Method for producing a hybrid-structure part of a motor vehicle and corresponding hybrid-structure part
10472002 ยท 2019-11-12
Assignee
Inventors
Cpc classification
B29C43/18
PERFORMING OPERATIONS; TRANSPORTING
B29L2031/3002
PERFORMING OPERATIONS; TRANSPORTING
B62D29/005
PERFORMING OPERATIONS; TRANSPORTING
B62D29/004
PERFORMING OPERATIONS; TRANSPORTING
B29C70/885
PERFORMING OPERATIONS; TRANSPORTING
B29C45/14
PERFORMING OPERATIONS; TRANSPORTING
B62D25/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B62D29/00
PERFORMING OPERATIONS; TRANSPORTING
B29C70/88
PERFORMING OPERATIONS; TRANSPORTING
B29C70/08
PERFORMING OPERATIONS; TRANSPORTING
B29C45/14
PERFORMING OPERATIONS; TRANSPORTING
B29C43/18
PERFORMING OPERATIONS; TRANSPORTING
B29C70/34
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention concerns a method for producing a hybrid-structure part of a motor vehicle, comprising shaping of a sheet of metallic material, the provision of a sheet of composite material, application of a layer of connecting material on a face of said metallic material sheet or on a face of said composite material sheet, the shaping of a hybrid element by shaping said composite material sheet to the shape of said metallic material sheet and joining the composite material sheet to the metallic material sheet by means of said connecting material layer, and the production of rigidification elements by overmoulding using a polymer material.
Claims
1. A hybrid-structure part of a motor vehicle comprising: a sheet of metallic material, a sheet of composite material, at least partly covering a face of the sheet of metallic material, the sheet of composite material comprising at least one layer of fibers impregnated or embedded in a polymer matrix, the at least one layer of fibers being selected from among a layer of unidirectional fibers and a layer of woven fibers, a polymer material, molded, at least partially covering the face of the sheet of metallic material which is at least partially covered with the sheet of composite material, the polymer material optionally forming ribs, characterized in that the sheet of composite material partially covers the face of the sheet of metallic material and in that the polymer material at least partially covers uncovered parts of the face.
2. The hybrid-structure part according to claim 1, characterized in that at least one edge of the sheet of metallic material comprises predetermined fastening areas that are covered neither by the sheet of composite material nor by the polymer material, the predetermined fastening areas being separated by areas covered with polymer material.
3. The hybrid-structure part according to claim 1, wherein the sheet of composite material comprises at least one layer of unidirectional fibers and at least one layer of woven fibers.
4. The hybrid-structure part according to claim 1, wherein the sheet of composite material comprises one or more layers of identical or different fibers, the fibers being selected from among glass fibers, carbon fibers, basalt fibers, metal fibers or aramid fibers.
5. The hybrid-structure part according to claim 1, wherein the shaped rigidification elements are stiffening ribs, optionally extending substantially perpendicularly to the sheet of composite material.
6. The hybrid-structure part according to claim 1, wherein the polymer material comprises randomly arranged fibers.
Description
(1) The invention will now be described in reference to the following non-limiting figures:
(2)
(3)
(4)
(5)
(6) The sheet of metallic material 12 is in the form of a hollow part, having a concave inner face 12a and a convex outer face 12b.
(7) The sheet of composite material 14 covers the face 12a of the sheet of metallic material 12. This sheet of composite material 14 comprises several layers of fibers, impregnated or embedded in a polymer matrix.
(8) It should be noted that the invention is not limited to a particular shape of the face 12a of the sheet of metallic material 12 on which the sheet of composite material 14 is applied, this face 12a being either a convex or other face.
(9) The polymer material 16 here forms a network of ribs 18 extending advantageously inside the concavity of the sheets 12 and 14 and partly covering the edges of the two sheets 12, 14.
(10) For example, a hybrid center pillar 10 comprising: a steel sheet 10 with a thickness of 0.67 mm, a 4.35 mm thick sheet of polyamide 66-based composite material containing 55 to 80% of unidirectional carbon fibers and woven glass fiber by weight, and a 2 to 4.5 mm variable thickness of thermoplastic material 16 made of polyamide 66 containing 50% chopped glass fibers by weight,
(11) is 30% lighter in relation to an all-steel pillar, having the same impact behavior (checked through simulation, for example).
(12)
(13) As in the preceding embodiment, the sheet of metallic material 112 is in the form of a hollow part, having a concave inner face 112a and a convex outer face 112b.
(14) In this embodiment, it should be noted that the sheet of metallic material 112 is not fully covered by the sheet of composite material 114, notably at its longitudinal edges 113a and 113b. These longitudinal edges 113a, 113b, have fastening areas 120 alternating with areas 122 covered in polymer material 116. The fastening areas 120 are covered neither by the sheet of composite material 114 nor by polymer material 116, allowing them to be secured to a structural part, notably to secure them by welding to a metal structural part.
(15) Furthermore, it should be noted that the parts of the sheet of metallic material 112, which are not fastening areas 120 and that are not covered by the sheet of composite material 114, are covered with polymer material 116, as can be seen more particularly in
(16) A metallic structural part 124 is partially shown in the cross-sections 3a and 3b. For better assembly with the hybrid-structure part 110, the edges of this part 124 have hollow areas or depressions 125 located opposite the areas 122 covered with polymer material 116 and designed to compensate the overthicknesses of the edge 113a due to the presence of these areas 122.