Setting device
The present invention relates to a setting device for fastening an element to a workpiece having a guide device that can be brought into mechanical contact with the element and that has an axial hollow space for guiding the element, and having an axially movable ram for moving the element in a setting direction through the hollow space of the guide device, wherein the guide device has at least one first and one second guide element; wherein the guide elements bound the axial hollow space and are preloaded by means of a preloading device by a preloading force acting radially inwardly on the guide element, and wherein a detection device is associated with the guide device and a presence, position and/or location of an element in the region of the guide device can be detected by it.
The present invention relates to a setting device for fastening an element to a workpiece.
Setting devices are frequently used in the mass production of workpieces to fasten elements thereto that provide specific functions. Such elements can, for example, be nut element or pin elements that serve as fastening points for further components. Such elements can, for example, be used when fastening elements are to be applied to sheet metal parts. A typical area of use of such setting devices is automotive manufacture. However, setting devices are also widely used in other sectors.
It is of great importance for the quality of the workpiece in this respect that the element is fixed to the workpiece reliably and in a controlled manner. In other words, the element must be supplied in a reproducible manner and must be pressed against or into the workpiece. The pressing force required to fix the element is applied by a ram. To enable an exact delivery and positioning of the element, the setting device is provided with a guide device that reliably guides the element in a positionally faithful manner during the delivery and the pressing. For this purpose, the guide device has an axial hollow space through which the element is guided in a setting direction—that is toward the workpiece—by means of the axially movable ram. The guide device has at least two guide elements that define the hollow space or bound it in a radial direction. The guide elements are preloaded by means of a preloading device that generates a preloading force that acts radially inwardly on at least one of the guide elements—that is on a longitudinal axis of the hollow space. This preload provides that the element can be guided through the hollow space without any lateral play, which minimizes the risk of a canting of the element. The at least two guide elements are at least sectionally movable relative to one another. They are preferably separately formed. It is, however, also possible in specific cases to configure the guide elements in one piece with one another, with an (elastic) bendability of the elements relative to one another being permitted. Two half-shells can, for example, be thought of in this connection that are connected to one another (e.g. in one piece) at one of their respective longitudinal sides and thus form a kind of clamp or ring with a slit. It is also possible to use a section of a component of the setting device receiving the guide device as a guide element and to provide at least one second guide element inwardly preloaded in the radial direction. On its movement through the hollow space, the preloaded guide element, for example, presses the fastening element to be set against a section of an inner surface of a housing component that receives the guide element.
Such setting devices are generally known. Malfunctions can, however, occur; for instance, when the element is not correctly supplied. Such malfunctions result in defective workpieces and/or in production downtimes that are associated with substantial costs.
It is therefore an object of the present invention to provide an inexpensive and reliable setting device of the initially named kind that recognizes malfunctions.
This object is satisfied by a setting device having the features of claim 1.
In accordance with the invention, a detection device is associated with the guide device and a presence, a position and/or a location of an element in the region of the guide device can be detected by it. In other words, the detection device enables the delivery of the element to be monitored and to determine whether and where applicable how the element is supplied to the workpiece. In the case of a malfunction, warning signals can be output at an early time and/or counter-measures can be initiated (e.g. an emergency stop or a prevention of a restarting of the setting process).
Advantageous further embodiments of the present invention are set forth in the claims, in the description and in the enclosed drawings.
In accordance with an embodiment, the detection device has an electrical principle of operation, in particular a capacitive, inductive and/or resistive principle of operation and/or an optical and/or magnetic and/or acoustic principle of operation and/or comprises a force sensor and/or a pressure sensor. Different sensor types and/or detectors can be combined to optimize the detection of the element.
The detection device is, for example, at least partly integrated in at least one of the guide elements. Additionally or alternatively at least one measurement tap or sensor of the detection device is arranged in a region of operation of the guide device viewed in the direction of setting. This enables a direct or indirect observation of the element in the region of the guide device.
The detection device in particular comprises a first contact element that is provided at an inner side of the first guide element and a second contact element that is provided at an inner side of the second guide element, wherein the contact elements can be brought at least sectionally into contact with the element on the movement of the element through the hollow space or are in contact therewith at least at times, and wherein an electrical voltage and/or an electrical current can be applied between the contact elements by means of the detection device. A measurement of the current, of the voltage, or of the resistance between the contact elements makes it possible to detect the presence—and also the position or location with a corresponding configuration of the contact elements—in a simple manner. It is generally possible to provide more than two contact elements, for example two or more contact elements per guide element, in particular with the contact elements being arranged in sections axially offset in the setting direction and being separately controllable to detect an axial position, location and/or an axial movement of the element. The guide elements themselves can form the contact elements, i.e. an inner surface of the guide elements forms the contact elements.
The detection device can comprise at least one magnetic field sensor, in particular a Hall sensor. This enables the detection of an element having paramagnetic or permanent magnetic properties. It is also conceivable to provide at least one magnetic field source (e.g. one or more coils and/or permanent magnets) and to detect and evaluate the changes of the generated magnetic field by the presence and/or movement of the element by one or more magnetic field sensors. With a suitable embodiment of the generated magnetic field and with a corresponding arrangement of the sensor or sensors, it is possible to detect an axial position, location and/or an axial movement of the element. This principle can generally also be implemented with electrical fields and corresponding sensors.
In accordance with a further embodiment, the detection device comprises at least one measurement coil, in particular with the measurement coil being arranged coaxially to the hollow space. The presence of an element changes the inductance of the measurement coil, which can be easily recognized by known measurement methods. A time change of the inductance also provides information on the movement of the element.
It is also conceivable that the detection device comprises at least one piezo receiver and/or at least one strain gauge by means of which a force can be detected that acts on at least one of the guide elements and/or that acts between the guide elements.
Additionally or alternatively, the detection device can comprise at least one movement sensor or distance sensor by which a movement of the guide device and/or at least one of the guide elements can be detected, in particular wherein a movement and/or a distance change of the at least one of the guide elements relative to a different component of the setting device and/or a movement and/or a distance change of the guide elements relative to one another can be detected. It is, for example, possible by means of a movement sensor to detect the change of an eigen frequency of the guide device by the presence of the element. An excited vibration that is deliberately generated by means of a corresponding vibration source can be provided to implement this measurement principle. It is, however, also possible to analyze the oscillations/vibrations occurring in normal operation of the setting device.
The detection device can comprise at least one sound source and at least one sound sensor. The presence or location of the sensor can be determined by the detection of a change of the sound pattern and/or by the detection of sound waves reflected at the element and/or transmitted by the element.
In accordance with a further embodiment, the detection device comprises at least one compressed air source and at least one pressure sensor. Compressed air is, for example, introduced into the hollow space and a pressure in the region of the hollow space is determined by means of a pressure sensor. The measured pressure depends on whether and where applicable where the element is located in the hollow space. The detection of the element thus ultimately takes place via a pressure measurement or via an analysis of the development of the pressure over time.
In accordance with a simple and robust construction, the guide elements are at least partly, in particular completely, produced from an electrically conductive material, preferably from metal.
Guide elements that are adjacent in the peripheral direction are in particular separated from one another by an interval, for example by a slit.
The guide elements can be connected to one another by at least one connection element bridging the interval, in particular with the connection element comprising an electrical conductor and/or a pressure sensor, force sensor and/or distance sensor. If the guide elements are pressed apart by the presence of the element, an increase in size of the interval can occur that in turn has an influence on the connection element. This influence represents a measurement variable whose evaluation enables statements on the state of the setting device or on the presence and/or location of the element.
The guide elements can be electrically insulated from one another. This is in particular of advantage when the guide elements (or parts thereof) themselves act as electrical contacts.
A respective at least one insulation element can be arranged in the interval, in particular with the insulation element comprising or being completely produced from an electrically insulating and/or elastic material. The detection device can be at least partly arranged in the interval and/or can be integrated in the insulation element—if present.
In accordance with a constructionally advantageous embodiment, the preloading device comprises at least one (at least sectionally) elastic preloading element (e.g. a preloading element at least partly, in particular completely, comprising an elastomer) that surrounds the guide elements at their radial outer sides in the peripheral direction (in a directly contacting manner or indirectly). It can, for example, comprise an elastic preloading element, in particular an annular elastic preloading element, that is closed in the peripheral direction. The preloading element can be connected to at least one of the insulation elements. It is preferably configured in one piece therewith or is molded thereto (or vice versa).
The preloading element and/or the insulation element can comprise an elastomer arranged at at least one of the guide elements. Such an embodiment can be manufactured inexpensively and surprisingly delivers a reproducible and sufficiently large preloading force.
The preloading device can have a contact section that is arranged at, in particular fastened or molded to, the guide device and that projects in at least one section of the guide device in the radial direction beyond an outer contour of the guide elements to form a support point for the radial support of the guide device. Alternatively or additionally, a component of the setting device receiving the guide device, in particular a housing section, can have at least one inwardly projecting contact section that is arranged at, in particular fastened or molded to, the component, with the contact section forming at least one support point for the radial support of the guide device. In other words, at least one elastic contact section is provided that is arranged in the radial direction between the guide device and a component receiving the guide device, e.g. between a guide element and a housing section. The contact section thus provides a radial support of the guide device. It can also be provided at a preloading element surrounding the guide elements in the peripheral direction or can itself be formed by them or can be an independent functional component.
When the contact section is at least sectionally formed as elastic, for example comprises an elastomer, it can also provide the inwardly acting preloading force by a support to the outside. Each guide element would then preferably be provided with such an elastic contact section. The contact section can also be provided at the insulation element(s). The contact section can also—additionally or alternatively—comprise or be completely produced from an electrically insulating and/or elastic material.
As has already been initially mentioned, the detection device can have at least two detection sections that are arranged offset from one another in the setting direction and/or in the peripheral direction. A conclusion can be drawn on an axial position and/or location (e.g. tilt) of the element in the guide device by a suitable control of the sections. The spatial resolution of the detection device here depends on the number and positioning of the detection sections and can be selected according to requirements.
In accordance with an embodiment, a control device is associated with the detection device. The detection device can also be connected to a (higher ranking) control device by which signals of the detection device can be detected and/or evaluated to determine the presence, position and/or location of the element in the region of the guide device. To obtain more exact information on the progress of the setting of the element, the time progression or changes of the detected measurement variables can be analyzed.
The present invention will be explained in the following purely by way of example with reference to advantageous embodiments and to the enclosed drawings. There are shown:
In
The guide device 28 comprises a plurality of guide segments 30A, 30B. The segments 30A, 30B are separate components that are divided from one another by a slit 39, that each have a cross-section like a segment of a circle, and that are arranged such that they bound the hollow space 26 in the peripheral direction. They are preloaded by a preloading device not shown in detail in a direction toward a longitudinal axis 32H of the hollow space 26 that is arranged coaxially with a longitudinal axis 32S of the ram 24, that is radially inwardly. As soon as the element 22 enters into the hollow space 26, the segments 30A, 30B are urged outwardly against the preloading force generated by the preloading device.
To recognize this malfunction, a detection device is provided by means of which the presence of an element 22 in the hollow space 26 can be detected. An embodiment of such a detection device is shown in
The guide device 28 comprises four guide segments 30A, 30B, 30C, 30D (preferably composed of metal) that each form a peripheral section of the hollow space 26. They are separated from one another by insulating pins 40 that are arranged in slits 39 provided between adjacent guide segments 30A, 30B, 30C, 30C (see e.g.
As can be seen in
Four segments 30A, 30B, 30C, 30D are provided in the embodiment shown in
An axial support of the guide device 28 or of the segments 30A, 30B, 30C, 30D in a housing 18A of the plate 18 takes place via an electrically insulating support ring 45.
A radial support can take place via the rings 42A, 42C since they project out of the grooves 44 in part and thus project over the segments 30A, 30B, 30C, 30D in the radial direction.
It can in particular be seen from
The concept of providing a preloading device by elements projecting outwardly in the radial direction and having elastic properties can generally also be implemented in isolation from the insulating pins 40. It is, for example—additionally or alternatively—possible to provide or mold elastic abutment sections that are supported in the housing 18A at the outer sides of the segments 30A, 30B, 30C, 30D. Conversely—additionally or alternatively—elastic contact sections that project radially inwardly can also be provided at the housing 18A and serve for the radial support of the guide device 28. The contact sections can be fastened to the guide device 28 and/or to the housing 18A or can molded thereto or can be separate components.
Instead of the contact points 60, other sensors and/or signal sources can also be provided that also do not necessarily have to be functionally coupled to one another pairwise. Sound sources and sound sensors can, for example, be provided that detect a reflection of sound waves at the element 22. The detector elements 60 can also be movement sensors or vibration sensors to detect changes of the oscillation/vibration pattern or of the eigen vibration of the guide device 28 or of the base plate 18 (the elements 60—or at least one element 60—can then also be attached to the housing 18A inwardly or outwardly) that is caused by the presence/location/position of an element 22 in the hollow space. The detector elements 60 can also be optical or magnetic sensors or pressure sensors or sensors of a different type (e.g. embedded measurement coils).
It becomes clear from
It is also possible to additionally or alternatively detect and evaluate a change of the spacing between the segments 30A, 30B and the housing 18A. For this purpose, for example, distance sensors 62 (e.g. capacitive sensors) are provided that are shown in
10 setting device
12 guide housing
14 guide plate
16 sensor
18 base plate
20 supply channel
22 fastening element
24 plunger or ram
26 hollow space
28 guide device
30A, 30B, 30C,
30C′, 300″, 30D,
30D′, 30D″ guide segment
32H, 32S longitudinal axis
34 peripheral surface
36 workpiece
38 rivet section
39 slit
40 insulating pin
42, 42A, 42B, 42C ring
44 groove
45 support ring
46A, 46B conductor
48A, 48B recess
50 plug
52 fixing element
54 supply rail
56 screw
58 insulating plate
59A, 59B contact point
60 detector element
61 connection element
62 distance sensor
64 pressure sensor
S setting direction
D compressed air
Claims
1. A setting device for fastening an element to a workpiece, the setting device comprising:
- a guide device that can be brought into mechanical contact with the element and that has an axial hollow space for guiding the element, and
- an axially movable ram for moving the element in a setting direction through the hollow space of the guide device,
- wherein the guide device has at least one first and one second guide element; wherein the first and second guide elements bound the axial hollow space and are preloaded by means of a preloading device by a preloading force acting radially inwardly on at least one guide element, and wherein a detection device is associated with the guide device and at least one of a presence, a position and a location of an element in the region of the guide device can be detected by the detection device.
2. The setting device in accordance with claim 1, wherein the detection device has at least one of an electrical principle of operation, an optical acoustic principle of operation, a magnetic acoustic principle of operation and an acoustic principle of operation and/or comprises at least one of a force sensor and a pressure sensor.
3. The setting device in accordance with claim 1, wherein the detection device is at least partly integrated in at least one of the guide elements; and wherein at least one measurement tap or sensor of the detection device is arranged in a region of action of the guide device, viewed in the setting direction.
4. The setting device in accordance with claim 1, wherein the detection device comprises a first contact element that is provided at an inner side of the first guide element and a second contact element that is provided at an inner side of the second guide element, with the contact elements being able to be brought at least sectionally into contact with the element on the movement of the element through the hollow space, and with an electrical voltage and/or an electrical contact being able to be applied between the contact elements by means of the detection device.
5. The setting device in accordance with claim 1, wherein the detection device comprises at least one magnetic field sensor.
6. The setting device in accordance with claim 1, wherein the detection device comprises at least one measurement coil.
7. The setting device in accordance with claim 1, wherein the detection device comprises at least one piezo receiver and/or a strain gauge by means of which a force can be detected that acts on at least one of the guide elements and/or that acts between the guide elements.
8. The setting device in accordance with claim 1, wherein the detection device comprises at least one movement sensor or distance sensor by which a movement of at least one of the guide device and at least one of the guide elements can be detected.
9. The setting device in accordance with claim 1, wherein the detection device comprises at least one sound source and at least one sound sensor.
10. The setting device in accordance with claim 1, wherein the detection device comprises at least one compressed air source and at least one pressure sensor.
11. The setting device in accordance with claim 1, wherein the guide elements are at least partly produced from an electrically conductive material.
12. The setting device in accordance with claim 1, wherein guide elements adjacent in the peripheral direction are separated from one another by at least one interval.
13. The setting device in accordance with claim 12, wherein the guide elements are connected to one another by at least one connection element bridging the interval.
14. The setting device in accordance with claim 1, wherein the guide elements are electrically insulated from one another.
15. The setting device in accordance with claim 12, wherein a respective at least one insulation element is arranged in the interval.
16. The setting device in accordance with claim 12, wherein the detection device is at least partly arranged in the interval and/or is integrated in the insulation element.
17. The setting device in accordance with claim 1, wherein the preloading device comprises at least one elastic preloading element.
18. The setting device in accordance with claim 17, wherein the preloading element is connected to at least one of the insulation elements.
19. The setting device in accordance with claim 15, wherein at least one of the preloading element and the insulation element comprises an elastomer molded to at least one of the guide elements.
20. The setting device in accordance with claim 1, wherein the preloading device has a contact section that is arranged at the guide device and that projects in at least one section of the guide device beyond an outer contour of the guide elements in the radial direction and/or that is arranged at a component of the setting device at least partly receiving the guide device, with the contact section projecting radially inwardly; and/or wherein the preloading device has a separate contact section that is arranged in the radial direction between the guide device and a component of the setting device at least partly receiving the guide device with the contact section forming at least one support point for the radial support of the guide device.
21. The setting device in accordance with claim 20, wherein the contact section comprises or is completely produced from an electrically insulating and/or elastic material.
22. The setting device in accordance with claim 1, wherein the detection device has at least two detection sections that are arranged offset from one another in the setting direction and/or in the peripheral direction.
23. The setting device in accordance with claim 1, wherein a control device is associated with the detection device; or wherein the detection device is connected to a control device by which signals of the detection device can be detected and/or evaluated to determine at least one of the presence, position and location of the element in the region of the guide device.
Type: Application
Filed: Jun 10, 2019
Publication Date: Dec 12, 2019
Inventors: Andreas Lebeau (Friedrichsdorf), Klaus Irmler (Pohlheim), Benjamin Lesky (Rosbach vor der Hohe)
Application Number: 16/436,214