Integrated robotic press and reaction frame
10315280 ยท 2019-06-11
Assignee
Inventors
- Alexander Marrocco (Windsor, CA)
- Isaac ZOLOTAREV (Farmington Hills, MI, US)
- Arnold BELL (Brighton, MI, US)
- Joosok JINN (Grosse Ile, MI, US)
- Hossein FIROOZGAN (Walled Lake, MI, US)
Cpc classification
B25J9/1682
PERFORMING OPERATIONS; TRANSPORTING
Y10S901/31
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G05B2219/40032
PHYSICS
B25J11/00
PERFORMING OPERATIONS; TRANSPORTING
B25J9/1687
PERFORMING OPERATIONS; TRANSPORTING
G05B2219/39129
PHYSICS
B25J9/0084
PERFORMING OPERATIONS; TRANSPORTING
B25J15/0019
PERFORMING OPERATIONS; TRANSPORTING
B23P19/02
PERFORMING OPERATIONS; TRANSPORTING
B23P2700/50
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23P19/02
PERFORMING OPERATIONS; TRANSPORTING
B25J11/00
PERFORMING OPERATIONS; TRANSPORTING
B25J13/08
PERFORMING OPERATIONS; TRANSPORTING
B25J9/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A press frame for a robot system includes a base, a bridge and a set of columns supporting the bridge above the base. A first robot holds a part on the base and a second robot manipulates a pressing tool to press a component into an opening. The pressing tool is backed by the bridge that opposes a reaction force resulting from pressing the component part into the part. A method of assembling components to a part by pressing the part into an opening while engaging the bridge of a reaction frame. The part is transferred to the base by a first robot that positions the part on the base. A pressing tool and a component are selected by a second robot that orients the component to be inserted in the opening. Data relating to displacement, load and time is collected by the controller.
Claims
1. An apparatus for assembling a component to a part comprising: a first robot that grips and manipulates the part; a second robot including a pressing tool; and a press frame including a base and a bridge supported above the base by columns, wherein the first robot retains the part on a table fixture while the second robot manipulates a pressing tool and a component to be pressed into an opening defined by the part and presses the component into the part with the bridge backing the pressing tool to oppose a pressing tool reaction force.
2. The apparatus of claim 1 further comprising: a load cell operatively connected to the pressing tool between the base, the part, and the bridge for measuring a load applied to the component when the component is assembled to the part.
3. The apparatus of claim 1 further comprising: an encoder operatively connected to the pressing tool between the base, the part, and the bridge for measuring displacement of the component as the component is assembled to the part.
4. The apparatus of claim 1 wherein the table fixture installed between the base and the pressing tool, the part being supported on the table fixture as the component is pressed into the part, wherein the pressing tool exerts a pressing force on the component, and wherein the bridge opposes the pressing reaction force.
5. The apparatus of claim 1 further comprising: a lubricant/sealer dispenser, wherein the first robot transfers the part between the base and the lubricant/sealer dispenser that applies a lubricant/sealer to an opening defined by the part and transfers the part to the base.
6. The apparatus of claim 1 further comprising: a tool magazine, wherein the second robot picks a press tool from the tool magazine and aligns the pressing tool and the component with an opening defined by the part.
7. The apparatus of claim 1 wherein the first robot retains the part on the table fixture, the second robot aligns the pressing tool and the component with the part, wherein the pressing tool presses the component into an opening defined by the part.
8. The apparatus of claim 1 wherein the first robot retains the part on the table fixture, the second robot aligns the pressing tool and the component with the part, wherein the pressing tool presses the component into an opening defined by the part, wherein the pressing tool is oriented to engage the part on the base and the second robot engages the bridge.
9. The apparatus of claim 1 wherein the first robot transfers the part from a pallet used to transfer the part to the apparatus.
10. The apparatus of claim 1 wherein the table fixture includes a plurality of receiving surfaces that are adapted to receive different types of parts, wherein each part type is received on a different receiving surface, and wherein the first robot and the second robot are programed to transfer each part type to a selected receiving surface and install components as specified for a selected part type.
11. The apparatus of claim 1 wherein the part includes a plurality of faces that receive components, wherein the first robot moves the part on the base to orient one of the faces receiving components to face the bridge.
12. A press frame and robot system comprising: a base; a bridge; a column supporting the bridge above the base; a first robot configured to hold a part on the base; and a second robot manipulates a pressing tool and a component part to be pressed into an opening defined by the part, the second robot holding the pressing tool in engagement with the bridge while the component part is pressed into the part.
13. The press frame and robot system of claim 12 further comprising: a load cell operatively connected between the pressing tool and the bridge for measuring a load applied to the component part when the component is assembled to the part.
14. The press frame and robot system of claim 12 wherein the base includes a plurality of receiving surfaces that are adapted to receive different part types, wherein each part type is received on a different receiving surface, and wherein the first robot and the second robot are programed to transfer each part type to a selected receiving surface and install components for a selected part type.
15. The press frame and robot system of claim 12 wherein the first robot is configured to move the part on the table fixture to orient one of a plurality of faces receiving components to face the bridge.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(7) The illustrated embodiments are disclosed with reference to the drawings. However, it is to be understood that the disclosed embodiments are intended to be merely examples that may be embodied in various and alternative forms. The figures are not necessarily to scale and some features may be exaggerated or minimized to show details of particular components. The specific structural and functional details disclosed are not to be interpreted as limiting, but as a representative basis for teaching one skilled in the art how to practice the disclosed concepts.
(8) Referring to
(9) A reaction force bridge 28 is attached to a base 30 and is used to counteract the reaction force that is created when the pressing tool 22 presses a component 24 into the part 14. A press fixture table 32 supports the part 14 above the base 30 while the pressing tool 22 presses components 24 into the part 14. The bridge 28 is supported on columns 34 that are supported by the base 30. The first robot 12 includes a gripper 36 for manipulating the part 14 and second robot 20 includes a pressing tool 22.
(10) A lubricant/sealer dispenser system 40 includes a pressurized lubricant/sealer reservoir 42 and a nozzle assembly 44.
(11) As shown in
(12) The pressing tool 22 includes a first servomotor press 50 and a second servomotor press 52 that are used in tandem to independently press two components 24 into an opening 58 in a part 14. The part 14 may have, for example six faces, or receiving surfaces 60. The receiving surfaces 60 are oriented on the press fixture table 32 to face the bridge 28 when the components 24 are pressed into the part 14. The first servomotor press 50 and the second servomotor press 52 are adjusted by the servomotors to the desired height and/or force. The first servomotor press 50 and the second servomotor press 52 are attached to separate mounting plates 62. The mounting plates 62 are moved together and apart by a pitch adjustment servomotor 64 to change the spacing between the presses 50 and 52. The pitch adjustment servomotor 64 moves the first and second servomotor presses to pick up tools 54 from the tooling magazine 48 and to pick up components 24 from the pallet 18 (shown in
(13) Referring to
(14) The part 14 is placed on the press fixture table 32 by the first robot 12 (shown in
(15) The second robot 20 includes an encoder 70 that monitors the displacement of the first and second servomotor presses 50 and 52 and provides feedback relating to displacement to a press controller 72. The second robot 20 also includes resolvers 74 that may be installed above the encoder 70. The resolver 74 controls the operation of the servomotors of the robot 20. A plurality of load cells 76 may be arranged above the resolver 74 on the second robot 20. The load cells 76 provide data corresponding to the pressure exerted by the servomotor presses 50 and 52. The load cells 76 may be an internal part of the second robot 20. A post 78 is shown between the bridge 28 and the load cell 76 in
(16) The post 78 engages the bridge 28 during the pressing operation to provide a reaction force to the force applied to the component 24 as the component 24 is pressed into the part 14. The post 78 engages the bridge 28 to permit greater pressing force to be applied compared to a robot that is not backed up by a bridge. By engaging the bridge 28, the robot 20 is stabilized and is less subject to deflection.
(17) Controller 72 may include or may be interfaced with a data collection system that includes data analysis software and data storage capabilities. The encoder 70 provides displacement data that can be monitored to determine if the component 24 was pressed too deep into the opening 58, if the component 24 was omitted, or if the component was not sufficiently pressed into the opening 58. The encoder 70 can also detect other conditions such as if two components 24 are installed.
(18) The load cells 76 provide load data to the controller 72 and are interfaced with the data collection system for data analysis and storage. The load cell 76 monitors the load applied by the pressing tool 22 and can determine if insufficient or excessive load is applied. The amount of load applied may enable the press controller to determine whether there is misalignment of the component 24 relative to an opening 58 in the part or if more than one part was installed at the same time, or if the opening and/or parts are within specification. Load data may be stored to verify compliance with quality control specifications for subsequent analysis.
(19) The controller 72 or data collection system also collects press load data in a time domain and can provide real time feedback to the robots 12 and 20. In addition, time monitored during a pressing operation can be integrated with the displacement data and the load data to provide a wide variety of information for press quality control.
(20) The embodiments described above are specific examples that do not describe all possible forms of the disclosure. The features of the illustrated embodiments may be combined to form further embodiments of the disclosed concepts. The words used in the specification are words of description rather than limitation. The scope of the following claims is broader than the specifically disclosed embodiments and also includes modifications of the illustrated embodiments.