AUTOMATED SCREW DRIVING MACHINE
An automated screw driving machine may include a hopper adapted to hold associated fasteners, a chuck assembly adapted to hold an individual fastener in position with respect to an associated component part, a feeder assembly adapted to convey the fasteners from the hopper to the chuck assembly; and, a driver assembly that takes fasteners from the chuck assembly and attaches them to the associated component part.
This application claims priority to U.S. patent application Ser. No. 16/233,658, filed on Dec. 27, 2018, which claims priority to U.S. Provisional Patent Application No. 62/611,614, filed Dec. 29, 2017; the entirety of which is incorporated herein by reference.
TECHNICAL FIELDThis invention generally concerns apparatuses and methods related to automated screw driving machines.
BACKGROUNDIt is well known in the manufacturing industry to use automated screw driving machines that automatically attach screws or other fasteners to various types of component parts in order to fasten or attach such component parts together. Automated screw driving machines typically include a storage container or hopper which holds fasteners to be used, a clamp or chuck assembly which holds individual fasteners in position with respect to the component part, a feeder assembly that conveys the fasteners from the hopper to the chuck, and a driver assembly that takes the fastener from the chuck and attaches it, typically with both linear and torsional forces, to the component part. While many known automated screw driving machines work adequately for their intended purpose, they are known to have several problems and limitations.
One problem with known screw driving machines is that fasteners often get stuck or jammed. This problem may occur anywhere throughout the process but is especially common with known feeder assemblies and chuck assemblies. Another common problem is that too many or too few fasteners are delivered to the chuck assembly. While known feeder assemblies use sensors in an effort to detect the presence of fasteners, they are typically unreliable.
Other known problems are related to chuck assemblies. Often the final stages of fastener placement within the chuck is accomplished using only gravity. This leads to fasteners “falling” into the chuck in a misaligned position. Another known problem comes when a component part requires two or more different sized or shaped fasteners to be used with the same driver assembly. To accommodate the different fasteners, the chuck size and shape is compromised to an in-between or average arrangement. This leads to fasteners being misaligned within the chuck and/or to chucks being incapable of holding some fasteners at all.
Other known problems are related to driver assemblies. Often during typical manufacturing conditions, driver assemblies are bumped or knocked. These forces can cause the driver assembly to become misaligned with respect to the chuck and/or with respect to the component part. Another known problem occurs when the component part at issue is relatively delicate. In these conditions it may be a requirement that the driver assembly cannot physically contact the component part. This increases the difficulty in properly attaching fasteners to the component part.
The problems just described, and many similar such problems, lead to manufacturing delays for the machine operator and often to requirements that the screw driving assembly be shut down for maintenance so that the problem can be remedied. Many times these problems also lead to the requirement that the corresponding component part be discarded. Thus, known screw driving machines have problems that lead to production inefficiencies, equipment shut downs, and unfit components. The resultant increases in costs and waste are undesirable.
What is needed is an automated screw driving machine that overcomes or reduces the problems and limitations described above and that may provide other advantages and benefits as well.
Numerous benefits and advantages of this invention will become apparent to those skilled in the art to which it pertains upon reading and understanding of the following detailed specification.
Sample embodiments of the present disclosure are set forth in the following description, are shown in the drawings and are particularly and distinctly pointed out and set forth in the appended claims. The invention may take physical form in certain parts and arrangement of parts, embodiments of which will be described in detail in this specification and illustrated in the accompanying drawings which form a part hereof and wherein:
Referring now to the drawings wherein the showings are for purposes of illustrating embodiments of the invention only and not for purposes of limiting the same, and wherein like reference numerals are understood to refer to like components,
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While the automated screw driving machine has been described above in connection with various illustrative embodiments, it is to be understood that other similar embodiments may be used or modifications and additions may be made to the described embodiments for performing the same function disclosed herein without deviating therefrom. Further, all embodiments disclosed are not necessarily in the alternative, as various embodiments may be combined or subtracted to provide the desired characteristics. Variations can be made by one having ordinary skill in the art without departing from the spirit and scope hereof. Therefore, the automated screw driving machine should not be limited to any single embodiment, but rather construed in breadth and scope in accordance with the recitations of the appended claims.
Claims
1. An automated screw driving machine, comprising:
- a hopper adapted to hold a plurality of fasteners; and
- a feeder assembly operably engaged to the hopper, wherein the feeder assembly is adapted to convey the at least one fastener of the plurality of fasteners from the hopper to a chuck assembly, and wherein the feeder assembly is configured to be movable to convey at least one misaligned or extra fastener of the plurality of fasteners from the feeder assembly to the hopper.
2. The automated screw driving machine of claim 1, wherein the feeder assembly is configured to convey the at least one fastener of the plurality of fasteners from the hopper to a chuck assembly in an upright position.
3. The automated screw driving machine of claim 1, wherein the feeder assembly is configured to remove the at least one misaligned or extra fastener of the plurality of fasteners from the feeder assembly to the hopper in a retracted position.
4. The automated screw driving machine of claim 1, wherein the feeder assembly further comprises:
- a first fastener conveyance structure;
- a fastener orientation structure operably engaged with the first fastener conveyance structure, wherein the fastener orientation structure is configured to orient each fastener of the plurality of fasteners to a predetermined orientation;
- a first fastener removal structure operably engaged with the first fastener conveyance structure; and
- a second fastener removal structure operably engaged with the first fastener conveyance structure, wherein the second fastener removal structure is adapted to be movable relative to the first fastener removal structure;
- wherein each of the first fastener removal structure and the second fastener removal structure is configured to remove the at least one misaligned or extra fastener of the plurality of fasteners from the feeder assembly.
5. The automated screw driving machine of claim 4, wherein the fastener orientation structure further comprises:
- a transport surface operably engaged with each of the hopper, the first fastener removal structure, and the second fastener removal structure.
6. The automated screw driving machine of claim 5, where the transport surface further comprises:
- a groove defined in the transport surface extending from a first end of the transport surface to an opposing second end of the transport surface; wherein the groove is configured to receive a fastener shank of the at least one fastener of the plurality of fastener for orienting the at least one fastener of the plurality of fastener to the predetermined orientation.
7. The automated screw driving machine of claim 6, wherein the transport surface further comprises:
- an opening defined in the transport surface at the second end of the transport surface; wherein the opening provides fluid communication between the feeder assembly and the chuck assembly.
8. The automated screw driving machine of claim 5, wherein the first fastener removal structure further comprises:
- at least one blower positioned above the transport surface of the feeder assembly, wherein the at least one blower is configured to exert an air force across the transport surface of the feeder assembly for removing the at least one misaligned or extra fastener of the plurality of fasteners from the transport surface to the hopper.
9. The automated screw driving machine of claim 5, wherein the second fastener removal structure further comprises:
- a movable portion operably engaged with the transport surface of the feeder assembly, wherein the movable portion is configured to be moveable between an upright position and a retracted position for removing the at least one misaligned or extra fastener of the plurality of fasteners from the transport surface to the hopper.
10. The automated screw driving machine of claim 9, wherein the second fastener removal structure further comprises:
- an opening defined by the movable portion; and
- a rod operably engaged with the movable portion inside of the opening, wherein the movable portion is adapted to move along the rod between the upright position and the retracted position when removing the at least one misaligned or extra fastener of the plurality of fasteners from the transport surface to the hopper.
11. The automated screw driving machine of claim 10, wherein the moveable portion guides at least one aligned fastener of the plurality of fasteners from the transport surface to the chuck assembly in the upright position.
12. The automated screw driving machine of claim 10, wherein the moveable portion guides the at least one misaligned or extra fastener of the plurality of fasteners from the transport surface to the hopper in the retracted position.
13. The automated screw driving machine of claim 7, wherein the feeder assembly further comprises:
- a second fastener conveyance structure operably engaged with the transport surface, wherein the second fastener conveyance structure is configured to convey the at least one fastener of the plurality of fasteners from the first fastener conveyance structure towards the first fastener removal structure and the second fastener removal structure.
14. The automated screw driving machine of claim 13, wherein the second fastener conveyance structure further comprises:
- at least one vibrator operably engaged with the transport surface, wherein the at least one vibrator is configured to convey the at least one fastener from the plurality of fasteners from the first fastener conveyance structure towards the first fastener removal structure and the second fastener removal structure.
15. The automated screw driving machine of claim 13, wherein the feeder assembly further comprises:
- a third fastener conveyance structure operably engaged with the transport surface, wherein the third fastener conveyance structure is configured to convey the at least one fastener of the plurality of fasteners from the first fastener removal structure and the second fastener removal structure to the opening defined by the transport surface.
16. The automated screw driving machine of claim 15, wherein the third fastener conveyance structure further comprises:
- a supporting structure; and
- at least one tab operably engaged to the supporting structure, wherein the at least one tab and the supporting structure are moveable relative to the transport structure.
17. The automated screw driving machine of claim 16, wherein the third fastener conveyance structure further comprises:
- an extension operably engaged with the at least one tab, wherein the extension is configured to be inserted into a groove of the transport surface, and wherein the extension is configured to guide the at least one fastener of the plurality of fasteners from the first fastener removal structure and the second fastener removal structure to the opening defined by the transport surface.
18. The automated screw driving machine of claim 17, wherein the third fastener conveyance structure further comprises:
- a first cylinder operably engaged with the supporting structure and the at least one tab, wherein the cylinder is configured to collectively vertically move the supporting structure and the at least one tab relative to the transport surface.
19. The automated screw driving machine of claim 17, wherein the third fastener conveyance structure further comprises:
- a second cylinder operably engaged with the supporting structure and the at least one tab, wherein the cylinder is configured to collectively horizontally move the supporting structure and the at least one tab relative to the transport surface.
20. An automated screw driving machine, comprising:
- a hopper adapted to hold a plurality of fasteners; and
- a feeder assembly operably engaged to the hopper, wherein the feeder assembly is adapted to convey the at least one fastener of the plurality of fasteners from the hopper to a chuck assembly, the feeder assembly comprising: a first fastener conveyance structure; a fastener orientation structure operably engaged with the first fastener conveyance structure, wherein the fastener orientation structure is configured to orient each fastener of the plurality of fasteners to a predetermined orientation; a first fastener removal structure operably engaged with the first fastener conveyance structure; and a second fastener removal structure operably engaged with the first fastener conveyance structure, wherein the second fastener removal structure is adapted to be movable relative to the first fastener removal structure;
- wherein each of the first fastener removal structure and the second fastener removal structure is configured to remove the at least one misaligned or extra fastener of the plurality of fasteners from the feeder assembly.
Type: Application
Filed: Sep 8, 2021
Publication Date: Dec 30, 2021
Inventor: Mark Stevens (Lexington, OH)
Application Number: 17/469,426