JOINING AND/OR INSPECTION UNIT
20220297311 · 2022-09-22
Inventors
Cpc classification
B25J15/0028
PERFORMING OPERATIONS; TRANSPORTING
B23P19/06
PERFORMING OPERATIONS; TRANSPORTING
G01R31/36
PHYSICS
B23P19/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B25J15/00
PERFORMING OPERATIONS; TRANSPORTING
B25J13/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present disclosure comprises a joining and/or inspection unit for joining and/or inspecting a component having a base and a plurality of joining and/or inspection elements, wherein the joining and/or inspection elements are arranged at the base such that they each establish a connection and/or carry out an inspection at a joining and/or inspection point of the component. The joining and/or inspection elements can be arranged at the base via an adjustment arrangement that allows an adjustment of the spacing of the joining and/or inspection elements from one another, with the adjustment arrangement preferably comprising a first and second adjustment axle via which the spacing of the joining and/or inspection elements from one another is adjustable in a first and second direction.
Claims
1. A joining and/or inspection unit for joining and/or inspecting a component having a base and a plurality of joining and/or inspection elements, wherein the joining and/or inspection elements are arranged at the base such that they each establish a connection and/or an inspection at a joining and/or inspection point of the component, wherein the joining and/or inspection elements are arranged at the base via an adjustment arrangement that allows an adjustment of a spacing of the joining and/or inspection elements from one another.
2. The joining and/or inspection unit in accordance with claim 1, wherein the spacing of the joining and/or inspection elements and/or of the joining and/or inspection points is adjustable in a plane.
3. The joining and/or inspection unit in accordance with claim 1, having at least one gripper for gripping the component, wherein the at least one gripper allows a holding of the component while the component is joined and/or is inspected by the joining and/or inspection elements.
4. The joining and/or inspection unit in accordance with claim 3, wherein the at least one gripper comprises at least two gripping actuators via which gripping elements for gripping the component can be actuated, with the at least two gripping actuators being arranged above the adjustment arrangement at the base such that spacing of the at least two gripping actuators from one another is adjustable.
5. A joining and/or inspection unit for joining and/or inspecting a component having a base, a gripper, and one or more joining and/or inspection elements, wherein the gripper comprises at least two gripping actuators via which gripping elements for gripping the component can be actuated, and with the one or more joining and/or inspection elements being arranged at the base such that they each establish a connection and/or carry out an inspection at a joining and/or inspection point of the component, wherein the at least two gripping actuators and the one or more joining and/or inspection elements are arranged at the base via an adjustment arrangement via which spacing of the at least two gripping actuators and/or of the joining and/or inspection elements is adjustable with respect to one another.
6. The joining and/or inspection unit in accordance with claim 5, wherein the gripper is a mechanical gripper and the at least two gripping actuators move the gripping elements along a first direction to grip the component, with spacing between the at least two gripping actuators being adjustable in the first direction by the adjustment arrangement to adapt the gripper to components of different sizes.
7. The joining and/or inspection unit in accordance with claim 5, wherein the at least two gripping actuators and the one or more joining and/or inspection elements are adjustable together via at least a first adjustment axle, and/or wherein only the one or more joining and/or inspection elements are adjustable via at least a second adjustment axle.
8. The joining and/or inspection unit in accordance with claim 1, wherein first and/or second adjustment axles is/are designed such that it/they carries/carry put a symmetrical adjustment of at least two joining and/or inspection elements and/or gripping actuators relative to the base.
9. The joining and/or inspection unit in accordance with claim 8, wherein the first adjustment axle comprises two first slides that are travelable along a linear guide relative to the base via a first drive element; wherein the second adjustment axle is arranged at each of the two first slides, with the second adjustment axle comprising one or two second slides that is/are each travelable along a linear guide arranged at the first slide via a second drive element; and wherein the second drive elements are drivable together via a third drive element.
10. The joining and/or inspection unit in accordance with claim 1, having one or more fixing units for fixing first and/or second adjustment axles, with there being one or more clamping and/or latching units.
11. The joining and/or inspection unit in accordance with claim 1, having one or more abutment elements that contact an upper side of the component to press it into position; and/or having a force measuring unit for measuring a contact force.
12. The joining and/or inspection unit in accordance with claim 1, wherein one or more of the joining and/or inspection elements are joining devices and/or welding devices and/or actuating actuators for actuating a fastening element of the component, and/or wherein one or more of the joining and/or inspection elements is/are elements of a test device for inspecting electrical properties of the component.
13. A handling station having a handling arrangement and a joining and/or inspection unit in accordance with claim 1, wherein the joining and/or inspection unit is arranged at the handling arrangement and is moved thereby.
14. The joining and/or inspection unit in accordance with claim 1 for installing and/or inspecting battery elements.
15. A method of operating a joining and/or inspection unit or a handling station in accordance with claim 1, wherein a contact force is monitored and is regulated to a desired value, and/or wherein a joining and/or inspection of the component takes place while it is held by the at least one gripper.
16. The joining and/or inspection unit in accordance with claim 1, wherein the adjustment arrangement comprises a first and second adjustment axle via which the spacing of the joining and/or inspection elements from one another is adjustable in a first and second direction.
17. The joining and/or inspection unit in accordance with claim 5, wherein the at least two gripping actuators are adjustable in at least a first direction via at least a first adjustment axle and/or with the one or more joining and/or inspection elements being adjustable in at least a second direction with respect to the gripping actuators or to one another via at least a second adjustment axle.
18. The joining and/or inspection unit in accordance with claim 7, wherein a first gripping actuator is arranged together with a first joining and/or inspection element or a group of first joining and/or inspection elements at an adjustment element of the first adjustment axle, with a second adjustment axle being arranged at the adjustable element via which the first joining and/or inspection elements are adjustable with respect to one another and/or to the at least two gripping actuators.
19. The handling station in accordance with claim 13, wherein control of the handling arrangement is monitoring a contact force and regulating it to a desired value and/or controlling the gripper and the joining and/or inspection unit such that a joining and/or inspection of the component takes place while it is held by the gripper.
20. The handling station in accordance with claim 13 for installing and/or inspecting battery elements.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0085] The present disclosure will now be described in more detail with reference to drawings and embodiments. There are shown:
[0086]
[0087]
[0088]
[0089]
[0090]
DETAILED DESCRIPTION
[0091]
[0092] As can be seen in
[0093] In the embodiment, they have a joining drive, in particular a screw driver 14, that drives a screwdriver shaft. A linear drive 15, in particular in the form of a pneumatic cylinder, is furthermore provided via which the screwdriver is travelable in the joining direction. An automatic fixing element supply 16 is furthermore provided, for the supply of screws here.
[0094] A screwdriver is, however, only an example for a joining and/or inspection element that can be used in accordance with the disclosure.
[0095] Other joining devices, for example riveting devices, could, for example, also be used instead of screwdrivers. The use of welding devices as joining and/or inspection elements is equally conceivable, in particular for spot welding. The joining and/or inspection elements can furthermore be actuation actuators for actuating a fastening element of the component. A fixing element already present on the component can, for example, be pressed in via such an actuation actuator.
[0096] An inspection element can furthermore also be provided instead of one or more of the joining devices.
[0097] The inspection element can, for example, be a contact element of an inspection device for measuring electrical properties of the component. The contact element is in particular configured to contact an electrical terminal of the component.
[0098] At least two contact elements can in particular be provided to contact electrical terminals of the component.
[0099] The inspection elements can, however, also be independent inspection devices.
[0100] The inspection elements can furthermore be inspection devices and/or components of inspection devices for inspecting other properties of the component, for example for inspecting optical or mechanical properties of the component.
[0101] The joining and/or inspection elements 2 and 2′ are arranged at the base 1 via an adjustment arrangement via which the spacing of the joining and/or inspection elements from one another is adjustable.
[0102] In the embodiment, a first adjustment axle 4 is provided here via which the spacing of the joining and/or inspection elements 2 from the joining and/or inspection elements 2′ can be varied. A second adjustment axle 5 is furthermore provided via which the spacing of the two joining and/or inspection elements 2 from one another and the spacing of the joining and/or inspection elements 2′ from one another can be varied.
[0103] The two adjustment axles 4 and 5 are arranged at the base 1 such that the spacing of the joining and/or inspection elements 2 and 2′ and thus the joining and/or inspection points at which they can join or inspect the component is adjustable in a plane.
[0104] in the embodiment, this plane and thus the directions of movement of the first and second adjustment axles 4 and 5 are perpendicular on the joining and/or inspection direction that is defined in the present case by the alignment of the screwdriver axis or the alignment of the linear axle 15 for moving the joining and/or inspection elements in the joining and/or inspection direction.
[0105] In the embodiment, the first and second adjustment axles are perpendicular to one another and thus serve the length and width adjustment of the joining and/or inspection elements.
[0106] In the embodiment, the base 1 is a weld construction at which the adjustment arrangement for the joining and/or inspection elements is arranged.
[0107] The base 1 comprises an installation section 25 by which is can be installed at an end member of a handling arrangement, for example at the end member of a robot arm.
[0108] In the embodiment, a force measuring unit 24 is furthermore provided that is provided between the base 1 and the installation section 25. In particular a contact force that is exerted on the component via the joining and/or inspection unit can be measured via this force measuring unit.
[0109] The joining and/or inspection unit can furthermore comprise abutment elements 20 by which it contacts an upper side of the component to press it into a predefined position. Alternatively or additionally, the abutment elements can also be used for a correct positioning of the joining and/or inspection unit at the component.
[0110] A contact sensor 40 is furthermore provided by which the contact between the joining and/or inspection unit and the component is monitored. In the embodiment, it is arranged at the abutment element 20.
[0111] The adjustment axles 4 and 5 are respectively designed as linear axles in the embodiment.
[0112] The first adjustment axle 4 comprises linear guides 6 at which the slides 7 are linearly displaceably arranged. Guides 10 of the second adjustment axles are in turn arranged at the slides 7 of the first linear axle. Slides 11 are linearly displaceably arranged at the guides 10 of the second adjustment axles.
[0113] In the embodiment, the joining and/or inspection elements 2, 2′ are each arranged at the slides 11 of the second adjustment axles.
[0114] In the embodiment, the first and second adjustment axles are each configured such that two slides displaceable at the guide are provided. In alternative embodiments, it would, however, likewise be conceivable to design the first and/or second adjustment axles with only one adjustable slide in each case.
[0115] In the embodiment, the first and second adjustment axles each allow a synchronous adjustment of the joining and/or inspection units arranged at it in the first or second adjustment directions. However, alternative configurations are also conceivable here in which no synchronous adjustment takes place.
[0116] In the embodiment, the adjustment of the slides 7 at the first adjustment axle takes place via a counter rotating trapezoidal spindle 8 that is supported at the base and engages at the sides 7. The spacing of the two slides 7 from one another can therefore be adjusted by rotating the trapezoidal spindle.
[0117] The trapezoidal spindle 8 has a drive shaft 9 at which, for example, a mechanically actuable adjustment element such as a handle, or a rotary wheel, or a drive, having a motor, for example, can engage.
[0118] The base 1 in the embodiment forms a frame that carries an installation plate at its lower side at which the linear guides 6 of the first adjustment axle are arranged. In the embodiment, the frame 41 comprises a center strut 42 that additionally supports the installation plate 43 at a center position. The respective linear guides 6 for the two slides 7 extend between the outer struts and the center strut 42 of the frame 41.
[0119] In the embodiment, the guides 6 are arranged on the side of the installation plate 43 remote from the component. The slides 7 furthermore extend on the side of the installation plate remote from the component in cutouts of the frame 41.
[0120] The slides 7 each carry installation plates that extend in the transverse direction and at which linear guides 10 of the second adjustment axle 5 are arranged. The slides 11 are linearly displaceably guided at the linear guides 10.
[0121] The two slides 7 are arranged symmetrically here in the embodiment.
[0122] The second adjustment axles in the embodiment comprise respective guide rails 10 for two slides 11 at which a respective joining and/or inspection element is arranged. In alternative configurations, however, only one respective slide 11 could be arranged at the two adjustment axles. For example, a diagonal arrangement of the slides 11 at the respective linear guides 10 of the two slides 7 would be conceivable.
[0123] In the embodiment, the guide rails 10 of the second adjustment axle each extend from the main plane of the fork-like frame 41 of the base 1. The slides 11 are arranged laterally next to the frame 41 such that the size of the joining and/or inspection elements is not restricted by the cutouts in the frame, but can be arranged next to them.
[0124] The slide 7, that carries the linear guides, and in particular the installation plate at which the linear guides 10 are arranged extends, however, through a cutout in the frame 41.
[0125] The linear guides 6 and 10 in the embodiment each have two guide elements that extend in parallel with one another to ensure a secure guidance. In the embodiment, the guide elements of the linear guide 6 extend next to one another in a horizontal plane; the guide elements of the linear guides 10 extend above one another in a vertical plane.
[0126] In the embodiment, the slides 11 are each adjustable symmetrically with one another.
[0127] The slides 11 of the second adjustment axles are furthermore adjustable at both slides 7 of the first adjustment axle via a common drive element, a torque shaft 13 in the embodiment.
[0128] The torque shaft 13 for this purpose drives respective drives 12 via which the adjustment of the slides 11 of the second adjustment axle takes place.
[0129] The drives 12 in the embodiment are belt drives. As can be more clearly recognized in
[0130] The embodiment of the belt drives and their coupling to the slides 11 is configured such that the slides 11 are moved symmetrically to one another in the second direction or the width direction.
[0131] The drive of the torque shaft 13 takes place via the drive shaft 28 led out of the frame 41 in the embodiment. An actuation element for the mechanical actuation or a drive can in turn engage at said drive shaft 28.
[0132] The above-described constructive embodiments of the first and second adjustment axles are only exemplary designs that are used as part of the embodiment to enable an adjustment that is as reliable as possible. The use of alternative linear axles and alternative drives to drive such linear axles is, however, likewise conceivable.
[0133] The first and/or second adjustment axles can each have a fixing unit via which they can be fixed in a position settable by the respective adjustment axle. It can here, for example, be a clamping and/or latching unit.
[0134] In the embodiment, a clamping unit 29 is provided for the first adjustment axle 4. It acts on the trapezoidal spindle 8 in the embodiment. A clamping unit 30 is provided for the second adjustment axle. In the embodiment, it fixes the slides 11 to the linear guide 10.
[0135]
[0136] In an alternative embodiment, the first and/or second adjustment axles are driven by motor, however. In this case, the fixing units may also be driven by motor.
[0137] The motor drive can take place such that an adjustment of the joining and/or inspection units can take place in a neutral clock cycle between the installation and/or inspection of two components. The joining and/or inspection unit can hereby be adapted to respective different components.
[0138] In the embodiment shown in
[0139] In alternative embodiments, however, only two joining and/or inspection elements could also be provided. Only one joining and/or inspection element could here in particular be displaceably arranged via a respective adjustment axle at each of the two slides 7 of the first adjustment axle.
[0140] In such an embodiment as is shown in
[0141] The constructive design does not otherwise have to be changed in such an embodiment with respect to the design described with regard to
[0142] The joining and/or inspection unit can either be used to join, for example to screw or to rivet, a component to an installation position.
[0143] The joining and/or inspection unit can, however, also alternatively be used to install installation elements that serve the further installation of a component. These installation elements can in particular provide joining points for the component via which the component is installed at a base construction. In this case, the joining and/or inspection unit does not serve the joining of the component itself, but rather a pre-installation step by which the installation elements are joined.
[0144] The joining and/or inspection unit can furthermore be used to inspect a component. Inspection elements of the joining and/or inspection unit are for this purpose can be arranged with inspection points at the component and are in particular brought into contact with them.
[0145] In the embodiment shown in
[0146] In alternative embodiments of the present disclosure such as will now be described with reference to the embodiments in
[0147] The gripper in particular serves to grip a component and to place it at the installation location. The gripper can here hold the component while it is joined and/or inspected by the joining and/or inspection unit.
[0148] In a first variant, not shown, the gripper itself is not adjustable and only the joining and/or inspection units are adjustable relative to the gripper. In this case, components could be handled that do not differ with regard to their gripping points, but do with regard to their joining and/or inspection points.
[0149] In the embodiment, however, the gripper itself is adjustable so that components can be handled that differ both with regard to their gripping points and with regard to their joining and/or inspection points.
[0150] The gripper has two gripping actuators 22 for this purpose via which a respective gripping element 23 can be actuated. The position of at least one of the gripping actuators 22 at the base is adjustable via an adjustment axle so that the spacing between the gripping actuators 22, and thus the gripping elements 23, is settable.
[0151] In the embodiment, the first adjustment axle 4 here serves both the adjustment of the joining and/or inspection elements and the adjustment of the gripping actuators 22. The first adjustment axle in particular represents a common length adjustment for the gripping actuators and the joining and/or inspection elements. The spacing of the gripping actuators 22 is here adjustable together with the joining and/or inspection elements 2, 2′ in the first direction.
[0152] In the embodiment, the gripping actuators 22 are mechanical gripping actuators via which the gripping elements 23 can be moved toward one another or away from one another for gripping a component. The gripping elements 23 are gripping fingers or gripping jaws here.
[0153] In the embodiment, the direction of movement of the gripping actuators 22 is aligned in parallel with the first direction of the first adjustment axle.
[0154] In the embodiments shown in
[0155]
[0156] The component 26 in the embodiment is gripped by the gripping elements 23 of the respective gripping actuators 22 on oppositely disposed sides. Joining is furthermore done at joining and/or inspection points 27 via the joining and/or inspection elements 2 and 2′ and/or joining is done, in particular installed at an installation base.
[0157] Abutment elements 20 and 21 are furthermore also provided here that lie on the upper side of the component 26 and can press it into a predefined position and/or by a defined force.
[0158] The joining and/or inspection unit can be used for gripping and joining and/or inspecting different components 26 by the first and second adjustment axles. Components can in particular be installed here that differ both with regard to their length and with regard to their width and thus the corresponding spacing of the gripping and/or joining and/or inspection points.
[0159] The constructive design of the embodiment shown in
[0160] In addition to the embodiment in accordance with
[0161] Further abutment elements 21 are furthermore additionally provided that are likewise arranged at the slides 7 of the first adjustment axle and are therefore likewise adjustable via the first adjustment axle.
[0162] In the embodiment in
[0163] In the embodiment shown in
[0164] In a possible embodiment of the present disclosure, the first embodiment shown in
[0165] The first embodiment of a joining and/or inspection unit shown in
[0166] Furthermore, in a configuration of the embodiment shown in
[0167] A respective one or two joining elements and one or two inspection elements can equally be provided in the embodiment shown in
[0168] Since the joining points and the poles of the module representing the inspection points, are disposed at different points, the spacing of the joining elements and/or inspection elements is switched over between inspection and joining.
[0169] The joining and/or inspection units in accordance with the disclosure can in particular be used as part of automated handling stations, in particular of automated inspection and/or installation stations.
[0170] The joining and/or inspection unit can in particular be arranged at a handling arrangement, in particular a robot arm, and is moved by it.
[0171] The control of the handling arrangement and of the joining and/or inspection unit is programmed in a possible application such that a component is gripped, is placed at the installation position, and is installed there via the joining elements while it is still held by the gripper of the joining and/or inspection unit.
[0172] In a possible application, the control is programmed such that a component is inspected. This can be done before the gripping, while the component is gripped, or after it has been arranged at a destination location.
[0173] The two applications can be used in combination.
[0174] In a possible application, the control is programmed such that installation elements are installed by the joining and/or inspection unit.
[0175] If a first joining and/or inspection unit serves the pre-installation and/or inspection, a second joining and/or inspection unit the final installation, they may be arranged at two separate handling arrangements, in particular robot arms.
[0176] The robot arms can in particular be industrial robots, in particular industrial robots having at least six rotary joints, in particular 6-arm robots.
[0177] If the joining and/or inspection unit has a force measuring unit 24 as in the embodiments, the pressing force at which the component is pressed into the installation position can hereby be regulated by the control. The force that is applied to the component via the abutment elements 20 and 21 can thus in particular be regulated.
[0178] The robot control therefore in particular carries out a force and position regulation to install the component.
[0179] The present disclosure can in particular be used as part of the installation of automobile parts and/or battery modules.
[0180] The joining and/or inspection unit in particular serves the inspection and/or installation of battery modules in a battery pack, i.e. in an assembly having a plurality of battery modules, in particular in a battery pack of an electrically or hybrid-electrically operated vehicle.
[0181] In a possible embodiment, the battery module is fastened to a housing of the battery pack, for example screwed thereto, by the joining.
[0182] In a possible embodiment, an electrical property of the battery module is inspected, for example the voltage of the battery module, by the inspection.
[0183] In a possible application, defective battery modules are hereby recognized and sorted out.
[0184] The determination of the voltage can take place via two to four inspection elements that are brought into contact with a terminal of the battery module.
[0185] The joining and/or inspection unit can furthermore respectively comprise two joining elements and two inspection elements. A gripper can additionally be provided in a possible embodiment. The joining and/or inspection unit can in particular be designed such as is shown in
[0186] The control can be designed such that the voltage at the two poles of the battery module is determined in a first step, in particular before the gripping; the module is subsequently gripped and then joined. Since the joining points and the poles of the module are generally disposed at different positions, the spacing of the joining and/or inspection elements therebetween is switched over.
[0187] In a possible application case, the battery modules are pressed via the grippers of the joining and/or inspection unit into a viscous thermoconductive paste and is installed by the joining unit in this position. The force by which the battery module is pressed into the thermoconductive paste is monitored and regulated via the force measuring unit that is arranged between the handling arrangement and the joining and/or inspection unit. The position of the joining and/or inspection unit and thus of the battery module is additionally monitored and ensured by the handling arrangement. There is therefore a force deflection position regulation.
[0188] The battery module is subsequently fixed, for example screwed or riveted, at its desired position by the joining elements. The gripper of the joining and/or inspection unit has not yet gripped the battery module at this time and so ensures the desired position. Once the joining process has been completed, the gripper opens and the handling arrangement removes the gripper from the joined module.
[0189] Instead of robot arms, other handling arrangements are also conceivable to move the joining and/or inspection unit, for example linear and/or area portals.
[0190] It is possible by the adjustment arrangement of the joining and/or inspection unit to install different battery modules with the same joining and/or inspection unit. The battery modules can in particular differ both with regard to the spacing of the gripping points and with regard to the joining points and/or inspection points, in particular of the poles.
[0191] If the adjustment is made manually, the joining and/or inspection unit can be configured for the different battery modules in that the adjustment axles are manually actuated.
[0192] The adjustment of the adjustment axles may take place via drives, however, and is controllable via the control of the handling station. The adjustment may take place in a neutral clock cycle, i.e. between the gripping of two sequential battery modules.
[0193] Different application cases are also present in addition to the described application case of an installation of battery modules to form a battery pack, i.e. a battery unit having a plurality of battery modules.
[0194] For example, the joining and/or inspection unit can be used in the same way as described above for the installation of battery modules, for the installation of battery packs, i.e. units having a plurality of battery modules, at a vehicle chassis, in particular at a vehicle underside.
[0195] The joining and/or inspection unit can furthermore be used for installing housing elements of a battery pack, in particular of a cover of a battery pack.
[0196] The joining and/or inspection unit can also be used in different applications for inspecting and/or installing any other components.
[0197] The present disclosure here allows an exact, process-safe inspection and/or installation of components, in particular of battery modules, at a small clock cycle.
[0198] Individual process steps that are automatically carried out by the control in particular include the exact positioning, optionally with a force monitoring, the fixing of the component, and the release of the grip once the component has been fixed.
[0199] As part of the use of the present disclosure, a production of a batch size 1 is possible, i.e. an automatic equipping of the joining and/or inspection unit in cycle, e.g. during the component change, with the joining and/or inspection unit being respectively adapted to the next component to be installed by the adjustment arrangement.
[0200] A control of the handling station in particular recognizes the respective component to be installed next and controls drives of the adjustment arrangement such that the joining and/or inspection elements and/or gripping actuators are adapted to the joining points and/or gripping points and/or inspection points of the component.
[0201] In the embodiment, the joining and/or inspection elements are only adjustable together with the gripping actuators via the first adjustment axle. This requires that the position of the gripping points at the joining points and/or inspection points for the different components is respectively identical in the first direction, at least when the inspection and/or the joining takes place when the component is gripped.
[0202] Alternatively, the joining and/or inspection elements could, however, also be movable relative to the respective gripping actuators in the first direction via a further adjustment axle. Such a further adjustment axle may be arranged at the slides 7 of the first adjustment axle so that the rough positioning takes place in the first direction via the first adjustment axle in common for the joining and/or inspection elements and the gripping actuators and the fine positioning takes place via the further adjustment axle. Either the joining and/or inspection elements or the gripping actuators are then arranged at this further adjustment axle.
[0203]
[0204] The following claims particularly point out certain combinations and sub-combinations regarded as novel and non-obvious. These claims may refer to “an” element or “a first” element or the equivalent thereof. Such claims should be understood to include incorporation of one or more such elements, neither requiring nor excluding two or more such elements. Other combinations and sub-combinations of the disclosed features, functions, elements, and/or properties may be claimed through amendment of the present claims or through presentation of new claims in this or a related application. Such claims, whether broader, narrower, equal, or different in scope to the original claims, also are regarded as included within the subject matter of the present disclosure.