The invention relates to a device for producing a tested weld joint between two contact elements joined together in a welding plane S, comprising a compressing space for accommodating the contact elements, said compressing space being delimited by a work surface of a sonotrode transmitting ultrasonic oscillations and a counter-surface of a counter-electrode in a first axial direction at two opposing sides and by delimiting surfaces of opposing delimiting elements in a second axial direction at two opposing sides, and at least one delimiting element being realized as a lateral slider element realized so as to be displaceable by means of an advancing device with respect to the counter-electrode. In addition, the invention relates to a method for producing a tested weld joint produced between two contact elements in a welding plane.
Devices of the make mentioned above are commonly used by the applicant for producing a weld joint, referred to as a terminal joint in the following, between a connection end of a wire conductor and a connection device commonly realized as a sheet metal part and often referred to as a terminal in technical terms. In this context, the connection end of the wire conductor and the connection device form contact elements of the terminal connection joined together in a welding plane by means of the ultrasonic connection.
In this context, the connection end of the wire conductor can be formed directly by the strand of the wire conductor, the plane of said strand fitting snuggly against a contact tab of the contact device in the welding plane during the subjection to ultrasound via the sonotrode, or also by a contact surface element, which is also realized as a sheet metal part and is connected to the strand of the wire conductor for forming the contact end of the wire conductor before producing the weld joint. In this instance, both contact elements are made of sheet metal.
To produce tested weld joints, it is known from DE 10 2014 013 452 A1 to test the process parameters or the geometry of the joint arrangement produced in the compressing space in situ while producing the weld connection in the compressing space and to automatically activate a measuring device upon detecting faults, e.g. exceeding of defined threshold values, in order to render impossible a subsequent use of the faulty wire conductor, which is welded to the terminal, by severing the wire conductor from the terminal.
Alternatively or also in combination with the aforementioned in-situ test of the weld joint by means of monitoring process parameters or the geometry of the joint arrangement produced in the welding procedure, mechanical stress tests of the joint arrangement are conducted at least intermittently in terminal connections, in which the connection end of a wire conductor is welded to a terminal, in order to ensure that the terminal connection does not succumb to the mechanical stresses occurring during the intended use of the terminal connection. For this purpose, a shear test is conducted on the terminal connections, in which the contact elements are subjected to a shear force in the welding plane and transverse to the longitudinal extension of the wire conductor. Hitherto, these tests have been conducted following the welding procedure and the removal of the joint arrangement produced in the welding procedure from the compressing space. An additional handling of the terminal connection is associated therewith, wherewith only fairly few terminal connections of a production batch are tested in practice due to the expenditure associated therewith.
The object of the invention at hand is to propose a device and a method which simplifies executing mechanical tests on terminal connections.
In order to attain this object, the device according to the invention has the features of claim 1.
According to the invention, the device comprises a test head which is next to the compressing space and is provided with an advancing device for advancing the test head towards an advancing axis parallel to the welding plane, and the counter-surface serves for accommodating a contact element in a fixating manner in the direction of the advancing axis, said test head being able to be transferred from a position outside of the compressing space to a position within the compressing space in such a manner that the test head is disposed within the open compressing space in a test mode of the device for subjecting the other contact element of the previously produced weld joint to a shear force oriented essentially parallel to the welding plane, and the test head is disposed outside of the compressing space in a weld mode of the device in order to produce the weld joint.
Accordingly, the device according to the invention enables executing the mechanical test of the terminal connection while the terminal connection is still in the compressing space. Therefore an additional handling of the terminal connection for executing the mechanical test is not necessary. Indeed, the terminal connection remains in position in the compressing space after executing the welding procedure and is not removed from the compressing space until after the mechanical tests have been executed. Thus, the number of the actually tested terminal connections of a production batch can be increased significantly without having to undertake a drastic increase of the production time of a production batch.
Preferably, the advancing device of the test head is formed by the advancing device of the lateral slider element so that a separate advancing device is not intended for advancing the test head.
If the test head is disposed at the lateral slider element, it can be used for mounting the test head.
In a preferred embodiment, the test head is disposed at a lateral slider head connected in an exchangeable manner to a lateral slider carrier of a lateral slider element so that retrofitting a weld device commonly used for producing terminal connections becomes possible via a simple exchange the lateral slider head.
If the test head is pivotally connected to the lateral slider element, the test head can be swiftly transferred to the compressing space.
For this purpose, it is particularly advantageous if the test head is connected to the lateral slider element by means of pivot axis extending parallel to the counter-surface of the counter-electrode and in a third axial direction transverse to the advancing direction of the lateral slider element so that a drive device for pivoting the test head can be provided above the lateral slider element and thus the accessibility of the compressing space is impeded as little as possible.
A particularly compact solution for arranging the test head directly next to the compressing space is derived if the test head can be pivoted with respect to the lateral slider element by means of a drive device disposed at the lateral slider element.
Preferably, the test head comprises a contact element accommodation having a hold-down device, which is disposed essentially parallel to the welding plane, and a force transmission device for transmitting force to the contact element. By means of a test head realized in this manner it is ensured that the test force acting on the contact partner from the test head acts within the welding plane since it is prevented in particular via the formation of the contact element accommodation that the contact element subjected to the test force lifts off of the other contact element.
If the force transmission device is disposed such that it is oriented at a lateral offset so as to be displaced to a middle axis of the contact element, said middle axis extending parallel to the advancing axis of the test head and said contact element being disposed on the counter-surface, the shear force can be superposed by a shear moment.
If the contact element accommodation has a rotation stop effective in the first axial direction, it can also be prevented when necessary, on the other hand, that the contact element subjected to the test force rotates in the welding plane with respect to the other contact element.
Preferably, the hold-down device is realized as an abutment surface parallel to the welding plane S, the rotation stop is realized as an abutment edge, and the force transmission device is realized as a stop edge so that the hold-down device, the rotation stop and the subjection surface form a defined corner of the space and the test force is transferred evenly across the entire width of the contact element and a rotation of the contact element is precluded.
It is particularly preferred if a processing device is disposed next to the compressing space, said processing device enabling processing a wire conductor connected to a contact element or a terminal connected to the contact element following the test procedure.
Preferably, the processing device is realized as a severing device for severing the wire conductor, so if the connection arrangement fails in the shear test, the wire conductor can be severed to render the connection arrangement useless immediately after.
It is just as advantageous if the processing device is realized as a reshaping device for reshaping the terminal, so if the connection arrangement fails in the shear test, the terminal can be reshaped or not in order to mark the connection arrangement as being useless.
In order to attain the object invention, the method according to the invention has the features of claim 15.
According to the invention, to execute the test procedure following the welding procedure, a test head disposed outside of the compressing space during the welding procedure, which is executed in the welding mode of the device and in which the compressing space is closed via the sonotrode, is brought into a position within the compressing space in a test mode of the device, in which the compressing space is open, a contact element of the weld joint remaining in the welding position being subjected to a shear force in the direction of an advancing axis of the test head in order to execute the test and the other contact element being retained in a fixating manner on the counter-surface in the opposite direction of the advancing direction of the test head.
To execute the test procedure in the test mode of the device, the test head is pivoted from a position, which is disposed above the lateral slider element in the welding mode of the device, to a test position in the open compressing space.
If the test procedure is executed depending on at least one process parameter determined during the welding procedure, the test can always be executed independently of a fixed testing roster, which, for example, intends a defined test frequency in such a manner that each nth terminal connection is tested, if significant deviations are detected in a process parameter. Such process parameters can be the power consumption of the sonotrode or of a converter connected to the sonotrode, the welding time or even a geometric parameter of the weld joint, for example.
To execute the test procedure, a power transmission device of the test head preferably is displaced so as to abut against the contact element and then the force is steadily increased.
If the advancing device of the test head is provided with a path measuring device in such a manner that the advancing path of the test head is measured while the force is increased, a bad-part definition of the terminal connection can be carried out, in particular in the event that a contact element is realized as a strand, when the contact element is being compromised too greatly, e.g. when there is a too great force-path deviation.
Independently of the parameter defined for the bad-part definition, it is of advantage for the documentation of the test procedure and/or of the test result if the relevant data and their allocation to the tested terminal connection is documented and saved simultaneously, in particular a log file is generated.
If a contact element is marked with a test marking when executing the test procedure, it becomes possible to verify the executed test simultaneously to executing the test procedure.
Preferably, the force exerted via the test head is measured during the test procedure in order to sever the wire conductor connected to the contact element by means of a severing device should a defined test force be fallen below.
Alternatively, the shear force exerted via the test head can be measured during the test procedure, and the reshaping of a contact element for producing a mechanical connection between the contact element and a wire conductor connected to the contact element can be suppressed by means of a reshaping device acting on the contact element should a test force defined as a target value be fallen below.
In the following, a preferred embodiment of the device is further described by means of the drawing, with descriptions of the method to be executed by means of the device.
In the following,
In a second axial direction defined by the x-axis in this instance, the compressing space 10 of opposing delimiting surfaces 17, 18 of delimiting elements is delimited, said delimiting elements each being formed by a lateral slider element 19, 20 which can each be displaced towards the x-axis with respect to the counter-electrode 16 in this instance, as illustrated in particular in
In the welding mode illustrated in
In this instance, the two contact elements 11, 12 illustrated in
After producing the weld joint in the compressing space 10 illustrated in
As a comparison between
As
After transferring the compressing space 25 to the open position which is illustrated in
Starting from the non-operation position illustrated in
As
As illustrated in
Number | Date | Country | Kind |
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10 2016 214 227.5 | Aug 2016 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/068154 | 7/18/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2018/024481 | 2/8/2018 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4596352 | Knapp | Jun 1986 | A |
4869419 | Nuss | Sep 1989 | A |
5196079 | Sager | Mar 1993 | A |
6564115 | Kinnaird | May 2003 | B1 |
20070000890 | Steiner | Jan 2007 | A1 |
20070257088 | Steiner | Nov 2007 | A1 |
20080032569 | Steiner | Feb 2008 | A1 |
20090013786 | Gassert | Jan 2009 | A1 |
20110155701 | Gerst | Jun 2011 | A1 |
20160116355 | Stroh | Apr 2016 | A1 |
20160136753 | Ruhl | May 2016 | A1 |
20160294140 | Trube | Oct 2016 | A1 |
20180200827 | Strobel | Jul 2018 | A1 |
Number | Date | Country |
---|---|---|
1316100 | Oct 2001 | CN |
101146640 | Mar 2008 | CN |
102870292 | Jan 2013 | CN |
105324230 | Feb 2016 | CN |
3437749 | Apr 1986 | DE |
19752319 | May 1998 | DE |
102004012098 | Aug 2005 | DE |
102004022313 | Oct 2005 | DE |
102005004899 | Aug 2006 | DE |
102006021422 | Nov 2007 | DE |
102006049624 | Apr 2008 | DE |
102010050387 | Jun 2011 | DE |
102012111734 | Jun 2014 | DE |
102013107637 | Jan 2015 | DE |
102014013452 | Mar 2016 | DE |
102015222013 | Nov 2016 | DE |
2006015354 | Jan 2006 | JP |
WO-0243915 | Jun 2002 | WO |
WO-2005042202 | May 2005 | WO |
WO2005042202 | Dec 2005 | WO |
WO-2006005509 | Jan 2006 | WO |
WO-2006010551 | Feb 2006 | WO |
WO-2007042235 | Apr 2007 | WO |
Entry |
---|
Machine translation of DE-102006049624-A1 (date unavailable). |
Number | Date | Country | |
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20190173251 A1 | Jun 2019 | US |