The invention relates to a method, in particular computer-implemented, for simulation of the application of a material strand onto a workpiece by means of an application jig moved along an application path running on a surface of the workpiece.
Strands of viscous material, such as adhesives or sealants, for example, are usually applied industrially in automated manner on workpieces, by the fact that an application jig is moved by means of a robot along an application path running on a surface of the workpiece in question and dispenses the material onto the workpiece surface. In the process, a large number of parameters influence the shape and the size of the material strand applied on the workpiece. Worth mentioning are in particular the volume flow and the pressure with which the material is applied through an application nozzle, the distance from the nozzle to the workpiece surface, the speed of the nozzle relative to the workpiece surface, the type of material and the temperature of the material and many further parameters concerning the material, the application jig, the workpiece and the environment. In particular, during startup of the application jig, it may be difficult to adjust it such that the material application takes place in the desired way and the applied material strand satisfies the requirements. Even the change of parameters during the application process, for example a temperature change, may lead to the situation that the applied material strand is changed in undesired manner.
It is therefore the task of the invention to reduce the expense for the determination of the parameters necessary for a satisfactory material application. This task is accomplished according to the invention by a simulation method with the features of claim 1. Advantageous improvements are subject matter of the dependent claims.
The invention is based on the idea of simulating the application of a material strand, especially prior to the startup of an application jig. For this purpose, parameter sets that contain parameters that influence the cross-sectional values of the material strand are specified and saved in a data memory. The cross-sectional values of the material strand characterize its cross-sectional area in its shape and size. The parameters may be parameters characterizing the material, such as the type of the material, the viscosity or the temperature of the material, parameters of the application jig, such as the volume flow, the pressure exerted on the material, the cross section of the application nozzle, its distance from the workpiece surface or its speed relative to the workpiece surface, as well as parameters of the environment, such as the ambient temperature, for example. During the simulation of the material application, respectively one cross-sectional value that is determined from the parameter set specified at the respective application point is assigned to the application points located on the application path. Expediently, a large number of parameter sets as well as cross-sectional values determined experimentally for each parameter set are saved in a data memory. The data-processing unit, which expediently is a computer, then determines, for each parameter set, cross-sectional values assigned thereto by means of the data memory or reads them from the data memory. However, it is also possible for the data-processing unit to calculate the cross-sectional values from the specified parameter sets by means of an algorithm. In this way, a series-type arrangement of cross-sectional values, which are disposed at specified mutual distances corresponding to the series-type arrangement of the application points, is generated along the application path.
In order to obtain a simulation of the material strand between the application points also, it is preferred that the simulation of the material strand between the application points take place by interpolation, wherein cross-sectional values determined by means of interpolation are assigned by the data-processing unit to each point between the application points. It is therefore not necessary to dispose the application points too closely to one another, which would require an enormous computing power.
The application path may be a straight line, on which the application points are linearly arrayed at specified distances. For most practical cases, a straight line is a suitable simplification of a real application path, which is usually multiply curved. However, it is also possible for the application path to be an at least two-dimensional line, so that curves as well as peak and valley shapes may likewise be represented during the simulation.
A preferred embodiment provides that the cross-sectional values determined at the application points on the basis of the specified parameter sets are compared with specified target values for evaluation of the quality of the material strand. In this way, it is possible to evaluate the simulated material strand in terms of its quality and if necessary to simulate a further material strand with changed parameters, when the deviations from the target values are too large. Furthermore, it is preferred that the cross-sectional values determined by interpolation at the points between the application points are likewise compared with specified target values for evaluation of the quality of the material strand.
The invention will be explained in more detail hereinafter on the basis of an exemplary embodiment illustrated in the drawing, wherein
The material strand 10, illustrated in
The method according to the invention permits the simulation of the application of the material strand 10 on the workpiece 14. The size and shape of the cross section of the material strand 10 is dependent on a large number of parameters at each of its points. These parameters include parameters of the application jig used for the material application, such as, for example, the volume flow or the pressure to which the material is subjected during application, the type of the nozzle from which the material emerges, in this connection especially its cross section, the speed with which the nozzle is moved relative to the workpiece 14 and its distance from the workpiece surface 12. Parameters that influence the shape and size of the strand cross section are furthermore material-specific parameters, such as the type of the material and the viscosity of the material as well as its temperature, and also environment-specific parameters such as the ambient temperature, relative humidity, etc.
The simulation is executed by a data-processing unit 52, which is provided with a data memory 54 (see
The representation of the material strand 10 obtained by the simulation may be compared with target values, as shown in
An application jig 40 for the application of adhesive on a body part 42 for a motor vehicle according to
In
In summary, the following can be asserted: The invention relates to a method for simulation of the application of a material strand 10 onto a workpiece 14, especially a strand of viscous adhesive or sealant, by means of an application jig moved along an application path 28 running on a surface 12 of the workpiece 14, wherein cross-sectional values 32 of the material strand 10 that characterize the cross-sectional area of the material strand 10 in terms of its shape and size are assigned to application points 30 disposed at specified mutual distances on the application path 28, and wherein the cross-sectional values 32 at each application point 30 are respectively determined by means of a data-processing unit 52 from a specified parameter set, which contains parameters that influence the material application at the respective application point 30.
Number | Date | Country | Kind |
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10 2016 002 484.4 | Mar 2016 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/055012 | 3/3/2017 | WO | 00 |