EP4626653A1 - Eingabevorrichtung zum ansteuern eines roboters - Google Patents
Eingabevorrichtung zum ansteuern eines robotersInfo
- Publication number
- EP4626653A1 EP4626653A1 EP23793797.4A EP23793797A EP4626653A1 EP 4626653 A1 EP4626653 A1 EP 4626653A1 EP 23793797 A EP23793797 A EP 23793797A EP 4626653 A1 EP4626653 A1 EP 4626653A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- actuating button
- input device
- height position
- rotation
- angle
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B25—HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
- B25J—MANIPULATORS; CHAMBERS PROVIDED WITH MANIPULATION DEVICES
- B25J13/00—Controls for manipulators
- B25J13/02—Hand grip control means
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B25—HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
- B25J—MANIPULATORS; CHAMBERS PROVIDED WITH MANIPULATION DEVICES
- B25J13/00—Controls for manipulators
- B25J13/06—Control stands, e.g. consoles, switchboards
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05G—CONTROL DEVICES OR SYSTEMS INSOFAR AS CHARACTERISED BY MECHANICAL FEATURES ONLY
- G05G5/00—Means for preventing, limiting or returning the movements of parts of a control mechanism, e.g. locking controlling member
- G05G5/05—Means for returning or tending to return controlling members to an inoperative or neutral position, e.g. by providing return springs or resilient end-stops
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05G—CONTROL DEVICES OR SYSTEMS INSOFAR AS CHARACTERISED BY MECHANICAL FEATURES ONLY
- G05G5/00—Means for preventing, limiting or returning the movements of parts of a control mechanism, e.g. locking controlling member
- G05G5/06—Means for preventing, limiting or returning the movements of parts of a control mechanism, e.g. locking controlling member for holding members in one or a limited number of definite positions only
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05G—CONTROL DEVICES OR SYSTEMS INSOFAR AS CHARACTERISED BY MECHANICAL FEATURES ONLY
- G05G1/00—Controlling members, e.g. knobs or handles; Assemblies or arrangements thereof; Indicating position of controlling members
- G05G1/02—Controlling members for hand actuation by linear movement, e.g. push buttons
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05G—CONTROL DEVICES OR SYSTEMS INSOFAR AS CHARACTERISED BY MECHANICAL FEATURES ONLY
- G05G1/00—Controlling members, e.g. knobs or handles; Assemblies or arrangements thereof; Indicating position of controlling members
- G05G1/08—Controlling members for hand actuation by rotary movement, e.g. hand wheels
Definitions
- the object of the invention is to create an input device for controlling a robot which offers a high level of functionality despite its ergonomically simple design.
- a position sensor which is designed to detect the position of the actuating button in the first and/or in the second height position, and comprising
- a locking device which is designed to allow the actuating button to selectively lock into one of several discrete locking angle positions depending on its angle of rotation position when the actuating button is in its first height position, and to mount the actuating button in a spring-loaded manner to return it to a basic angle position, so that the actuating button can be manually deflected in a first direction of rotation by a first angular amount and/or in an opposite second direction of rotation by a second angular amount from the basic angle position against its spring preload and after manually releasing the actuating button, the actuating button automatically returns to its basic angle position due to its restoring spring preload when the actuating button is in its second height position.
- the base body can be part of a housing in which the input device is integrated.
- the base body can be a component such as a housing of a handheld control device.
- the handheld control device can form a human-robot interface such that a person can make manual inputs on the handheld control device in order to be able to control functions of the robot, in particular by the person using the handheld control device to control a control device of the robot.
- the handheld control device can have, for example, additional input means such as a keyboard, an emergency stop button, an approval button or other buttons or switches.
- the handheld control device can also have display means such as lighting or displays.
- the input device according to the invention can be designed as a self-sufficient handheld device that has no further input means and control devices in addition to the control functions that can be controlled manually using the input device according to the invention.
- the base body can be a carrier plate or a circuit board on which the actuation button is mounted.
- the operating button forms a handle that can be operated using a person's hand.
- the operating button can, for example, have the shape of a basic geometric shape, such as a sphere, cylinder or cone. Alternatively, the operating button can have a more complex shape.
- the operating button can be adapted to the fingers or hand of a person, particularly from an ergonomic point of view.
- the actuating button is mounted on the base body or on a component connected to the base body. The actuating button is mounted in such a way that the actuating button can be rotated about an axis of rotation and can also be adjusted linearly along this axis of rotation, specifically between a first height position and a second height position of the actuating button.
- the actuating button is therefore not only rotatable but also linearly adjustable. This means that the actuating button can be rotated about its axis of rotation like a rotary control and can also be pushed in or pulled out in the direction of the axis of rotation.
- the input device has an angle of rotation sensor.
- the angle of rotation sensor can be designed as an absolute value encoder.
- the angle of rotation sensor can be designed as an incremental encoder.
- the angle of rotation sensor can in particular be designed to generate an electrical signal which contains information about the current angle of rotation of the actuating button.
- the input device has a position sensor.
- the position sensor can be formed by a switch.
- the switch can have a mechanical switching element which, when activated, closes or alternatively breaks an electrical circuit in order to generate a switching signal.
- the switch can be assigned either to the first height position of the actuating button or to the second height position of the actuating button.
- the Switch can be designed to detect at least two different states. Accordingly, the switch can be assigned to both the first height of the actuating button and the second height of the actuating button.
- the switch can, for example, have two separate electrical switching contact pairs, one switching contact pair being assigned to the first height of the actuating button and the other switching contact pair being assigned to the second height of the actuating button.
- a pushbutton switch can, for example, be assigned to an axial front side of the rotation axis of the actuating button, so that in one height of the actuating button the pushbutton switch is actuated by the rotation axis of the actuating button, i.e. is activated, and in the other height of the actuating button the pushbutton switch is not actuated by the rotation axis of the actuating button, so that it is then not activated.
- the locking device combines two different locking characteristics for the actuating button.
- the actuating button In the one possible axial position of the actuating button, in which the actuating button is in its first height position, the actuating button has a first locking characteristic, in which the actuating button can be rotated over a relatively large angle of rotation, for example at least 90 degrees, 180 degrees, 270 degrees or 360 degrees, and during one rotation skips several consecutive locking angle positions at equal intervals or, when a desired angle of rotation position of the actuating button is reached, locks into the next fixed locking angle position.
- the actuating button In the other possible axial position of the actuating button, in which the actuating button is in its second height position, the actuating button has a different, second locking characteristic, in which the actuating button can only be turned forwards and/or backwards by a relatively small angle of rotation, for example only 10 degrees, 20 degrees, 30 degrees or 45 degrees, and in such a turned state is under a spring preload, so that when the actuating button is manually released, it automatically swings back into its basic position.
- a relatively small angle of rotation for example only 10 degrees, 20 degrees, 30 degrees or 45 degrees
- the actuating button behaves when it is in its first height position in such a way that the actuating button can selectively lock into one of several discrete locking angle positions depending on its rotational angle position.
- the actuating button behaves when it is in its second height position in such a way that the actuating button is spring-loaded into a If the actuating button, when it is in its second height position, is manually deflected in a first direction of rotation by a first angular amount and/or in an opposite second direction of rotation by a second angular amount from the basic angle position against its spring preload, it will automatically spring back to its basic angle position after the actuating button is manually released due to its resetting spring preload.
- the locking device can have a driver disk which carries a plurality of ribs evenly distributed over a circumference, which extend in the axial direction from a base plate of the driver disk in the direction of a toothed ring of the locking device which is separate from the driver disk and which has a number of tooth heads and/or tooth roots evenly distributed over a circumference corresponding to the number of ribs of the driver disk.
- the driving plate can, for example, have a circular disk-shaped base plate, with a plurality of ribs evenly distributed around a circumference being attached like a blade ring to a circular disk surface of the driving plate facing the gear ring, or being formed integrally with the base plate.
- the actuating button When the actuating button is in the first height position, the ribs of the driving plate are not engaged with the tooth tips and/or tooth bases of the gear ring.
- the actuating button is in the second height position, the ribs of the driving plate are engaged with the tooth tips and/or tooth bases of the gear ring, i.e. the ribs penetrate into the tooth bases between any two adjacent tooth tips.
- the ribs of the driving plate in interaction with the tooth tips and/or tooth bases of the gear ring thus act like a claw clutch.
- the gear ring can be mounted around the axis of rotation of the actuating button in a torsionally elastic manner with respect to the base body or the driving plate.
- the ribs of the drive plate can rotate over the tooth heads without being influenced by the gear ring, without the ribs coming into contact with the tooth heads. In this arrangement, the operating button can therefore rotate freely, which is not influenced by the gear ring. If the operating button is in its second height position, the ribs are in engagement with the tooth heads, so that when the operating button or the Driving plate means that the ring gear is also rotated.
- the ring gear is not mounted so that it can rotate freely in relation to the base body, but is elastically attached to the base body so that the ring gear can only be rotated forwards and/or backwards by a relatively small angle of rotation, for example just 10 degrees, 20 degrees, 30 degrees or 45 degrees, and in such a rotated state it is under spring tension so that when the actuating button is manually released it automatically swings back to its basic position.
- the actuating button or driving plate can only be rotated forwards and/or backwards by a relatively small angle of rotation, for example just 10 degrees, 20 degrees, 30 degrees or 45 degrees, so that when the actuating button or the drive plate is spring-loaded so that when the operating button is released manually, it automatically swings back to its basic position.
- the gear ring can be torsionally connected to a hub by means of elastic and/or spring-loaded spokes in a special design.
- the hub and the spokes are therefore part of the gear ring.
- the hub, the multiple spokes and the actual gear ring, i.e. the tooth tips and the tooth bases, can be designed, for example, as a one-piece plastic component, in particular a plastic injection-molded part.
- the multiple spokes connect the gear ring between the tooth tips and tooth bases in an elastic manner.
- the spokes can each have a shape that deviates from the purely straight-radial extension.
- the multiple spokes can, for example, be curved once or with multiple curves in the direction of rotation or against the direction of rotation, for example bent in an S-shape.
- Such a curved course of the spokes makes the spokes elastically deformable. Due to the elastic deformability of the spokes, the outer ring of the gear ring or the tooth tips and tooth bases can be rotated relative to the hub by a certain angle of rotation when a torque is applied. If the torque is removed, the outer ring returns to its original position.
- the main body of the input device can have on an inner wall a plurality of locking projections which are evenly distributed over an inner circumference and extend radially inwards in order to interact with the ribs of the driver plate in a locking manner in the position of the actuating button in its first height position, so that the actuating button selectively locks into one of a plurality of discrete locking angle positions depending on its rotational angle position.
- the actuating button can have a rotation axis which is mounted on the base body so as to be height-adjustable in the axial direction, so that the actuating button can be adjusted linearly between its first height position and its second height position, wherein an axial adjusting device is provided which fixes the actuating button either in the first height position or in the second height position in a manually releasable locking manner or in a spring-loaded manner.
- the angle of rotation sensor can be designed as an absolute value encoder. Alternatively, the angle of rotation sensor can be designed as an incremental encoder. The angle of rotation sensor can in particular be designed to generate an electrical signal which contains information about the current angle of rotation position of the actuating button.
- the position sensor may comprise an electrical switch that can be activated by the actuating button and is configured to detect the position of the actuating button in the first altitude and/or in the second altitude.
- the position sensor can be formed in a simple embodiment by a switch.
- the switch can have a mechanical switching element which closes an electrical circuit when activated or alternatively breaks it in order to generate a switching signal.
- the switch can be assigned either to the first height position of the actuating button or to the second height position of the actuating button.
- the switch can be designed to detect at least two different states. Accordingly, the switch can be assigned to both the first height position of the actuating button and the second height position of the actuating button.
- the switch can, for example, have two separate electrical switching contact pairs, one switching contact pair being assigned to the first height position of the actuating button and the other switching contact pair being assigned to the second height position of the actuating button.
- a pushbutton switch can, for example, be assigned to an axial front side of the rotation axis of the actuating button, so that in one height position of the actuating button the pushbutton switch is actuated by the rotation axis of the actuating button, i.e. is activated, and in the other height position of the actuating button the pushbutton switch is not actuated by the rotation axis of the actuating button, so that it is then not activated.
- the input device can be connected to a robot control device which is designed and arranged to, upon manual actuation of the actuating button of the input device when the actuating button is in its first height position, generate a signal associated with the set angle of rotation position depending on the angle of rotation position of the actuating button. to activate an electrical drive of a joint of a robot from several electrical drives of several joints of the robot for the driven adjustment of the associated joint.
- the robot can have several links and joints. Two adjacent links can be connected by means of one of the joints, so that when the joint position of the respective joint changes, the two adjacent links can be adjusted relative to one another. Each joint can be adjusted automatically by an electric drive or in manual operation.
- a robot control device is provided which can control all of the electric drives of all of the robot's joints. If the input device according to the invention is connected to the robot control device, the input device can be used to select a single electric drive in order to be able to adjust a specific joint in a controlled manner, and the selected electric drive can be driven either forwards or backwards by pressing the actuating button on the input device in order to adjust the relevant joint in the desired manner.
- the input device can accordingly be connected to a robot control device which is designed and configured to drive an activated electric drive of a joint of a robot when the actuating button of the input device is manually actuated when the actuating button is in its second height position in order to adjust the relevant joint of the robot when the actuating button is manually rotated in its second height position.
- Fig. 1 is a perspective view of an exemplary input device
- Fig. 2 is an exploded view of an exemplary locking device
- Fig . 3 is a perspective view of a
- Fig. 4 is a perspective view of a
- Fig. 5 is a side view of the locking pair of the drive plate with ribs and the gear ring in a separation position according to the first height position of the
- Fig. 6 is a side view of the locking pair of the drive plate with ribs and the gear ring in a coupled position according to the second height position of the actuating button
- Fig . 7 and 8 a perspective view of a
- Fig. 11 is a schematic sectional view of a first embodiment of an input device in the first height position of the actuating button
- FIG. 13 is a schematic sectional view of a second embodiment of an input device in the first height position of the actuating button
- Fig. 14 is a schematic sectional view of the second embodiment of the input device in the second height position of the actuating button
- Fig. 15 is a schematic sectional view of a third embodiment of an input device in the first height position of the actuating button
- Fig. 17 is a schematic sectional view of a fourth embodiment of an input device in the first height position of the actuating button
- Fig. 18 is a schematic sectional view of the fourth embodiment of the input device in the second height position of the actuating button
- Fig. 19 is a schematic sectional view of a fifth embodiment of a Input device in the first height position of the operating button
- Fig. 20 is a schematic sectional view of the fifth embodiment of the input device in the second height position of the actuating button
- Fig. 21 is a schematic sectional view of a sixth embodiment of an input device in the first height position of the actuating button
- Fig. 22 is a schematic sectional view of the sixth embodiment of the
- Fig. 23 is a schematic sectional view of a seventh embodiment of an input device in the first height position of the actuating button.
- Fig. 24 is a schematic sectional view of the seventh embodiment of the input device in the second height position of the actuating button.
- Fig. 1 an example of a minimalist robot control handheld device 1 is shown.
- the robot control handheld device 1 has an emergency stop button 2 and an enabling switch 3.
- Hand-held operating device 1 has an input device 4 according to the invention.
- the input device 4 serves to control a robot 15 ( Fig. 7 to Fig. 10 ) and has a base body 6 and an actuating button 7 which is mounted on the base body 6 so as to be rotatable about an axis of rotation D and is mounted so as to be linearly adjustable along the axis of rotation D between a first height position H1 ( Fig. 5 ) and a second height position H2 ( Fig. 6 ).
- the input device 4 combines the two input types, rotary mode - in the first height position H1 - and inching mode - in the second height position H2 - in one input element.
- a deliberate switchover by axial adjustment of the actuating button 7 enables a change between the two input types.
- the input device 4 has a rotatable actuating button 7, which is placed on the base body 6 as a rotary support.
- the input device 4 also has a plurality of circularly arranged ribs 11 on a drive plate 12.
- a central hub 13 of a gear ring 14 guides the rotary support, or the actuating button 7, which can be rotated about the axis of rotation D.
- the hub 13 has an annular groove 16 on its inner peripheral wall, which interacts in a form-fitting manner with an annular bead 17 on an outer casing wall of an axle stub 18 of the actuating button 7.
- the locking device 10 has a driver disk 12 which carries a plurality of ribs 11 arranged evenly distributed over a circumference, which extend in the axial direction away from a base plate of the driver disk 12 in the direction of a toothed ring 14 of the locking device 10 which is separate from the driver disk 12 and which has a number of tooth tips 19 and/or tooth bases 20 arranged evenly distributed over a circumference corresponding to the number of ribs 11 of the driver disk 12.
- the gear ring 14 is mounted in a torsionally elastic manner about the rotation axis D of the actuating button 7 with respect to the base body 6 or the drive plate 12.
- the gear ring 14 is torsionally elastically connected by means of the elastic and/or springy spokes 21 to a hub 13 which is fastened to the base body 6 or mounted on the drive plate 12.
- the gear ring 14 is mounted within the outer casing of the base body 6, which comprises one or more spring-loaded locking projections 22 on an inner side.
- the locking projections 22 are located exactly at the level of the tooth tips 19, as illustrated in particular in Fig. 4.
- the ribs 11 of the driving disk 12 run axially over the tooth tips 19, do not touch them, as shown in Fig. 5, and only touch the locking projections 22, in particular run over them in a sliding manner, in inching operation, i.e. when the actuating button 7 is in its second height position H2, as is illustrated for example in Fig. 6, the ribs 11 of the driving disk 12 are stuck in the tooth bases 20 of the gear rim 14 due to an axial displacement of the actuating button 7, in particular of the driving disk 12, as is shown in particular in Fig. 6, and touch the opposite tooth flanks of two adjacent tooth tips 19 on both sides.
- the base body 6 of the input device 4 can have on an inner wall a plurality of locking projections 22 which are evenly distributed over an inner circumference and which extend radially inwards in order to interact in a locking manner with the ribs 11 of the drive plate 12 in the position of the actuating button 7 in its first height position Hl, so that the actuating button 7 selectively locks into one of several discrete locking angle positions depending on its rotational angle position.
- the number of locking projections 22 evenly distributed over an inner circumference on the base body 6 can be matched to the number of tooth heads 19 and/or tooth bases 20 of the gear ring 14 evenly distributed over a circumference in such a way that in any rotational locking position of the actuating button 7 the ribs 11 of the driving disk 12 are aligned with the tooth bases 20, so that when the actuating button 7 is manually repositioned from its first height position H1 to its second height position H2 the ribs 11 of the driving disk 12 can penetrate into the tooth bases 20 of the gear ring 14.
- the actuating button 7 has a rotation axis D which is mounted on the base body 6 so that it can be adjusted in height in the axial direction, so that the actuating button 7 can be adjusted linearly between its first height position H1 and its second height position H2, wherein an axial adjustment device is provided which fixes the actuating button 7 either in the first height position H1 or in the second height position H2 in a manually releasable manner or in a spring-loaded manner.
- This new type of input device 4 offers the user a very centered input, which enables a very efficient workflow despite the minimal number of keys. This is illustrated below using the example of manual axis movement in robots 15.
- the user can simply scroll through the axes with the input device 4 by selecting the axes one after the other with each click of the actuating button 7 and the respective associated light ring lighting up.
- the input device 4 can be connected to a robot control device 24, which is designed and configured to manually actuate the actuating button 7 of the input device 4 when the actuating button 7 is in its first height position H1, depending on the angle of rotation position of the actuating button 7, select an electrical drive of a joint of the robot 15 from a plurality of electrical drives of a plurality of joints of the robot 15, which is associated with the set angle of rotation position.
- Robot 15 for the driven adjustment of the associated joint.
- the rotation of the actuating button 7 is limited to a defined angle by the driver tooth engagement of the locking device 10.
- the rotary movement of the selected axis, in particular its speed, can be proportional to the deflection of the actuating button 7 from the locked zero position.
- the input device 4 can be connected to the robot control device 24, which is designed and configured to drive an activated electric drive of a joint of the robot 15 when the actuating button 7 of the input device 4 is manually actuated when the actuating button 7 is in its second height position H2 in order to adjust the relevant joint of the robot 15 when the actuating button 7 is manually rotated in its second height position H2.
- Figures 11, 13, 15, 17, 19, 21 and 23 each show the rotary operation according to the first altitude H1
- figures 12, 14, 15, 18, 20, 22 and 24 each show the jog operation according to the second altitude H2.
- the drive disk 12 has a central cylindrical axle stub 18, which serves as the axis of rotation D of the actuating button 7.
- the drive disk 12 is held in a form-fitting manner in one of two possible annular grooves 16 of the hub 13 of the gear ring 14 via an annular bead 17 of the drive disk 12 and can be moved axially between the two positions (first height position H1 according to Fig. 11 and second height position H2 according to Fig. 12).
- the ribs 11 are firmly connected to the drive disk 12 and do not touch the gear ring 14 during rotation according to Fig. 11.
- the base body 6 is only in contact with the drive disk 12 via the spring-loaded locking projections 22, which are haptically perceptible when passed over.
- This haptic “click function” of the locking projections 22 in interaction with the ribs 11 can alternatively be realized via magnet pairings instead of mechanical locking marks.
- the measuring disk 25 or the ring runs in an optical sensor 26 arranged on the base body 6, by means of which the measuring embodiment of the measuring disk 25 can be detected and evaluated in terms of position.
- the arrangement of the measuring disk 25 and the optical sensor 26 also allows an axial displacement of the actuating button 7 or the driving disk 12.
- a switch 27 registers the change of the actuating button 7 or the drive disk 12 into the tipping mode according to Fig. 12.
- the position sensor 9 can have an electrical switch 27 that can be activated by the actuating button 7 and is configured to detect the position of the actuating button 7 in the first altitude H1 and/or in the second altitude H2.
- either the same or a further sensor element 28 can evaluate the measuring disk 25 and, via a coding thereof, detect both a rotation and a displacement of the actuating button 7 or the drive disk 12.
- the optical sensor 26 and/or the in contrast to the first and second embodiments, the sensor element 28 can also look directly at the inner surface 29 of the actuating button 7 or the driving disk 12 and can detect a rotation and/or displacement of the actuating button 7 or the driving disk 12, for example via reflection or via optical detection of a pattern or a regular or irregular surface structure.
- an optical sensor 26 can measure a rotation of the actuating button 7 or the driving disk 12 via the inner surface 29 of the actuating button 7 or the driving disk 12.
- a further sensor element 28 measures the axial position of the driving disk 12, for example as a proximity sensor or as a toggle switch. As a result, the separate switch 27 can be omitted.
- the structure is reversed in that the ribs 11 are no longer rigidly connected to the drive plate 12, but are spring-loaded by means of the springs 30.
- the gear ring 14 is firmly integrated into the base body 6.
- the measuring system is constructed analogously to the fourth embodiment.
- the hub 13 unlike the first to fifth embodiments, does not have two annular grooves 16, but only one annular groove 16 and a large recess 31 in which the annular bead 17 can move freely axially in the lower region in the jog mode according to Fig. 22.
- a central spring 32 repeatedly guides the axle stub 18 of the drive disk 12 back into the upper position according to Fig. 21, in which the annular bead 17 engages in the individual annular groove 16 and the central spring 32 is no longer in contact with the axle stub 18 of the drive disk 12.
- the operating button 7 always returns to the selection mode (rotary operation) and does not have to be actively pulled back.
- the seventh embodiment of the input device 4 according to Fig. 23 and Fig. 24 has a fundamentally different structure.
- the units of the drive disk 12 and an intermediate frame 38 with locking marks 33 and an angle measuring system 34 form a classic jog dial, which can be moved axially to a lower frame, the base body 6.
- the two parts are secured against twisting by a guide 35.
- the driving ring 37 carried on the driving disk 12 is pushed into the lower position into the gear ring 14 which is elastically suspended in the base body 6 and limits the rotation.
- the input device 4 disclosed here can significantly reduce the number of hardware input elements, in particular to a single central operating element, and nevertheless or precisely because of this enables a very efficient operation of an operating interface or a robot 15, in particular with regard to manual movement of the robot 15, in particular a Adjustment of the joints of the robot 15 in the axis space is possible.
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- Engineering & Computer Science (AREA)
- Robotics (AREA)
- Mechanical Engineering (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Automation & Control Theory (AREA)
- Mechanical Control Devices (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE102022131887.7A DE102022131887B3 (de) | 2022-12-01 | 2022-12-01 | Eingabevorrichtung zum Ansteuern eines Roboters |
| PCT/EP2023/079213 WO2024115007A1 (de) | 2022-12-01 | 2023-10-20 | Eingabevorrichtung zum ansteuern eines roboters |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4626653A1 true EP4626653A1 (de) | 2025-10-08 |
Family
ID=88511194
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23793797.4A Pending EP4626653A1 (de) | 2022-12-01 | 2023-10-20 | Eingabevorrichtung zum ansteuern eines roboters |
Country Status (3)
| Country | Link |
|---|---|
| EP (1) | EP4626653A1 (de) |
| DE (1) | DE102022131887B3 (de) |
| WO (1) | WO2024115007A1 (de) |
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| JPH0866882A (ja) | 1994-08-29 | 1996-03-12 | Chubu Electric Power Co Inc | 多軸ジョイスティック |
| CN1692401B (zh) | 2002-04-12 | 2011-11-16 | 雷斯里·R·奥柏梅尔 | 多轴输入转换器装置和摇杆 |
| JP2007094930A (ja) | 2005-09-30 | 2007-04-12 | Daihen Corp | 操作装置 |
| DE102007046546A1 (de) * | 2007-09-27 | 2009-04-09 | Preh Gmbh | Verbesserter Mehrfachschalter und/oder -drehsteller mit mehreren koaxial angeordneten Bedienknöpfen |
| DE202015008715U1 (de) | 2015-12-18 | 2017-03-21 | Kuka Roboter Gmbh | Bediengerät zum Steuern oder Programmieren eines Manipulators |
| DE102016202881B4 (de) * | 2016-02-24 | 2018-01-18 | Kuka Roboter Gmbh | Bediengerät für Manipulator |
| DE102016225687B4 (de) | 2016-12-20 | 2019-01-10 | Kuka Roboter Gmbh | Robotersteuerpult mit einem zusätzlichen Halter für einen Tablet-Computer |
| JP6784660B2 (ja) | 2017-11-28 | 2020-11-11 | ファナック株式会社 | 入力装置およびロボットの制御システム |
| WO2020032863A1 (en) * | 2018-08-06 | 2020-02-13 | Inter Ikea Systems B.V. | A control device for a home ambience system |
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2022
- 2022-12-01 DE DE102022131887.7A patent/DE102022131887B3/de active Active
-
2023
- 2023-10-20 WO PCT/EP2023/079213 patent/WO2024115007A1/de not_active Ceased
- 2023-10-20 EP EP23793797.4A patent/EP4626653A1/de active Pending
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| Publication number | Publication date |
|---|---|
| WO2024115007A1 (de) | 2024-06-06 |
| DE102022131887B3 (de) | 2024-01-11 |
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