardenable matrix. The method includes arranging the fibers in a lattice structure produced by winding fibers to form bars that join together or intersect at nodes. The method includes designing at least one bar of the lattice and/or integrating, into the part, at least one additional bar with a determined location and tensile strength and associating, with the at least one bar, inside the part, a sensor to detect the rupture thereof. The method further includes associating, with the sensor, an emitter, outside the part, for a signal relating to the rupture.

    Claims

    1. A method for warning of a risk of breakage or deformation of a structural part being comprised of composite material when subjected to a force, wherein said part is comprised of a fiber-reinforced thermoplastic or thermosetting matrix, the method comprising the steps of: arranging said fibers into a mesh structure obtained by winding fibers, whether or not impregnated with resin, onto studs or the like, so as to stretch the fibers between studs in order to form bars joining or intersecting in nodes, wherein said bars are oriented so as to be subjected to a tensile or compression stress, configuring at least one bar of said mesh and/or integrating into said part at least one additional bar created from additional nodes and/or one or more nodes of said mesh, the location and the resistance to breaking of which are determined so that at its location, its breaking is not detrimental to the integrity in use of said mesh and hence of said part, and that said resistance to breaking is calibrated to have a value higher than the one that allows to withstand an optimal stress in use of said part, while being smaller than that of maximum stress of said part, associating with said at least one bar, inside said part, a sensor means detecting its breakage, and associating with said sensor means, means for transmitting, outside said part, a signal relating to the breakage.

    2. The method according to claim 1, wherein the strength of the at least one additional bar is calibrated by reducing its cross-section compared to that of the other bars, or by using a material that is less efficient than the one used for the other bars, or by creating on said bar an accident in shape capable of causing over-stress, or by under-dimensioning an additional node.

    3. The method according to claim 1, wherein second sensor means for detecting the breakage of said elements associated with elements of said structure are incorporated into the mesh structure.

    4. A structural part made of composite material, comprising: a system for warning of a risk of breakage or deformation when it is subjected to a force, said part being comprised of composite material comprised of a fiber-reinforced thermoplastic or thermosetting matrix, wherein said fibers are arranged into a mesh structure obtained by winding fibers, whether or not impregnated with resin, on studs or the like, so as to cause the fibers to progress between said studs in order to form bars joining or intersecting at nodes, said bars being oriented so as to be subjected to a tensile or compression stress, said composite part including in addition at least one bar created from additional nodes and/or one or several nodes of said mesh, the location as well as the resistance to breaking of which are predetermined, so that its resistance to breaking is calibrated so as to be smaller than the one said part must have and higher than the one that permits to withstand an optimum stress in use of said part, and so that its breaking is not detrimental to the integrity of said part in operation; in that said at least one bar is associated with sensor means designed capable of detecting its breakage; and in that said sensor means is associated with means for transmitting a signal relating to the breaking.

    5. The part according to claim 4, wherein the sensor means is in the form of an electrical conductor, or an optical fiber, arranged in the at least one additional bar, dedicated to measuring, designed capable of breaking simultaneously with said at least one bar.

    6. The part according to claim 4, wherein the sensor means is in the form of a gauge for measuring the strain due to elongation of the bar, the latter consisting of a coil or an electrical conductor, the length variation of which during the deformation has an impact on the strength of said conductor.

    7. The part according to claim 4, wherein the means for transmitting a signal consists of a wire link passing through the matrix.

    8. The part according to claim 4, wherein the means for transmitting a signal consists of communication electronics embedded in the matrix.

    9. The I part according to claim 4, wherein the means for transmitting a signal consists, while the matrix is transparent, of an optical transmission means.

    10. The part according to claim 4, wherein the detection and transmission means is embedded or printed on the resin and consists of an RF antenna that can be interrogated remotely.

    11. A method for warning of a risk of breakage or deformation of a structural part being comprised of composite material when it is subjected to a force, said part being comprised of a fiber-reinforced thermoplastic or thermosetting matrix, the method comprising the steps of: arranging said fibers into a mesh structure obtained by winding fibers, whether or not impregnated with resin, on studs or the like, so as to stretch the fibers between said studs in order to form bars joining in nodes, said bars being oriented so as to be subjected to a tensile or compression stress, and designing at least one portion of said part by means of at least one bar of said mesh and/or at least one additional bar created from additional nodes and/or one or more nodes of said mesh, the location and resistance to breaking of which are determined so that at its location, when the part is subjected to a force reaching or exceeding the nominal force, it is subjected to a force causing it to break, and that its breakage is not prejudicial to the integrity in use of said mesh and hence of said part that said resistance to breaking is calibrated to have a value higher than the one permitting to withstand an optimum stress in use of said part, while being smaller than that of maximum stress of said part, wherein said portion of said part being comprised of an externally identifiable portion, and which is designed capable of being submitted to a deformation during the breaking of said at least one bar.

    12. A structural part made of composite material comprising: means for warning of a risk of breakage or deformation when it is subjected to a force, according to claim 11, said part made of composite material being comprised of a fiber-reinforced thermoplastic or thermosetting matrix, wherein said fibers are arranged into a mesh structure obtained by winding fibers, whether or not impregnated with resin, on studs or the like, so as to stretch the fibers between said studs in order to form bars joining in nodes, said bars being oriented so as to be subjected to a tensile or compression stress, wherein said part comprises at least one portion, which incorporates at least one bar of said mesh and/or at least one additional bar created from additional nodes and/or one or more nodes of said mesh, referred to as a measuring bar, the location and resistance to breaking of which are determined so that, at its location, when the part is subjected to a force reaching or exceeding the nominal force, it is subjected to a force causing its breaking, and its breaking is not detrimental to the integrity in use of said mesh and hence of said part in that said resistance to breaking is calibrated to have a value higher than the one permitting to withstand an optimum stress in use of said part, while being lower than that of maximum stress of said part, and wherein said part is comprised of an externally identifiable portion, and which is designed capable of suffering a deformation upon breaking of said at least one bar.

    13. The part according to claim 12, wherein the measuring bar has a reduced cross-section compared to those of the other bars of the mesh structure.

    14. The part according to claim 12, wherein the measuring bar has an area of embrittlement.

    15. The part according to claim 14, wherein the area of embrittlement consists of a winding on a coil the strength of which is limited.

    16. The part according to claim 12, wherein the measuring bar comprises stretched fibers and looser fibers, the latter being capable of permitting an increased movement of the part after breaking of said stretched fibers.

    17. The part according to claim 12, wherein the portion of said part intended for identifying the breakage comprises a primary mesh structure made of a reinforcing fiber having a high modulus and a low rate of elongation at break, said primary structure being associated with a secondary structure, whether or not concurrent with said primary structure and made of reinforcing fibers having a lower modulus, a higher elongation at break and/or a higher tensile stress than the fibers of said primary structure.

    Description

    BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS

    [0052] The advantages and features of the methods and of the parts made of composite material, which result therefrom, according to the invention will become more evident from the following description, which refers to the attached drawing, which represents non-restrictive embodiments of same.

    [0053] FIG. 1 shows a schematic elevation view of a part made of composite material relating to the field of the invention.

    [0054] FIG. 2 shows a schematic elevation view of the same part made of composite material equipped with a system for warning of a risk of breakage or deformation according to the invention.

    [0055] FIG. 3 shows a schematic elevation view of the same part made of composite material equipped with another system for warning of a risk of breakage or deformation according to the invention.

    [0056] FIG. 4 shows a schematic elevation view of a part made of composite material relating to the field of the invention, equipped with means for warning of a risk of breakage or deformation according to the invention.

    [0057] FIG. 5 shows a schematic elevation view of the same part made of composite material equipped with a variant of the means for warning of a risk of breakage or deformation according to the invention.

    DETAILED DESCRIPTION OF THE INVENTION

    [0058] When referring to FIG. 1, we can see a part 1 made of composite material according to the invention. This composite part 1 used for illustrating the present invention non-restrictively consists of a pole, suitable for withstanding mechanical stresses S during its use.

    [0059] The composite part 1 comprises a thermoplastic or thermosetting matrix 10 reinforced with fibers, which are arranged into a mesh structure 2 made up of the filament winding according to a carefully chosen path around coils or pulleys to form the nodes 20 of the mesh 2, while the rectilinear portions extending between the nodes 20 constitute bars 21. The fibers can be previously coated with a thermoplastic or thermosetting resin.

    [0060] The preform consisting of the mesh 2 is then integrated into a matrix 10 in order to block the transverse deformations of the fibers, either by soaking in a bath of material constituting the matrix, at a temperature that permits to have a sufficient viscosity to cover the mesh of fibers 2, or by molding in a mold, the filling volume of the part being injected in addition to the mesh 2 previously placed in the mold.

    [0061] When referring to FIG. 2, we can see that, according to the invention, the mesh 2 includes an additional bar 3 obtained by winding between a node 201 of the mesh 2 and an additional node 30, which results, in turn, from a winding with two nodes 202 and 203 of the mesh 2.

    [0062] The additional bar 3 does not participate in the nominal strength of the composite part 1, on the other hand, it is subjected to a tensile or compression stress when the composite part 1 is stressed.

    [0063] The additional bar 3 is configured to provide less resistance than the other bars 21, non-restrictively through a smaller cross-section, or the use of a less efficient material, or the presence at any location, or of an accident in shape causing an over-stressing, or an under-dimensioning of the node 30, or a combination of several of these features.

    [0064] Yet according to the invention, the additional bar 3 is associated with a sensor means 4, intended to be integrated into the matrix 10, and capable of measuring a deformation or a breakage of the additional bar 3. In the embodiment being shown, the sensor means 4 is linked to means 5 for transmitting a signal arranged outside the part 1, and connected to sensor means 4 through a wire link 50.

    [0065] The sensor means 4 can detect a deformation or a breakage of the additional bar 3, and transmit this information to the means 5 for transmitting a signal.

    [0066] When referring now to FIG. 3, we can see a particular embodiment of the warning system according to the invention.

    [0067] In this embodiment, an additional bar 6 dedicated to warning is made by winding a wire conductor 60 around two additional nodes 61 and 62, each of them resulting from the creation of two additional bars, 63 and 64, and 65 and 66, respectively, by windings with nodes of the mesh 2, 204 and 205, and 206 and 207, respectively.

    [0068] The additional bars 6, 63, 64, 65 and 66, as well as the additional nodes 61 and 62, form a secondary mesh stretched internally to the mesh 2 between the nodes 204, 205, 206 and 207, and the bar 6 of which constitutes a strain gauge subjected to stresses.

    [0069] It will be understood that the variation in length of the bar 6 and hence of the conductor 60 has a direct impact on the strength of the conductor.

    [0070] When referring now to FIG. 4, we can see the part 1 made of composite material according to the invention, and which comprises a vertical element 11 and a horizontal element 12.

    [0071] According to this variant of the invention, the composite part 1 includes an externally identifiable portion 7 comprising a bar 22 of the mesh 2 arching like a stay between a node 20 of the vertical element 11 and a node 20 of the horizontal element 12.

    [0072] The so-called measuring bar 22 is positioned so as not to participate in the strength of the part 1 when the latter is subjected to a force, so that in the event of breaking, the integrity of the part 1 is intact. It is configured to have a resistance to breaking with a value higher than the one permitting to withstand an optimal stress in use of part 1, while being lower than that of maximum stress of this part 1.

    [0073] Thus, the breaking of the bar 22, leading to the deformation or the breaking of the portion 7 of the part 1, visible from the outside, permits to detect that the part 1 has been or is subjected to a force greater than the required nominal force.

    [0074] When referring to FIG. 5, we can see, in a variant, that in the portion 7 of the part 1 passes a portion of the mesh 2, comprising a bar 23 extending between a node 20 of the vertical element 11 and a node 20 of the horizontal element 12 and having, in a middle portion, a winding on a coil 24, the crushing resistance of which, under the action of traction, is calibrated to break when the part 1 is subjected to a force greater than the required nominal force.