Device for laminating several layers arranged in a stack to form a laminate composite
Metallic laminating plates with high thermal conductivity and controlled temperature gradients, along with fluid-filled chambers, enhance lamination efficiency by reducing cycle times and preventing overheating, thus improving the bonding process.
Patent Information
- Application Number
- DE102017102940
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2017-02-14
- Publication Date
- 2026-01-22
- Estimated Expiration
- 2037-02-14
AI Technical Summary
Existing laminating processes suffer from increased cycle times and partial overheating of layers due to constant temperature heating, leading to inefficiencies.
The use of metallic laminating plates with high thermal conductivity (50-80 W/mK) and controlled temperature gradients, combined with inductive heating or resistance heating elements, and a fluid-filled pressure chamber for rapid heating and cooling, allowing precise temperature control during the lamination process.
This approach significantly reduces lamination cycle times and prevents overheating, ensuring efficient bonding of layers by controlling temperature dynamics.
Smart Images

Figure 00000000_0000_ABST
Abstract
Description
[0001] The invention relates to a device for laminating several layers arranged in a stack to form a laminate composite.
[0002] From DE 10 2010 031 421 A1, a laminating device for laminating a multi-layered document is known, comprising two laminating plates between which a document to be laminated can be placed. The laminating plates consist of at least one electrically conductive ceramic material and have electrical connections, so that the laminating plates and the document can be heated by applying an electrical voltage to the electrical connections during a heating phase of the laminating process. After a predetermined laminating time, the heating phase, and thus the heating of the laminating process, is terminated. This is followed by a cooling phase in which the laminating plates are cooled by a coolant.
[0003] To laminate a document, it is placed between the laminating plates, the plates are pressed together, and the plates are heated by applying voltage to the electrical connections. After lamination, i.e., melting and bonding the individual layers of the document, the heating is switched off and the cooling fluid is supplied to the laminating plates.
[0004] Such a process, in which the laminating plates are heated to a constant temperature during lamination, has the disadvantage of increased cycle times. Furthermore, this can lead to partial overheating of individual layers.
[0005] EP 1 340 611 A1 describes a plate press with a heating and cooling system. This plate press is controlled by a targeted temperature control in the heating and / or cooling circuit to prevent unwanted heating of the press plate on its product-facing side.
[0006] German patent applications DE 41 41 971 A1 and DE 41 41 972 A1 disclose a method and a device for laminating layers of identification cards. In this process, pressure and / or heat are applied to the layers using a pressing tool to bond them together.
[0007] A method for laminating film layers is known from DE 10 2009 060 862 A1. In this method, the film layers are laminated to form a film laminate by heating the stack of film layers, creating a material-bonded bond between the layers. The stack is heated such that a flowable film layer softens before a carrier film layer softens. For this purpose, the laminating device includes laminating press tools with different heat capacities (C) and / or thermal conductivities, thus enabling a differential heating delay on both sides of the film layer stack.
[0008] From EP 0 972 636 A2 a multi-level press for laminated plastic cards is known.
[0009] US Patent 5,728,309 A discloses a method for forming or consolidating an organic matrix composition.
[0010] Furthermore, US Patent 6,109,903 A discloses a device for manufacturing a vulcanized rubber-metal plate.
[0011] US Patent 4,365,547 A discloses a method and a device for controlling a laminating press.
[0012] WO 03 / 044 717 A2 discloses a separating plate and a method for manufacturing a separating plate for a multi-layer press pack. The separating plate is made of a steel sheet and has a thermal conductivity of essentially 40 to 60 W / mK and / or a coefficient of thermal expansion of 9 to 14. -6 K -1 exhibits.
[0013] The invention is based on the objective of proposing a device for laminating several layers arranged in a stack to form a laminate composite, thereby reducing cycle times for the lamination process and improving the lamination.
[0014] The problem underlying the invention is solved by a laminating device in which the upper and lower laminating tools provided for the lamination process each comprise a laminating plate, wherein the laminating plates are metallic and have a thermal conductivity of 50-80 W / mK. This enables a high heat flow. Furthermore, it is also possible to control a temperature gradient between the laminating plates and the stack during the lamination process.
[0015] Furthermore, it is provided that at least one laminating plate, together with the upper and lower tools, forms a pressure chamber with the insertion of a sealing element, which can be filled with and through which a fluid can flow. This embodiment has the same advantages as the embodiment described above.
[0016] Alternatively, the laminating plate can be inductively heated using coils or high-frequency generators. Likewise, the laminating plate can have at least one resistance heating element for electrical heating.
[0017] The invention, as well as further advantageous embodiments and developments thereof, are described and explained in more detail below with reference to the examples shown in the drawings. The features that can be derived from the description and the drawings can be applied individually or in any combination according to the invention. The drawings show: Fig. 1 a schematic view of a first embodiment of a laminating tool, Fig. 2 a schematic sectional view along line II in Fig. 1, Fig. 3 A schematic view of a laminating device with a laminating tool according to the Fig. 1 and Fig. 2, Fig. 4 a schematic side view of an alternative design of a laminating device in an open position, Fig. 5 a schematic view of the laminating device according to Fig. 4 in a closed arrangement, Fig. 6 a schematic side view of an upper pressing tool with a laminating plate and an associated closed fluid circuit, Fig. 7 a diagram for temperature development in the stack of layers according to a state-of-the-art process for producing a laminate composite and Fig. 8 a schematic diagram of a temperature development in the stack of the laminate composite.
[0018] In Fig. Figure 1 shows a schematic view of a first embodiment of a laminating tool 11. A schematic sectional view along line II is shown. Fig. 2 stands out.
[0019] The laminating tool 11 comprises a laminating plate 12, which has an exemplary square or rectangular contour along which a support surface 14 extends. Opposite the laminating plate 12, a support plate 16 is provided, which is preferably aligned parallel to the laminating plate 12. A support structure 17 is provided between them, which separates the laminating plate 12 from the support plate 16. This support structure 17 is, for example, rib-shaped, web-shaped, or the like. This support structure 17 is surrounded by an outer wall 19, which adjoins the laminating plate 12 and the support plate 16. This forms a closed inner volume within which the support structure 17 is located. A connection for at least one inlet 21 and a connection for at least one outlet 22 are provided on the outer wall 19.In this embodiment, it is provided that, for example, two inlets 21 are provided on one side of the outer wall 19 and two outlets 22 are provided on the opposite side.
[0020] The support structure 17 is designed such that a medium which enters the internal volume of the laminating tool 11 through the inlet 21 can flow out via the outlet 22. For example, microchannels can be provided that run along the planar extent of the laminating tool 11. Alternatively, webs 23 can be provided that are spaced apart from each other and / or have openings or recesses to allow the flow of a medium.
[0021] The laminating plate 12 is preferably thicker than the carrier plate 16. The outer wall 19 is preferably designed as an elastic membrane, so that the laminating plate 12 can be slightly resilient relative to the carrier plate 16. Preferably, the laminating tool 11 is made of a single material and can, for example, be constructed using a 3D printing process such as laser sintering or laser melting. Alternatively, the laminating tool 11 can also be designed in multiple parts, with the individual components being joined together for heat treatment or by bonding, in any case such that a closed, and in particular media-tight, internal volume is formed.
[0022] In this embodiment, the laminating plate 12 is provided with connection contacts 25 for electrical leads, which lead to a control unit (not shown in detail). This allows the laminating plate 12 to be controlled as a resistance heating element to enable targeted and defined heating. Additionally or alternatively, the laminating plate 12 can be heated with a fluid flowing through its internal volume.
[0023] To cool the laminating tool 11, a cooled medium is supplied via the inlet 21, flows through the internal volume and is discharged via the outlet 22.
[0024] The flow of the cooling medium during the heating phase allows for rapid control or reduction of the heating temperature.
[0025] The contact surface 14 of the laminating tool 11 may have an embossed structure. For example, a dot-shaped or line-shaped structure may be engraved.
[0026] In Fig. Figure 3 shows a schematic side view of a laminating device 31, which has a lower tool 32 and an upper tool 33. A laminating tool 11 is attached to each of the upper and lower tools 32 and 33, respectively, according to the Fig. 1 and Fig. 2 attached. In the lower tool 32, for example, several pressure dies 34 are provided. These can be arranged evenly distributed across the support surface 14 of the embossing plate 12. This is shown, for example, by dashed lines in the top view in Fig. 3 shown. These pressure stamps 34 allow an additional force to be applied to the laminating tool 11.
[0027] To laminate a stack 36 consisting of several layers 35 into a laminate composite 38, in which the layers 35 are permanently bonded together, the stack 36 is placed on a lower laminating tool 11. Subsequently, the laminating device 31 is closed, and in particular, the upper tool 33 is moved towards the lower tool 32 to exert laminating pressure on the stack 36. Even before the laminating device 31 is closed, the heating phase of a laminating cycle begins, and the laminating tool 11 is heated until the individual layers 35 of the stack 36 are bonded together to form a laminate composite 38. The heating phase is then terminated, and the cooling phase is initiated. A medium for cooling the laminating tools 11 is passed through the support structure 17. The laminating pressure within the laminating device 31 is maintained until the laminate composite 38 has cooled.The laminating device 31 is then opened and the finished laminate can be removed from the lower tool 32. The laminating device 31 is then ready for the next laminating process.
[0028] Alternatively to the one in Fig. In the embodiment of the laminating device 31 shown in Figure 3, heating elements 38, in particular electric heating elements, may be provided, for example, between the pressure dies 34 on an underside of the laminating tool 11, in particular on the carrier plate 16. These heating elements 38 can also be used to heat the laminating tool 11.
[0029] The stack 36, which consists of several layers 35, can, for example, comprise at least one outer layer made of a thermoplastic elastomer that can be melted by applying heat, so that these outer layers, including inner layers that may be made of paper, form a closed encapsulation. Alternatively, the individual layers can all consist of a thermoplastic elastomer, so that they melt or fuse at least on the surface and bond with the adjacent layer to form a laminate composite, such as a card, in particular a PC card. Such a laminate composite 38 can be an access card, identification card, check card, or personalized card, such as an identity card or the like.
[0030] In Fig. Figure 4 schematically shows an alternative embodiment of the laminating device 31. This laminating device 31 is in an open state.
[0031] In Fig. 5 the laminating device 31 is arranged in a closed state. The laminating device 31 comprises an upper tool 32 and a lower tool 33, each with a laminating plate 12 and a sealing element 41 arranged between them. Between the upper and lower laminating plates 12, several superimposed layers 35 are provided in a stack 36 resting on the lower laminating plate 12, which are laminated to form a laminate composite 38 by a lamination process described in more detail below. Fig. 5 are connected. The upper and lower tools 32, 33 are, for example, designed as a press plate. The laminating plates 12 are, for example, designed as thin metallic plates.
[0032] The sealing element 41 comprises a closed, circumferential body that is adapted to the planar extent of the upper and lower tools 32, 33. For example, the sealing element 41 as well as the upper and lower tools 32, 33 can have a rectangular contour.
[0033] The sealing element 41 has an upper contact surface 42 for contact with the upper tool 32 and lower tool 33. Opposite the upper contact surface 42, a lower contact surface 43 is provided for contact with the laminating plate 12. The sealing element 41 preferably has an inner circumferential surface 45, which is crescent-shaped or arcuate. This results in a concave inner end face on the sealing element 41. At least one inlet 21 and at least one outlet 22 for a fluid can be provided on an outer circumferential surface 44.
[0034] To carry out a lamination process, the upper tool 32 is closed by the lower tool 33, so that they exert pressure on the layers 35 of the stack 36 via the laminating plates 12 to form the laminate composite 37. During lamination, the upper tool 32 or lower tool 33 exerts pressure on the sealing element 41 relative to the respective laminating plate 12, so that a pressure chamber 46 is formed within it.
[0035] As an alternative to the inlet and outlet 21, 22, the inlet and outlet can also be in the plate-shaped material of the upper and lower tools 32, 33, so that the seal 46 consists exclusively of sealing material.
[0036] To monitor the temperature of the fluid flowing through the pressure chamber 46, a temperature sensor 47 is preferably provided, which is also connected to a control system not shown in detail.
[0037] In Fig. Figure 6 shows an upper tool 32 with a fluid circuit 45 connected to it. The same applies to the lower tool 14. This fluid circuit 48 includes a drain 22 associated with the upper tool 32, which is connected to a low-pressure accumulator 49 for receiving the fluid discharged from the pressure chamber 46. A compressor 50 is provided downstream of the low-pressure accumulator 49. From the compressor, a supply branch 51 for hot fluid and a supply branch 52 for cool fluid are supplied with the fluid stored in the low-pressure accumulator 49. A storage tank 54 for hot fluid is provided in the supply branch 51. This preferably includes a heating element 55. Hot fluid is supplied from the storage tank 54 to the pressure chamber 46 via a supply line to the at least one inlet 21 on the sealing element 41.
[0038] The supply branch 52 for cold fluid comprises a storage tank 57 for cold fluid and preferably a cooling element 58 associated with the storage tank 57. From this storage tank 57, a supply line leads to at least one inlet 21 on the sealing element 41 in order to supply the cold fluid to the pressure chamber.
[0039] A valve 60, in particular an inlet valve, is connected upstream of the inlet 21. Similarly, the outlet 22 is controlled via a valve 61, in particular an outlet valve. Additionally, a temperature and / or pressure sensor 47, 62 can be provided in the upper tool 32. Furthermore, a control unit 64 is provided, which controls the valves 60, 61 and acquires and evaluates data from the temperature and / or pressure sensor 47, 62. The control unit 64 can also be coupled to the low-pressure accumulator 49, the compressor 50, the heating element 55, the cooling element 58, and the accumulator 54 with respect to pressure and / or temperature at the accumulator 57 with respect to pressure and / or temperature. The aforementioned setup applies analogously to the lower tool 33.
[0040] To close the laminating device 11, the upper tool 32 and the lower tool 33 are moved into a closing position according to Fig. 3 and Fig. 5. The applied pressing force of the upper and lower tools 32, 33 presses the respective sealing element 41 between the laminating plate 12 and the upper and lower tools 32, 33, thus forming a pressure chamber 46. Subsequently, the control device 64 opens the valve 60 at the hot fluid inlet 21, allowing hot fluid to flow from the reservoir 54 into the pressure chamber 46. Once a predetermined pressure is reached in the pressure chamber 46, which is detected by the pressure and / or temperature sensors 47, 62, the valve 60 closes. Additionally, the temperature in the pressure chamber 46 can be further increased by the heating elements 55. Once the lamination, in particular the welding of the layers 35, has taken place, the valve 61 is opened so that the hot fluid can flow out of the pressure chamber 46 via the drain 22 and into the low-pressure storage tank 49.Simultaneously, valve 60 at inlet 21 for the cool fluid is opened, allowing cool fluid to flow from reservoir 57. As soon as the temperature sensor 47 in the pressure chamber detects cool fluid, valve 61 closes. Cool fluid continues to be supplied via reservoir 57 until the required pressure is reached in the pressure chamber 46. This is then detected by temperature and / or pressure sensors 47, 62. Valve 60 for the cool fluid is then closed. After the laminate composite 38 has cooled, valve 61 at outlet 22 can be reopened. Similarly, at least one valve 60 can be used to supply the cool or hot fluid, so that after the upper tool 32 is lifted from the lower tool 33, the laminating plate 12 can be lifted from both the upper and lower tools 32, 33.The fluid stored in the low-pressure accumulator 49 can be compressed by the compressor 50 and selectively fed to the supply branch 51, 52. Preferably, warm fluid present in the low-pressure accumulator 49 is fed to the supply branch 51 and cool fluid to the supply branch 52. The arrangement of the accumulators 54, 57 in the fluid circuit 48 allows for rapid filling of the pressure chamber 46, in particular enabling heating of the stack 36 and subsequent rapid cooling of the laminate composite 38.
[0041] In Fig. Figure 7 shows a diagram for a heating phase of a lamination process for producing a laminate composite 38 using a method known from the prior art. Time is plotted on the x-axis and temperature on the y-axis. The Tg line shows the glass transition temperature of the layers 35 to be laminated in the stack 36 to form a laminate composite 38. The glass transition temperature shown is adapted to the layer 35 that has the highest temperature for melting or partial melting.
[0042] After the laminating tools 11 are brought together to form a stack 36, they are heated at a constant temperature. In the case of a first embodiment of the Fig. 1, Fig. 2 to Fig. 3 and in the embodiment according to Fig. 4 and Fig. 5. The respective pressure chambers are permeated with a hot fluid. In the case of an alternative embodiment of the Fig. 1, Fig. 2 to Fig. 3. The resistance heating elements assigned to the laminating plates 12 are energized and heated to a constant temperature. The heating phase continues at a constant temperature until the individual layers 35 are partially or fully melted and laminated together. The temperature profile for the laminating plate 12 follows characteristic curve 71. For a layer 35 in the stack 36, for example, made of polycarbonate with a material thickness of 0.1 mm, the temperature profile follows characteristic curve 72. For another layer 35 in the stack 36, for example, made of polycarbonate with a layer thickness of 0.4 mm, characteristic curve 73 applies. The lamination point 74, at which the layers 35 are partially or fully melted and bonded together, occurs after the glass transition temperature of layer 73 has been reached.
[0043] In Fig. 8 is an analogous diagram to Fig. Figure 7 shows that, due to the method according to the invention, a significant reduction in the lamination time 74 is achieved, as a comparison of the diagrams shows.
[0044] During the heating phase of the lamination process, the laminating plates 12 are heated to a temperature represented by characteristic curve 70. At the beginning of the heating phase, the controlled heating temperature is significantly higher than the glass transition temperature of the layer 35 to be laminated in the stack 36. This excessively high heating temperature of the laminating plates 12 allows for a shorter heating time. This enables an initial steep temperature increase in the laminating plates according to characteristic curve 71. This, in turn, causes the temperature present in the laminating plates 12 to be transferred to the layers 35 in the stack 36. This also enables steep temperature increases for the layer according to characteristic curves 73 and 74. As the heating phase progresses, the heating temperature controlled by the laminating plates is reduced according to characteristic curve 70.A reduction is made such that the temperature of the laminating plates 12 remains above the line Tg. From the diagram according to... Fig. Figure 8 shows that the characteristic curve 73 crosses the line Tg at a significantly earlier lamination time 74 than in the procedure according to Fig. 7 is the case. This results in the joining layers 35 melting or thawing at an earlier time, which in turn shortens the work cycle.
[0045] The reduction of the controlled heating temperature for the laminating plates 12 is preferably controlled exponentially. Alternatively, a step function or a stepwise reduction is also possible.
Claims
[1] Laminating device for laminating several layers (35) arranged in a stack (36) to form a laminate composite (38), comprising at least one laminating tool (11) which includes an upper tool (32) and a lower tool (33) and at least one laminating plate (12) between which a stack (36) of several layers (35) is arranged to form a laminate composite (38), wherein the at least one metallic laminating plate (12) has a thermal conductivity of 50-80 W / mK, characterized by , that at least one sealing element (41) is provided between the laminate plate (12) and an upper tool or lower tool (32, 33), which, after the laminate plates (12) are joined with the respective upper tool and lower tool (32, 33), forms a fluid-fillable pressure chamber (46). [2] Laminating device according to claim 1, characterized bythat at least one laminating plate (12) can be heated inductively or can be heated with at least one resistance heating element.
Citation Information
Patent Citations
Method for lamination of film layers in e.g. smart card during manufacture, involves softening lower film layer before softening of carrier film layer
DE102009060862A1
Laminated ID card mfr. - has pref. Peltier unit at press die as valve function to give heating and cooling effects
DE4141971A1
Method and apparatus for laminating layers of identification cards and the like.
DE4141972A1
Multi-plate press for laminated plastic cards
EP0972636A2
Plate press with heating and cooling system
EP1340611A2