Flexible heating mat for preforming or consolidating composite parts
The invention relates to a flexible multilayer heating device, of the heating mat type, for implementing preforming or consolidation of fibrous preforms of composite parts. The device includes at least one first support layer, at least one first heating lead arranged on the at least one first support layer and defining a heat-treatment surface adapted to the surface of the composite part to be preformed or consolidated. A first network of wires is electrically connected to the at least one first heating lead. At least one second heating lead is arranged on the at least one first support layer and defines at least one thermal-blocking belt at the at least one periphery of the heat-treatment surface. A second network of wires is electrically connected to the at least one second heating lead. The invention also relates to plant equipped with a mould and such a heating mat.
1 . A flexible multilayer heating device, of the flexible heating mat type, for implementing preforming or consolidation of fibrous preforms of composite parts, the device comprising:
at least one first support layer,
at least one first heating lead arranged on the at least one first support layer and defining a heat-treatment surface adapted to a surface of the composite part to be preformed or consolidated,
a first network of wires electrically connected to the at least one first heating lead,
at least one second heating lead arranged on the at least one first support layer and defining at least one thermal-blocking belt at least one periphery of the heat-treatment surface,
a second network of wires electrically connected to the at least one second heating lead, and
two reinforcement layers between which, the at least one first support layer implementing the heat-treatment surface and the at least one thermal-blocking belt, the first network of wires and the second network of wires are sandwiched, an assembly system being implemented between the two reinforcement layers so as to form an envelope the edges of which allow the first network of wires and the second network of wires to emerge.
2 . The device according to claim 1 , wherein the at least first heating lead is a plurality of first heating leads arranged adjacent to each other on the at least one first support layer so as to define the heat-treatment surface, and the at least second heating lead is a plurality of second heating leads arranged adjacent to each other on the at least one first support layer so as to define the at least one thermal-blocking belt around said heat-treatment surface.
3 . The device according to claim 2 , wherein, for each first heating lead present on the at least one first support layer, one or two second heating leads are disposed so as to match said first heating lead.
4 . The device according to claim 2 , wherein two first heating leads are connected together in series or in parallel by first electrical connection wires or a minimum of three first heating leads) are connected together in series and/or in parallel by first electrical connection wires, and two second heating leads are connected together in series or in parallel by second electrical connection wires or a minimum of three second heating leads are connected together in series and/or in parallel by second electrical connection wires.
5 . The device according to claim 1 , wherein:
the at least one first support layer includes two first superimposed support layers,
the at least one first heating lead is a minimum of two first heating leads, and
the at least one second heating lead is a minimum of two second heating leads, at least one of the minimum of two first heating leads and at least one of the minimum of two second heating leads being arranged on each of the two first superimposed support layers, the at least one first heating lead on the first of the two first superimposed support layers and the at least one first heating lead on the second of the two first superimposed support layers being superimposed and defining in combination the heat-treatment surface and, the at least one second heating leads on the first of the two first superimposed support layers and the at least one second heating lead on the second of the two first superimposed support layers being superimposed and defining in combination the at least one thermal-blocking belt.
6 . The device according to claim 1 , further comprising a second support layer arranged above the at least one first support layer, the first network of wires and the second network of wires being arranged on the second support layer.
7 . The device according to claim 6 , wherein the at least one first heating lead and the at least one second heating lead are attached to a top face of the at least one first support layer by means of first attachment means, by stitching, and the first network of wires and the second network of wires are attached to a top face of the second support layer by means of second attachment means, by stitching.
8 . The device according to claim 6 , wherein the first network of wires comprises first electrical connection wires that pass at least through the second support layer and are connected by a permanent connection to the at least one first heating lead and, the second network of wires comprises second electrical connection wires that pass at least through the second support layer and are connected by a permanent connection to the at least one second heating lead.
9 . The device according to claim 6 , wherein the at least one first support layer and the second support layer are designed in an electrically insulating fibrous material resistant to a temperature of at least 450° C., made from glass or basalt fibres.
10 . The device according to claim 1 , wherein the at least one first heating lead and the at least one second heating lead each comprise an electrically insulating core made from dry fibres, on which a resistive wire is wound.
11 . The device according to claim 1 , wherein the assembly system is arranged to allow a removable attachment between the two reinforcement layers.
12 . The device according to claim 1 , wherein the two reinforcement layers are formed from an electrically insulating fibrous material resistant to a temperature of at least 450° C., made from glass or basalt fibres.
13 . The device according to claim 12 , further comprising a metal grille arranged between the bottom reinforcement layer and the at least one first support layer, said metal grille being connected to an electric wire intended to be earthed.
14 . The device according to claim 1 , further comprising a thermally insulating layer arranged above the at least one first support layer implementing the heat-treatment surface and the at least one thermal-blocking belt.
15 . The device according to claim 12 , wherein the thermally insulating layer is positioned just below the bottom face of the top reinforcement layer or, conversely, just above the top face of the top reinforcement layer.
16 . The device according to claim 1 , further comprising at least two temperature-measurement sensors arranged on the at least one first support layer at the at least one first heating lead and the at least one second heating lead.
17 . The device according to claim 1 , further comprising a malleable sealing block, made from silicone, through which passes an electrical supply cable incorporating the first network of wires and the second network of wires and a temperature measurement cable.
18 . A plant for preforming or consolidating fibrous preforms of composite parts, which comprises:
a mould provided with a top face that includes a periphery and a die constituting a negative of the composite part to be produced,
a flexible multilayer heating device having the features of claim 1 , the heat-treatment surface and the at least one thermal-blocking belt being adapted to the composite part to be produced,
a membrane for producing a vacuum comprising a peripheral edge able to come into sealed contact on the periphery of the top face of the mould and a non-return valve,
an air-suction device comprising a pipe able to be connected to said non-return valve and a regulation cubicle to which the first network of wires and the second network of wires are connected, said regulation cubicle being configured for regulating the temperature of the at least one first heating lead and of the at least one second heating lead on the at least one first support layer.