This application claims priority from German Patent Application 102009042973 filed Sep. 25, 2009.
The present invention relates to a method to reduce the thermal degradation of the adhesive used in the weldbonding of metal sheets.
It is known to place a polymer adhesive or sealant between two sheets and then attach the sheet together by applying electric current via resistance weld electrodes to create an electric resistance spot weld and simultaneously heat the sheets. In some cases the heat can cure the adhesive. Or the adhesive may have been cured previously at ambient temperature. The spot weld and the adhesive bond each contribute to a high strength attachment between the metal plates. However, the temperature required to create the metal-to-metal weld is much higher than the temperature the adhesive can sustain and therefore can result in a large area of degradation of the adhesive bond caused by overheating of the adhesive. In order to compensate for the degradation, the welds must be placed farther apart or larger amounts of adhesive must be used, thus increasing the cost and complexity of weldbonding applications.
A method for weldbonding together metal sheets includes applying adhesive on the surface of a first sheet and placing a second sheet atop the first sheet. The sheets are heated at a selected location to a high temperature forming a metallic weld nugget between the first sheet and the second sheet. The heating of the sheets also heats the adhesive. One or both of the sheets is then cooled in the area surrounding the selected location of heating so that the high temperature needed to create the metallic weld nugget is prevented from transferring so far beyond the selected location as to overheat the adhesive layer and thereby degrade the quality of the adhesive bond.
The present invention will become more fully understood from the detailed description and the accompanying drawings, wherein:
The following description of certain exemplary embodiments is merely exemplary in nature and is not intended to limit the invention, its application, or uses.
Referring to
In
Squeeze pressure is applied to the electrodes 16 and 18 and weld current is applied between the first electrode 16 and the second electrode 18 to create a resistance spot weld nugget 22 between the metal of the first sheet 10 and the second sheet 14. The heat created in making the resistance spot weld nugget 22 heats the metal sheets 10 and 14. The adhesive may be a heat curable adhesive that is cured by the heat. Or the adhesive may be curable at ambient temperature.
We have observed that exposing the adhesive 12 to a temperate exceeding about 250 degrees Centigrade will degrade the performance of the adhesive. Because the formation of the resistance spot weld nugget 22 requires the spot heating of the metal sheets 10 and 14 to a temperature of about 1550 degrees Centigrade, in the case of steel sheets, the adhesive will be degraded in a region surrounding the location of the spot weld nugget 22.
Referring to
In addition,
It will be understood that a cooling manifold similar to the cooling manifold 26 can also be provided on the first electrode 16 to cool the first sheet 10. In addition, the cooling manifold can be mounted on the electrode as shown in the drawings, or alternatively, the cooling manifold can be mounted on the electrode holder or other structure of the welding apparatus. In addition it will be understood that the electrodes will be moved along the sheets to make a series of such metal weld nuggets.
A cooling manifold 65 is mounted on the tool holder 60 and includes a nozzles 66, 68 and nozzle 70 that are connected to a coolant source 72. The coolant source 72 provides a flow of coolant, such as air or a fluid mist or water that flows onto the second metal sheet 54 in the region alongside and following the friction stir weld nugget 64. The coolant will provide cooling of the metal sheet 54 and therefore reduce the size of the region of degradation of adhesive 52 that would otherwise occur around the weld nugget 64. It will be understood that the flow rate and temperature and duration, as well as the heat dissipating characteristics of the particular coolant, will determine the extent to which the cooling and reduction in degradation is achieved.
A cooling manifold 114 is mounted on the tool holder 100 and is connected to of a coolant source 118. A plurality of nozzles, shown for example at 122 and 124 are mounted on the tool holder 100 and are connected with the cooling manifold 114 to provide a flow of coolant, such as air or a fluid mist or water that flows onto the metal sheet 94 in the region alongside and following the electrode roller 98. Likewise, a cooling manifold 128 is mounted on the tool holder 108 and connects with a coolant source 130 and nozzles 134 and 136 to spray coolant onto the metal sheet 90. The coolant will provide cooling of the metal sheets 90 and 94 and therefore reduce the size of the region of degradation of adhesive 92 that would otherwise occur around continuous weld nugget 110. It will be understood that the flow rate and temperature and duration, as well as the heat dissipating characteristics of the particular coolant, will determine the extent to which the cooling and reduction in degradation is achieved.
Thus it is seen that the invention will optimize weldbonding of metal sheets by allowing the creation of high temperature to make the metal-to-metal weld nugget, and yet control the metal temperatures to achieve optimal heating without excessive adhesive degradation.
Although the drawings show the example of two metal sheets being weldbonded together, the aforedescribed weldbonding method can be used when two or three or more sheets are being attached together. In addition, rather than simple metal sheets, one or both of the metal sheets can be a laminated metal of metal-polymer-metal construction, and the coolant flow will minimize the possibility that the heating will degrade the polymer layer of the laminated metal.
Number | Date | Country | Kind |
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102009042973 | Sep 2009 | DE | national |