IP Library Granted Patent US 8,672,116
Granted Patent B2
US 8,672,116 · App. 13/241,528 · Granted Mar 18, 2014

Sprung pin conveyor roller bearing

Inventor: Britt Calloway (Fredericksburg, VA)
Assignee: Bastian Automation Engineering, LLC
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Quick Facts
Patent No.
US 8,672,116
App. No.
13/241,528
Granted
Mar 18, 2014
Kind
B2
Abstract

A roller bearing end hub has a housing that internally houses a plane bearing, pin, and spring. The spring is biased against the plane bearing which is rotatably connected with the pin. The housing includes two half-housings which are configured to be mated together. The bearing is formed of a shape similar to the housing interior. The pin is smaller than an attached axle stub and the spring does not directly interact with the pin such that the amount of friction between the pin and bearing is minimized.

Claims (115)

1. An apparatus, comprising:

a roller including

an axle stub about which the roller rotates, the axle stub being retractable in a linear direction to facilitate replacement of the roller,

a bearing coupled to the axle stub in a rotatable manner, the bearing being moveable in the linear direction within the roller as the axle stub retracts,

wherein the axle stub includes a pin,

wherein the bearing defines an axle pin opening in which the pin of the axle stub is received, and

wherein the axle stub is configured to rotate relative to the bearing.

2. The apparatus of claim 1 , further comprising a conveyor frame to which the roller is secured via the axle stub.

3. The apparatus of claim 1 , further comprising:

a housing defining a bearing cavity in which the bearing is disposed, wherein the bearing cavity is longer than the bearing to allow the bearing to slide in a linear direction within the bearing cavity.

4. The apparatus of claim 1 , further comprising:

a biasing mechanism biasing the bearing so that the axle stub is in an extended position; and

wherein the bearing is configured to move counter to a biasing force of the biasing mechanism during retraction of the axle stub.

5. The apparatus of claim 1 , further comprising:

a biasing mechanism configured to bias the axle stub in an extended position.

6. The apparatus of claim 5 , wherein the bearing is sandwiched between the biasing mechanism and the axle stub.

7. The apparatus of claim 5 , wherein the biasing mechanism includes a spring.

8. The apparatus of claim 7 , wherein the bearing includes a spring cavity in which one end of the spring is received.

9. The apparatus of claim 1 , further comprising:

the axle stub including

a head,

a pin extending from the head, the pin being rotatably received in the bearing, and

wherein the pin has an outer diameter that is smaller than an outer diameter of the head.

10. The apparatus of claim 9 , wherein the outer diameter of the pin is 3/16 of an inch.

11. The apparatus of claim 9 , wherein the head of the axle stub includes a collar section that is cylindrical and a rail engagement section having a hexagonal cross-sectional shape.

12. The apparatus of claim 1 , wherein:

the bearing and axle stub are moveable together in the linear direction from an extended position to a retracted position;

the axle stub extends from the roller when at the extended position; and

the axle stub is at least partially retracted inside the roller when at the retracted position.

13. The apparatus of claim 12 , further comprising:

a housing defining a bearing cavity in which the bearing is disposed, wherein the bearing cavity is longer than the bearing to allow the bearing to slide in a linear direction within the bearing cavity.

14. The apparatus of claim 12 , further comprising:

a biasing mechanism biasing the bearing so that the axle stub is in an extended position; and

wherein the bearing is configured to move counter to a biasing force of the biasing mechanism during retraction of the axle stub.

15. The apparatus of claim 1 , further comprising:

a housing defining a bearing cavity in which the bearing is disposed; and

the bearing being configured to slide in the linear direction within the bearing cavity.

16. The apparatus of claim 15 , wherein the housing defines one or more debris openings positioned at an end of the bearing cavity opposite the axle stub.

17. The apparatus of claim 15 , wherein the bearing and the bearing cavity include a keying structure for allowing the bearing to slide in the linear direction within the bearing cavity and prevent the bearing from rotating relative to the housing.

18. The apparatus of claim 17 , wherein the keying structure includes the bearing and the bearing cavity each having a hexagonal cross-sectional shape.

19. The apparatus of claim 15 , further comprising:

the housing defining an axle stub opening through which a portion of the axle stub extends, the housing having an engagement flange surrounding the axle stub opening; and

the axle stub includes a retention flange engaging the engagement flange to retain the axle stub in the housing.

20. The apparatus of claim 19 , further comprising:

the bearing defining a retention flange cavity in which the retention flange of the axle stub is received;

the engagement flange of the housing defining a notch portion sized and shaped to receive at least part of the retention flange of the axle stub; and

wherein the notch portion in the engagement flange and the retention flange cavity in the bearing form a retention flange cavity in which the retention flange of the axle stub is disposed.

21. The apparatus of claim 15 , wherein the housing has a clamshell configuration.

22. The apparatus of claim 21 , wherein the clamshell configuration includes at least two shells joined together to form the housing.

23. The apparatus of claim 22 , wherein the shells include one or more alignment pins and openings for aligning the shells together.

24. A method of manufacturing a roller, comprising:

inserting a pin of an axle stub into a pin opening of a bearing; and

loading the bearing into a bearing cavity of a housing, wherein the bearing cavity is longer than the bearing to allow the bearing to slide in a linear direction within the bearing cavity.

25. The method of claim 24 , wherein said inserting occurs after said loading.

26. The method of claim 24 , comprising:

securing the housing to one end of a roller tube.

27. The method of claim 24 , wherein said inserting occurs before said loading.

28. The method of claim 24 , wherein said loading includes positioning a spring inside the bearing cavity with the bearing located in between the spring and the axle stub.

29. The method of claim 24 , wherein said loading includes securing at least two shells together to form the housing.

30. The method of claim 24 , further comprising:

forming the bearing cavity with a key structure to prevent rotation of the bearing relative to the bearing cavity while permitting movement of the bearing in the linear direction.

31. The method of claim 30 , wherein the bearing cavity and the bearing have hexagonal cross-sectional shapes.

32. A method of installing a roller into a conveyor frame, comprising:

retracting an axle stub of the roller by compressing the axle stub against a bearing in which a portion of the axle stub is rotatably received, wherein the bearing is disposed in a bearing cavity that is longer than the bearing, wherein the bearing moves in a retraction direction within the bearing cavity during said retracting, wherein the bearing and axle stub move together in the retraction direction from an extended position to a retracted position during said retracting, wherein the axle stub is at least partially retracted inside the roller when at the retracted position;

aligning the axle stub with an axle stub receptacle in the conveyor frame; and

inserting the axle stub into the axle stub receptacle by extending the axle stub in an extension direction, wherein the bearing moves with the axle stub in the extension direction during said inserting.

33. The method of claim 32 , wherein said inserting includes rotating the axle stub to align with the axle stub receptacle.

34. The method of claim 32 , further comprising:

wherein the axle stub includes a pin,

wherein the bearing defines an axle pin opening in which the pin of the axle stub is received, and

rotating the axle stub relative to the bearing.

35. The method of claim 32 , further comprising:

wherein the bearing is biased towards the extension direction by a biasing mechanism; and

wherein said inserting includes extending the axle stub in the extension direction with the biasing mechanism.

36. The method of claim 35 , further comprising:

wherein the biasing mechanism includes a spring;

wherein the bearing is disposed between the spring and the axle stub;

wherein said retracting includes compressing the spring with the bearing by pushing the axle stub in the retraction direction; and

wherein said inserting includes releasing the spring, wherein the spring pushes the bearing and the axle stub in the extension direction during said inserting.

37. An apparatus, comprising:

a roller including

an axle stub about which the roller rotates, the axle stub being retractable in a linear direction to facilitate replacement of the roller,

a bearing coupled to the axle stub in a rotatable manner, the bearing being moveable in the linear direction within the roller as the axle stub retracts,

a housing defining a bearing cavity in which the bearing is disposed,

the bearing being configured to slide in the linear direction within the bearing cavity, and

wherein the bearing and the bearing cavity include a keying structure for allowing the bearing to slide in the linear direction within the bearing cavity and prevent the bearing from rotating relative to the housing.

38. The apparatus of claim 37 , wherein the keying structure includes the bearing and the bearing cavity each having a hexagonal cross-sectional shape.

39. An apparatus, comprising:

a roller including

an axle stub about which the roller rotates, the axle stub being retractable in a linear direction to facilitate replacement of the roller, and

a bearing coupled to the axle stub in a rotatable manner, the bearing being moveable in the linear direction within the roller as the axle stub retracts,

a housing defining a bearing cavity in which the bearing is disposed; and

the bearing being configured to slide in the linear direction within the bearing cavity, and

wherein the housing defines one or more debris openings positioned at an end of the bearing cavity opposite the axle stub.

40. An apparatus, comprising:

a roller including

an axle stub about which the roller rotates, the axle stub being retractable in a linear direction to facilitate replacement of the roller, and

a bearing coupled to the axle stub in a rotatable manner, the bearing being moveable in the linear direction within the roller as the axle stub retracts,

a housing defining a bearing cavity in which the bearing is disposed; and

the bearing being configured to slide in the linear direction within the bearing cavity,

the housing defining an axle stub opening through which a portion of the axle stub extends, the housing having an engagement flange surrounding the axle stub opening,

the axle stub includes a retention flange engaging the engagement flange to retain the axle stub in the housing,

the bearing defining a retention flange cavity in which the retention flange of the axle stub is received,

the engagement flange of the housing defining a notch portion sized and shaped to receive at least part of the retention flange of the axle stub, and

wherein the notch portion in the engagement flange and the retention flange cavity in the bearing form a retention flange cavity in which the retention flange of the axle stub is disposed.

41. An apparatus, comprising:

a roller including

an axle stub about which the roller rotates, the axle stub being retractable in a linear direction to facilitate replacement of the roller,

a bearing coupled to the axle stub in a rotatable manner, the bearing being moveable in the linear direction within the roller as the axle stub retracts, and

the axle stub including

a head,

a pin extending from the head, the pin being rotatably received in the bearing, and

wherein the pin has an outer diameter that is smaller than an outer diameter of the head.

42. The apparatus of claim 41 , wherein the outer diameter of the pin is 3/16 of an inch.

43. The apparatus of claim 41 , wherein the head of the axle stub includes a collar section that is cylindrical and a rail engagement section having a hexagonal cross-sectional shape.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 28, 2019
From: BASTIAN AUTOMATION ENGINEERING, LLC
To: BASTIAN SOLUTIONS, LLC
Reel/Frame 048467/0765 →
CHANGE OF NAME Recorded Apr 2, 2013
From: BLUE ARC ENGINEERING, LLC
To: BASTIAN AUTOMATION ENGINEERING, LLC
Reel/Frame 030130/0771 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 23, 2011
From: CALLOWAY, BRITT
To: BLUE ARC ENGINEERING, LLC
Reel/Frame 026956/0080 →
Continuity (1)
Related Publication 20130075225A1 · Mar 28, 2013