EDDY CURRENT SEPARATION OF BLANKS FOR THE AUTOMATED DESTACKING OF ALUMINUM SHEET
20200030869 ยท 2020-01-30
Assignee
Inventors
- Randal Dively (Monroe, MI, US)
- Ralph Conrad (South Lyon, MI, US)
- S. George LUCKEY, JR. (Dearborn, MI, US)
- Andrey Ilinich (Novi, MI, US)
- Franco Leonardi (Dearborn Heights, MI)
- Seth Avery (Livonia, MI, US)
- Patrick McCleer (Jackson, MI, US)
Cpc classification
International classification
Abstract
A method of separating blanks from a stack includes positioning a magnetic field generator in a fixed location proximate a peripheral edge of an upper portion of the stack, activating the magnetic field generator such that eddy currents are generated and result in a force vector in a direction away from a top-most blank of the stack, and pushing a blank, or multiple blanks, immediately below the top-most blank away from the top-most blank by the eddy currents.
Claims
1. A method of separating a blank from a stack of blanks comprising: positioning a magnetic field generator in a fixed location proximate a peripheral edge of an upper portion of the stack; activating the magnetic field generator such that eddy currents are generated and result in a force vector in a direction away from a top-most blank; and pushing, by the magnetic field generator, at least one blank immediately below the top-most blank away from the top-most blank after the top-most blank is lifted by an external device, wherein the magnetic field generator is disposed relative to the stack in a way such that the force vector is applied on the at least one blank to separate the at least one blank from the top-most blank before the top-most blank and the at least one blank are completely separated from remaining blanks of the stack.
2. The method according to claim 1, wherein the blanks are an aluminum alloy material.
3. The method according to claim 1, wherein the magnetic field generator is an electromagnet.
4. The method according to claim 1, wherein the magnetic field generator is a rotating assembly of permanent magnets having alternating north and south poles.
5. The method according to claim 1 further comprising injecting air into a side of the stack as the individual blanks are separated by the eddy currents.
6. The method according to claim 1, wherein a width of the blanks is between about 25 mm to about 3000 mm, a length of the blanks is between about 25 mm to about 3000 mm, a thickness of each blank is between about 0.5 mm to about 6.0 mm, and a height of the stack of blanks is between about 1 mm to about 2000 mm.
7. The method according to claim 1 further comprising a step of moving the top-most blank to a subsequent manufacturing operation.
8. The method according to claim 1, wherein only one sheet at a time is displaced by the magnetic field generator.
9. The method according to claim 1, wherein the gravitational direction is between 90 degrees and 75 degrees as measured from a normal face of a blank.
10. An apparatus for separating blanks from a stack comprising: a fixed magnetic field generator; a jig configured to hold and translate the stack of blanks past the fixed magnetic generator such that a peripheral edge of an upper portion of the stack is continually positioned proximate the fixed magnetic field generator; and a position sensor for detecting a position of the jig, wherein eddy currents from the fixed magnetic field generator force an unwanted blank immediately below a top-most blank of the stack to be separated from the top-most blank of the stack and to fall with gravity after the top-most blank is lifted by an external device, and wherein the fixed magnetic field generator is disposed relative to the stack in a way such that the eddy currents separate the unwanted blank from the top-most blank before the top-most blank and the unwanted blank are completely separated from remaining blanks of the stack.
11. The apparatus according to claim 10, wherein the magnetic field generator includes a polyphase winding.
12. The apparatus according to claim 10, wherein the magnetic field generator is a rotating assembly of permanent magnets having alternating north and south poles.
13. The apparatus according to claim 10 further comprising an air knife configured to inject air into the stack as the unwanted blank is separated by the eddy currents.
14. The apparatus according to claim 10 further comprising a transport mechanism configured to move the top-most blank to a subsequent manufacturing operation.
15. The apparatus according to claim 14, wherein the transport mechanism comprises a plurality of suction cups configured to hold the top-most blank of the stack.
16. The apparatus according to claim 14, wherein the transport mechanism comprises a robot with an end effector to hold the stack of blanks.
17. The apparatus according to claim 10 further comprising a controller configured to transmit signals to the jig for translational movement.
18. The apparatus according to claim 17, wherein the position sensor is in communication with the controller to transmit the position of the jig to the controller.
19. The apparatus according to claim 10, wherein the stack of blanks is not injected with any current by way of physical contact.
20. The apparatus according to claim 10 wherein the eddy currents result in a force vector in a direction between 90 degrees and 75 degrees as measured from a normal face of a blank.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
[0013]
[0014]
[0015]
[0016]
[0017]
[0018] Corresponding reference numerals indicate corresponding parts throughout the several views of the drawings.
DETAILED DESCRIPTION
[0019] The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses.
[0020] Referring to
[0021] The robot 12 may include a robot arm 13 and an end-effector 14 attached to the robot arm 13. The end-effector 14 may include a plurality of suction cups supplied with a vacuum via a hose 15 such that the end-effector 14 applies a suction force and thereby securely grasps and moves a separated blank from the stack of blanks 22. Alternatively, the end-effector 14 may include a multi-fingered gripper or any conventional means that can grasp and move the separated blank. The separated blank is moved by the end-effector 14 and fed into a stamping press (not shown), with the robot arm 13 moving back and forth between the stamping press and the stack of blanks 22 until all of the blanks in the stack have been sequentially fed into the press. (Only portions of the robot 12 are shown via a schematic inset 11 for illustrative simplicity).
[0022] As described in greater detail below, the magnetic field generator 16 is used to remove unwanted blank(s) stuck to a top-most blank 23 when the top-most blank 23 is grasped by an end-effector 14 so that the top-most blank 23 can be separated from the remaining blanks in the stack of blanks 22 to avoid inadvertent separation of more than one blank by the end-effector 14. More specifically, the end-effector 14, with its suction force, may grasp more than one blank from the stack of blanks 22 at a time. The magnetic field generator 16 generates a repulsive force F to push any unwanted blank(s) that are stuck to the top-most blank 23 downward. The unwanted blanks that are stuck to the top-most blank 23 can be further separated with the assistance of gravitational force G, rather than separating individual blanks as with conventional blank separating equipment. Further, the individual blanks are not physically touched by any equipment/components of the material handling apparatus 10.
[0023] Referring to
F.sub.B=qvB(Equation 1) where: [0024] F.sub.B=magnetic force vector [0025] q=charge [0026] V=velocity vector of the charge [0027] B=magnetic field vector
[0028] Accordingly, the magnetic field generator 16 is configured such that the direction of the force of the eddy currents 19 to separate an unwanted blank from the top-most blank 23 is downward, in a gravitational direction G, as shown. The force F may be in the range of 5 lbs to 200 lbs depending on the application, and may vary further from these exemplary values.
[0029] The material handling apparatus 10 may optionally include a controller 24 for actuating the jig 20 to move the stack of blanks 22 up and down along a Z-direction. The controller 24 is configured to move the jig 20 and position the stack of blanks 22 to a predetermined height relative to the stationary magnetic field generator 16 for an optimum separation force between the unwanted blank that is disposed immediately below the top-most blank 23 from the top-most blank 23. The jig 20 moves the stack of blanks 22 from an elevated position and progressively upwardly along the Z-direction such that a peripheral edge of an upper portion of the stack is continually positioned proximate the fixed magnetic field generator 16. A position sensor 30 may be disposed at the jig 20 and in communication with the controller 24 to transmit a signal corresponding to a position of the jig 20 to the controller 24.
[0030] Optionally, the air knife 18 is configured to inject air into the stack of blanks 22 as the top-most blank 23 is sucked by the end-effector 14 and the blank immediately below the top-most blank 23 is separated from the top-most blank 23 by a repulsive force F resulting from the local eddy currents of the magnetic field generator 16. The robot 12 is configured to move the top-most blank 23, which has been separated from the stack of blanks 22, to a target site for a subsequent manufacturing operations.
[0031] Referring to
[0032] Rotation of the magnets 26 with alternating polarities results in a constantly changing magnetic field, which induces an eddy current in a nearby conductor, i.e., within the edge of the blanks 22. A magnetic force is equal to the product of an electric current, a magnetic field, and a length of a given conductor, in this instance the blank immediately below the top-most blank 23. The interaction between the magnetic field generated by the magnet field generator 16 and the eddy current in the blanks 22 generates an opposing repulsive force F between the blanks 22 and the rotating magnets 22 that serves to move the edge of the blank immediately below the top-most blank 23 away from the top-most blank 23. The blank immediately below the top-most blank 23 then falls due to gravity. The repulsive force F is in a direction defining an angle relative to the front face of the blank 22, which is between 75 and 90 in one form of the present disclosure. The opposing repulsive force F produces a targeted blank fanning effect in which the generated magnetic force is produced in a controlled and targeted manner to separate the blanks 22.
[0033] The magnitude of the opposing repulsive force F depends on the rotational speed of the rotor 25, the magnetic field strength of the magnets 26, and the diameter of the rotor 25. Therefore, the repulsive force F resulting from the eddy currents and the magnetic field may be carefully tuned according to the specifications of the blanks 22 (e.g., size, thickness, material).
[0034] Referring to
[0035] Referring now to
[0036] The blanks 22 may be any conductive materials where eddy currents can be induced, such as aluminum alloys and steel alloys. In one form of high-volume automotive production, a width of the blanks is between about 25 mm to about 3000 mm, a length of the blanks is between about 25 mm to about 300 mm, a thickness of each blank is between about 0.5 mm to about 6.0 mm, and a height of the stack of blanks is between about 6 mm to about 2000 mm.
[0037] The apparatus and the method of the present disclosure are intended to eliminate the need for compressed air, dimple patterns, or other typical methods to facilitate separation of the blanks in stamping or other operations.
[0038] The description of the disclosure is merely exemplary in nature and, thus, variations that do not depart from the substance of the disclosure are intended to be within the scope of the disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the disclosure.