Tape Laying Machine Scrap Collection Assembly

The integration of a scrap collection assembly with a crack-off assembly and conveyor into the tape stacking head of tape lamination machines addresses the inefficiency of manual scrap collection, enabling faster and more efficient application of composite tape segments.

JP7678815B2Active Publication Date: 2025-05-16FIVES MACHINING SYSTEMS INC
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Patent Information

Application Number
JP2022547834
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-02-06
Filing Date
2020-09-23
Publication Date
2025-05-16
Estimated Expiration
2040-09-23

AI Technical Summary

Technical Problem

Existing tape lamination machines face inefficiencies in scrap material collection, requiring manual operator intervention and reducing the speed of composite tape segment application.

Method used

A scrap collection assembly integrated into the tape stacking head, featuring a crack-off assembly with a directional roller and a secondary crack-off flower, which selectively changes the tape path to direct scrap portions to a conveyor and collection tray, allowing for in-situ scrap collection without operator assistance.

Benefits of technology

Enables efficient and automated collection of scrap material, enhancing the speed and efficiency of composite tape segment application by eliminating the need for manual scrap removal.

✦ Generated by Eureka AI based on patent content.

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Abstract

A scrap collection assembly for a tape laying head that applies a plurality of composite tape segments includes a crack-off assembly including a scrap crack-off direction change roller configured to engage one or more composite tape segments and one or more scrap portions, a secondary crack-off roller configured to engage one or more composite tape segments and one or more scrap portions, and a pivot shaft connecting the crack-off assembly to the tape laying head, the secondary crack-off roller selectively moving about the pivot shaft to change the direction of travel of the composite tape, and a conveyor that receives the scrap portions from the secondary crack-off roller.
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Description

[Technical field]

[0001] CROSS-REFERENCE TO RELATED PATENT APPLICATIONS

[0001] This application is an International Patent Cooperation Treaty patent application claiming benefit of priority to U.S. Provisional Patent Application No. 62 / 971,032, filed February 6, 2020, the entire contents of which are incorporated herein by reference.

[0002] This application relates to tape laying machines, and more particularly to a scrap collection assembly included in a tape laying head. [Background technology]

[0003]

[0003] Tape laying machines are used to create composite workpieces. Composite material in the form of resin-impregnated fibrous material is applied by the tape laying machine in precise locations and lengths to integrally form the composite workpiece. The tape laying machine moves a tape laying head to precisely apply the composite tape in the final shape of the composite workpiece. As the tape laying head moves, it leaves behind a number of composite tape segments, also called courses. The automated application of these composite tape segments involves the cooperation of a diverse collection of machines that hold, move, and finally cut the composite tape. Summary of the Invention [Problem to be solved by the invention]

[0004]

[0004] Each composite tape segment may have a head portion and a tail portion at the end of the segment. The head and tail portions are shaped by a cutting blade that cuts the composite tape to form the tail portion of one composite tape segment and the head portion of the next composite tape segment. Some composite tape segments have a relatively simple shape, such as a butt cut that simultaneously separates the tail portion of one composite tape segment from the head portion of another composite tape. However, other composite tape segments may be created from cuts of a supplied composite tape that leave unwanted scrap material on the backing paper to be discarded. [Means for solving the problem]

[0005]

[0005] In one implementation, a scrap collection assembly for a tape laying head that applies multiple composite tape segments includes a crack-off assembly including a scrap crack-off direction change roller configured to engage one or more composite tape segments and one or more scrap portions, a secondary crack-off roller configured to engage one or more composite tape segments and one or more scrap portions, and a pivot shaft connecting the crack-off assembly to the tape laying head, the secondary crack-off roller selectively moving about the pivot shaft to change the direction of movement of the composite tape, and a conveyor that receives the scrap portions from the secondary crack-off roller.

[0006]

[0006] In another implementation, a tape laying head for applying multiple composite tape segments has a frame carrying a composite tape supply reel and multiple direction change rollers, a crack-off assembly including a scrap crack-off direction change roller configured to engage one or more composite tape segments and one or more scrap portions, a secondary crack-off roller configured to engage one or more composite tape segments and one or more scrap portions, and a pivot shaft connecting the crack-off assembly to the tape laying head, the secondary crack-off roller selectively moving about the pivot shaft to change the direction of movement of the composite tape, and a conveyor receiving the scrap portions from the secondary crack-off roller. [Brief description of the drawings]

[0007] [Figure 1]

[0007] FIG. 1 is a perspective view showing an implementation form of a tape lamination machine. [Diagram 2]

[0008] FIG. 2 is a perspective view showing a mounting form of the tape laying head. [Diagram 3]

[0009] FIG. 13 is another perspective view showing a mounting configuration of a portion of the tape laying head. [Figure 4]

[0010] FIG. 13 is a plan view showing implementations of patterns of applied composite tape sections and composite tape sections with scraps on the backing paper. [Figure 5(a)]

[0011] FIG. 1 is a perspective view showing an implementation of a portion of a scrap collection assembly in a tape placement mode or position. [Figure 5(b)]

[0012] FIG. 1 is a perspective view showing an implementation of a portion of a scrap collection assembly in a scrap collection mode or position. [Figure 6]

[0013] FIG. 1 is a profile diagram showing an implementation of a portion of a scrap collection assembly. [Figure 7]

[0014] FIG. 11 is a profile diagram showing another implementation of a tape laying head. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0008]

[0015] A tape laying machine has a tape laying head with a scrap collection assembly for removing scrap composite tape from the backing paper and storing the scrap sections at the head. As discussed above, creating a composite tape segment may involve creating scrap segments of composite tape that will ultimately be disposed of. For example, the tail side of a composite tape segment may be cut at a different angle than the head side of the next composite tape segment. Scrap portions of composite tape may be formed between or among successive composite tape segments thus cut. Conventionally, the tape laying head may be moved away from the table base to reach a scrap removal location where the scrap sections are removed from the backing paper by the machine operator. However, this reduces the speed at which the composite tape segments can be applied, thereby resulting in slower formation of composite parts. In contrast, the present tape laying head may collect scrap portions on-site using a scrap collection assembly carried by the scrap laying head. The composite tape passes through the tape laying head, a cutting assembly cuts the tape to create one or more scrap portions, and a scrap collection assembly may be activated to remove the scrap portions from the backing paper and collect the scrap portions in a collection tray. The scrap collection assembly may have a crack-off assembly, a conveyor, and a collection tray, which are discussed in more detail below.

[0009]

[0016] After the cutting assembly cuts the composite tape moving past the tape laying head to create a scrap section, the scrap section eventually reaches a scrap position where a secondary crack-off roller can move to engage the backing paper affixed to the composite tape moving toward the compression assembly. The engaged secondary roller can create a back bend in the composite tape path to direct the scrap section toward a conveyor that pulls the scrap section off the backing paper and delivers the scrap section into a collection tray. The scrap collection assembly can remove the scrap section without operator assistance and without moving the tape laying head to a scrap removal location.

[0010]

[0017] An implementation of a tape laying machine 10 is shown in FIG. 1. The tape laying machine 10 has a gantry 12 that movably carries a tape laying head 14 above a table base 16 on which a composite part is formed from a plurality of composite tape segments. The gantry 12 can have horizontal supports 20 attached to the upper ends of the vertical supports 18 or vertical supports 18 joined via beams. The gantry 12 can be implemented as a multi-axis tape laying machine 10, such as a Cincinnati CHARGER ATL or GEMINI. In one implementation, the tape laying machine 10 can allow six-axis movement of the tape laying head 14. The bottom of the vertical support 18 can move linearly relative to the table base 16 along the X-axis. The bottom of the vertical support 18 can move on rails 22 or wheels to move the gantry 12 along the X-axis. In one embodiment, rails 22 can be included on the table base 16 such that the vertical support 18 rests on the table. In another implementation, rails 22 may be formed on the floor on which the tape laying machine 10 is mounted. A ram 24 may carry the tape laying head 14 to raise and lower it relative to the table base 16 along the Z axis. The tape laying head 14 may be slidably connected to the horizontal support 20 at an end of the ram 24 distal to the tape laying head. This slidable connection may allow the frame to move in the Y axis on the table base 16. A releasable connection 26 between the tape laying head 14 and the ram 24 may allow removal and replacement of the tape laying head. The vertical support 18 and the ram 24 may move along the X, Y, and Z axes to position the tape laying head 14 relative to the replacement station 28. Another tape laying head 14 may then be coupled to the ram 24 and moved by the gantry 12 into position on the table base 16.

[0011]

[0018] Movement of the gantry 12, including the vertical support 18 and the ram 24, may be controlled by an operator station 30. The operator station 30 has one or more microprocessors (not shown) in communication with a computer-readable storage medium having executable instructions capable of controlling the movement of a fluid ram, electric motor, or other drive elements to control the motion and position of the gantry 12 as well as the operation of the tape laying head 14. The microprocessor may be any type of device capable of processing electronic instructions, including a microcontroller, a host processor, a controller, and an application specific integrated circuit (ASIC). The microprocessor may be a dedicated processor used solely to perform control of the gantry 12 or may be shared with other machine functions. The microprocessor executes various types of digitally stored instructions, such as software or firmware programs stored in a memory device. Communication between the microprocessor and mechanisms, such as a fluid ram or electric motor, that move the gantry 12 and the tape laying head 14 may be performed via a communication bus.

[0012]

[0019] 2 and 3, the tape laying head 14 has a frame 32 coupled to a releasable connection device 26 that releasably attaches the head to the ram 24. The frame 32 can support a supply reel 34 carrying a composite tape 36 that is ultimately fed to a compression assembly 38 that applies the tape 36 to the table base 16. Along the way, the composite tape 36 can pass over a supply dancer 40, a first diverting roller 42, a second diverting roller 44, and a scrap crack-off diverting roller 46 that collectively route the tape 36 adjacent a cutting assembly 48. The composite tape 36 can be wrapped around the supply reel 34 in one of a variety of widths. For example, a composite tape 36 having a width of 1.5" to 12" may be wound around the supply reel 34 for subsequent unwinding as the composite tape 36 is passed through the tape laying head 14. The components of the composite tape 36 are known, and an example of a composite tape may include carbon fiber. A backing paper 50 may be attached to one side of the composite tape 36 so that the surface of the composite tape 36 does not later contact subsequent wound layers of the composite tape 36. The supply dancer 40, the first redirecting roller 42, and the second redirecting roller 44 may be attached to a dancer mechanism 52 that controls the tension on the composite tape 36 as it is pulled from the supply reel 34 and fed to the compression assembly 38. The dancing mechanism 52 may enable linear movement of the rollers under the control of a spring or hydraulic ram. One or more electric motors may be used to apply rotational force to the supply reel 34, the supply dancer 40, the first redirecting roller 42, or the second redirecting roller 44. A backing paper reel 54 is included in the tape laying head 14 and is capable of receiving backing paper 50 that is removed from the composite tape 36 before the composite tape 36 is applied to the table base 16.In one implementation, a servo motor powered by a servo drive is used to control the movement of the composite tape 36 along the supply reel 34, the supply dancer 40, or the backing paper reel 54.

[0013]

[0020] A compression assembly 38 applies the composite tape sections to the table base 16. The compression assembly 38 can include compression rollers 84 that press the composite tape segments against the table base 16 as well as the tail side separator assembly. In some implementations, the compression assembly 38 includes a compression slide.

[0014]

[0021] A cutting assembly 48 is included in the tape laying head 14, where the cutting assembly 48 moves along a linear path in the direction of composite tape travel via a cutter carriage 56. The linear path may be a rail 58 or a slot on which the cutting assembly 48 moves in a straight line adjacent to the path of the composite tape moving towards the compression assembly 38. In this implementation, the cutting assembly 48 moves vertically from a top portion 60 of the tape laying head 14 to a bottom portion 62 of the tape laying head 14. A linear motor 64 may move the cutting assembly 48 along the rail 58 in the same direction or plane as the composite tape 36 moves towards the compression assembly 38. A crash stop 66 may help stop the downward movement of the assembly 48 as the cutting assembly 48 approaches the end of its travel.

[0015]

[0022] The cutting assembly 48 can have a cutting blade 68 that presses against a cutting anvil 70 to cut a section of the composite tape 36 as it passes towards the compression assembly 38. Rather than stopping the movement of the composite tape 36 through the tape laying head 14, the cutting assembly 48 can be moved along with the composite tape 36 so that the cutting blade 68 passes at an equal speed as the composite tape 36. In this way, there is only relative motion between the composite tape 36 and the cutting blade 68 as the cutting blade 68 is moved to cut the composite tape 36.

[0016]

[0023] The composite tape 36 may be cut into a variety of shapes, as shown in FIG. 4. A section of the composite tape is shown with a composite tape segment 86 and a scrap portion 88 that will be applied to the table base 16. The composite tape segment 86 is shown included in the scrap portion 88 after cutting, but prior to removing both the composite tape segment 86 and the scrap portion 88 from the backing paper 50. Also shown is a pattern showing the composite tape segment 86 applied to the table base 16. After cutting the composite tape 36 into the composite tape segment 86 and the scrap portion 88, the composite tape 36, including both the composite tape segment 86 and the scrap portion 88 attached to the backing paper 50, moves toward a scrap collection assembly 90.

[0017]

[0024] A scrap collection assembly 90 shown in Figures 5(a) and 5(b) may have a crack-off assembly 92, a conveyor 94, and a collection tray 96 that collectively work together to remove scrap portions 88 from the backing paper 50 before passing the composite tape segment 86 to the compression assembly 38 that applies the composite tape segment 86 to the table base 16. The composite tape segment 86 and scrap portions 88 follow a tape path that includes a second diverting roller 44 and a scrap crack-off diverting roller 46. The second diverting roller 46 may be a passive roller fixedly mounted on a frame that functions to redirect the tape path as the composite tape passes toward the compression assembly. Additionally, the scrap crack-off diverting roller 46 may passively redirect the tape path as the composite tape passes toward the compression assembly 38. However, the scrap crack-off diverting roller 44 may be included in the crack-off assembly 38 along with a secondary crack-off roller 98 that may selectively change the direction of travel of the composite tape or the shape of the tape path while positioned in the scrap collection mode. The crack-off assembly 92 has a scrap crack-off diverting roller 46, a secondary crack-off roller 98, a pivot shaft 100, and a piston 102 or similar mechanical or electromechanical actuator that selectively moves the crack-off assembly 92 between the tape placement mode and the scrap collection mode. In some implementations, the scrap crack-off diverting roller 46 may rotate or spin about an axis of pivot rotation for the pivot shaft 100. The crack-off assembly 92 may include a roller frame 104 that carries the scrap crack-off diverting roller 46 and the secondary crack-off roller 98. The pivot shaft 100 may rotatably couple the crack-off assembly 92 to the frame 32 of the tape laying head 14. A piston 102 , such as a fluid ram or linear motor, can be extended or retracted, thereby moving the crack-off assembly 92 about the pivot axis 100 .In other implementations, a different mechanical actuator may be used. The secondary crack-off roller 98 is positioned opposite the scrap crack-off diverting roller 46 so that the secondary crack-off roller 98 can contact the backing paper 50 and the scrap crack-off diverting roller 46 can contact the composite tape 36.

[0018]

[0025] In the tape placement mode, the crack-off assembly 92 may be positioned such that the tape path is influenced by the second redirecting roller 44 and the scrap crack-off redirecting roller 46 as the composite tape 36 passes to the compaction assembly 38. The position of the crack-off assembly 92 in the tape placement mode or position is shown in FIG. 5a. When the composite tape segment 86 is cut to create a scrap portion 88 as part of the cut, the crack-off assembly 92 may be moved to a scrap collection mode or position where it changes the tape path or direction of the composite tape 36 toward a conveyor 94 which transports the scrap portion 88 to a collection tray 96. The position of the crack-off assembly 92 in the scrap collection mode is shown in FIG. 5b. In this embodiment, the crack-off assembly 92 rotates about a pivot axis 100 such that the secondary crack-off rollers 98 engage the backing paper 50 of the composite tape 36 and change the tape path or direction so that the scrap portion 88 can be received by the conveyor 94. Once the scrap portion 88 has been received by the conveyor 94, the crack-off assembly 92 moves back to the tape placement mode or position to allow passage of the composite tape segment 86 to the compression assembly 38.

[0019]

[0026] A conveyor 94 can receive the scrap portion 88 and can transport the scrap portion 88 to a collection tray 96. The conveyor 94 can have two opposing belts 106, 108 that rotate in opposite directions to pull the scrap portion 88 from the backing paper 50 and transport the scrap portion 88 to the collection tray 96. One end of the belts 106, 108 is positioned adjacent to the second diverting roller 44, and the scrap portion 88 passes between the second diverting roller 44 and the scrap crack-off diverting roller 46. While the first belt 106 and the second belt 108 are engaged with each other, the first belt 106 can rotate in a counterclockwise direction and the second belt 108 can rotate in a clockwise direction. The collective motion of the first belt 106 and the second belt 108 can move the scrap portion 88 along the scrap path 110 from the second redirecting roller 44 to another end of the belts 106, 108 where the collection tray 96 receives the scrap portion 88. The first belt 106 and the second belt 108 can be made of a rubber-like material that is flexible but also has a sufficient coefficient of friction to pull the scrap portion 88 away from the backing paper 50 and hold the scrap portion 88 between the belts 106, 108 as it transports the scrap portion 88 to the collection tray 96. The collection tray 96 can be a container sized to receive a particular length and amount of the scrap portion 88. The collection tray 96 can also be removable from the tape laying head 14 so that the scrap portion 88 can be discarded. In another implementation, the collection tray 96 may be replaced with a scrap spool 122 that receives the scrap portions 88 from the conveyor 94 and wraps the scrap portions 88 around the scrap spool 122 as shown in FIG. 7. The scrap spool 112 may be configured to handle the longer scrap portions 88 exiting the conveyor 94. The scrap portions 88 may be rolled up on the scrap spool 112 on a scrap winding medium, such as shipping tape.

[0020]

[0027] It should be understood that the above description is a description of one or more embodiments of the present invention. The present invention is not limited to the specific embodiments disclosed herein, but rather is defined only by the following claims. Furthermore, the descriptions contained in the above description relate to specific embodiments and are not to be construed as limiting the scope of the present invention or the definition of the terms used in the claims, unless the term or phrase is specifically defined above. Various other embodiments, as well as various changes and modifications to the disclosed embodiments, will be apparent to those skilled in the art. All such other embodiments, changes, and modifications are intended to fall within the scope of the appended claims.

[0021]

[0028] As used in this specification and claims, the terms "eg," "for example," "for instance," "such as," and "like," as well as the verbs "comprising," "having," and "including" and other verb forms, when used with a list of one or more components or other items, are each to be construed as open-ended, meaning that the list is not to be construed as excluding other additional components or items. Other terms are also to be construed using their broadest reasonable meaning unless used in a context that requires a different interpretation.

Claims

1. 1. A scrap collection assembly for a tape laying head which applies a plurality of composite tape segments, comprising:

1. A crack-off assembly comprising: a scrap crack-off deflection roller configured to engage the one or more composite tape segments and the one or more scrap portions; a secondary crack-off roller configured to engage the one or more composite tape segments and the one or more scrap portions; and a pivot shaft connecting the crack-off assembly to the tape laying head, the secondary crack-off roller selectively moving about the pivot shaft to change the direction of travel of the composite tape; a crack-off assembly comprising: a conveyor for receiving the scrap portion from the secondary crack-off roller; A scrap collection assembly comprising:

2. The scrap collection assembly of claim 1 , further comprising a collection tray configured to receive the scrap portions from the conveyor.

3. The scrap collection assembly of claim 2 , wherein the collection tray is configured to be removable from the scrap collection assembly.

4. The scrap collection assembly of claim 1 further comprising a scrap spool for receiving the scrap portions from the conveyor.

5. The scrap collection assembly of claim 1 , further comprising a collection tray configured to receive the scrap portions from the conveyor.

6. 2. The scrap collection assembly of claim 1, further comprising a piston attached to a frame of a tape laying head and to said scrap collection assembly for rotating said crack-off assembly about said pivot axis.

7. The scrap collection assembly of claim 1 , wherein the secondary crack-off roller contacts a backing paper of the composite tape.

8. 2. The scrap collection assembly of claim 1, wherein said scrap crack-off diverter rollers rotate about an axis of rotation of said pivot shaft.

9. 1. A tape laying head for applying a plurality of composite tape segments, comprising: a frame carrying a supply reel of composite tape and a plurality of diverting rollers; 1. A crack-off assembly comprising: a scrap crack-off deflection roller configured to engage the one or more composite tape segments and the one or more scrap portions; a secondary crack-off roller configured to engage the one or more composite tape segments and the one or more scrap portions; and a pivot shaft connecting the crack-off assembly to the tape laying head, the secondary crack-off roller selectively moving about the pivot shaft to change the direction of travel of the composite tape; a crack-off assembly comprising: a conveyor for receiving the scrap portion from the secondary crack-off roller; A tape laying head comprising:

10. The tape laying head of claim 9 , further comprising a collection tray configured to receive the scrap portion from the conveyor.

11. The tape laying head of claim 10 , wherein the collection tray is configured to be removable from the tape laying head.

12. The tape laying head of claim 9 further comprising a scrap spool that receives the scrap portion from the conveyor.

13. The tape laying head of claim 9 , further comprising a collection tray configured to receive the scrap portion from the conveyor.

14. The tape laying head of claim 9 further comprising a piston attached to said tape laying head frame and said crack-off assembly for rotating said crack-off assembly about said pivot axis.

15. The tape laying head of claim 9 , wherein the scrap crack-off deflection roller rotates about an axis of rotation of the pivot shaft.

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