Rod retaining snap rod with enlarged retaining ring
A modular belt having a first belt module and a second belt module intercalated and locked into position by a pivot rod having a head at one end and a retaining ring disposed in spaced apart relation relative to the head along the longitudinal axis.
The present application is a continuation of U.S. patent application Ser. No. 10/891,807 filed on Jul. 15, 2004 which claims priority to U.S. Provisional Patent Application No. 60/489,824 filed Jul. 24, 2003, entitled “Rod Retaining Snap Rod with Enlarged Retaining Ring,” which is incorporated herein by reference.
FIELD OF INVENTIONThe present invention relates to modular conveying apparatus.
BACKGROUND OF THE INVENTIONBecause they do not corrode, are light weight, and are easy to clean, unlike metal conveyor belts, plastic conveyor belts are used widely, especially in materials handling and conveying food products. Modular plastic conveyor belts are made up of molded plastic modular links, or belt modules, that can be arranged side by side in rows of selectable width. A series of spaced apart link ends extending from each side of the modules include aligned apertures to accommodate a pivot rod. The link ends along one end of a row of modules are interconnected with link ends of an adjacent row. A pivot rod journaled in the aligned apertures of the side-by-side and end-to-end connected modules forms a hinge between adjacent rows. Rows of belt modules are then connected together to form an endless conveyor belt capable of articulating about a drive sprocket.
The retention of the pivot rod is an important feature of the modular plastic conveyor belts. Rod retention can be accomplished by enlarging the heads of the pivot rods at both ends but such would not allow for disassembly without destroying the rod head. Headless rods have been used for easier production and belt assembly. These type of rods must be blocked at both ends of the belt during use. In addition headless rods are often difficult to remove for disassembly.
One approach to rod retention is to have a head at one end of a rod and a headless section at the opposite end. The headed rod is furnished with a rod retaining ring disposed on the shaft at a distance from the head portion of the rod. The rod is inserted through the pivot holes of the module links, which are all exactly the same diameter. The retaining ring is just a little bit larger in diameter than the pivot hole of the outermost link, such that the ring may be forced through the pivot hole of the outermost link end and is able to expand behind the link. In this arrangement the rod is kept firmly in position by the retaining ring. The system described above has the drawback that it requires tight tolerances of the hole diameter of the outermost link and the retaining ring diameter. In practice, there is a risk that the rod does not retain well enough or is retained tightly and cannot be easily disassembled. In addition, if the retaining ring is a little too large, it may be sheared off when inserted.
What is needed is a device that makes the above-described tolerances less critical.
SUMMARY OF THE INVENTIONThe present invention meets the above-described need by providing a snap rod system such that the retaining ring can be made larger in order to increase the size of the shoulder which engages behind the link face. At the same time due to the larger ring diameter the bore of the outermost link needs to be enlarged accordingly in order to allow the larger retaining ring to be moved through the bore. Due to the larger difference between the retaining ring and the rod diameter, the tolerance becomes less critical. In one embodiment, the bore of the outermost link end is slightly eccentric in such a way that the enlarged shoulder of the retaining ring will be clearly overlapping the link face when assembled. When the belt is under tension the rod will be firmly forced into this retaining position, without losing the ability to transmit the belt pull.
BRIEF DESCRIPTION OF THE DRAWINGS
In
Each module 13, 16 has a module body 20 with a first and second plurality of link ends 22, 25 disposed in the middle of the module with respect to the outer edge 12 shown at the top of
has opposed side walls 23, 24 defining a first transverse thickness 21. The first transverse thickness 21 is connected to the intermediate section 26 of the module body 20 at a first proximal portion 27. The transverse thickness extends from the intermediate section 26 in a direction of belt travel to a first distal portion 29.
The link ends 22, 25 include openings 28, 31 disposed transverse to the direction of belt travel 34. The openings 28 and 31 receive the pivot rod 19 when adjacent belt modules 13, 16 are intercalated as shown in the figure.
The pivot rod 19 is typically round and has a diameter 30 such that the modules 13, 16 are capable of pivoting relative to each other for articulating about a sprocket (not shown). The pivot rod 19 has an end portion 46 with a diameter 47 that is greater than the diameter 30 of the pivot rod 19. The pivot rod 19 also includes a retaining ring 60 spaced apart longitudinally from the end portion 46. The retaining ring 60 has a diameter Dr that is larger than the diameter of the pivot rod 19 and may be formed with a chamfered or beveled edge 63.
Outermost link end 40 of module 16 is disposed toward the edge 12 of belt 10. The outermost link end
has a recessed portion 43 that is capable of receiving end portion 46 of pivot rod 19. When the pivot rod 19 is installed in the belt 10 in the direction indicated by arrow 49, the end portion 46 is received in the recessed portion 43 and abuts with the portion of the link end surrounding aperture 52 as shown in
Link end 40 has an opening 52 with a diameter D1 that is approximately equal to or slightly smaller than the diameter Dr of the ring 60 but is larger than the diameter D2 of openings 28, 31.
Belt module 13 also has a specially formed outermost link end 55 having a recessed surface 56.
The central longitudinal axis 65 of aperture 52 is offset from the central longitudinal axis 67 of openings 28, 31 such that upon insertion; the pivot rod 19 is bent as shown in
Turning to
In
Turning to
The second belt module 133 also has an outermost link end 136 having a recessed portion 139. The recessed portion 139 in the second belt module 133 receives the retaining ring 106 when the first and second belt modules 104, 133 are intercalated and connected by the pivot rod 118. The outermost link end 136 on the second belt module 133 has a pivot rod opening 140 with a diameter 143 that is approximately equal to the diameter of the openings 127 in the first belt module 104.
In
As shown in
Turning to
Link end 309 also includes an opening 321 having the same diameter as opening 315. Openings 315 and 321 have a diameter D1 that is approximately equal to or smaller than the diameter Dr of ring 360. The link end 312 and the link ends disposed toward the middle of the belt have openings with a Diameter D2 that is smaller than D1. The longitudinal axis 325 of openings 315 and 321 is offset from the longitudinal axis 330 of the opening in link end 312 and the openings toward the middle of the belt module.
Accordingly, during insertion of the pivot rod 319, the pivot rod 319 has to be bent and once the ring 360 clears the opening 315 it shifts to the left with respect to
The embodiment of
While the invention has been described in connection with certain embodiments, it is not intended to limit the scope of the invention to the particular forms set forth, but, on the contrary, it is intended to cover such alternatives, modifications, and equivalents as may be included within the spirit and scope of the invention as defined by the appended claims.
Claims
1-13. (canceled)
14. An assembly for hingedly coupling parts of a conveyor, comprising a first conveyor part provided with a first row of hinge eyes spaced apart from one another with mutual interspaces with an end hinge eye located along a longitudinal edge of the conveyor part, with an end hinge hole which is somewhat out of alignment with respect to an adjacent hinge hole from the first row, further comprising a second conveyor part provided with a second row of hinge eyes which are also spaced apart from one another with mutual interspaces, such that the conveyor parts can cooperate in a coupled condition by receiving hinge eyes in corresponding interspaces, and a hinge pin provided with a central body part which extends, in coupled condition of the assembly, through hinge holes of the first row and of the second row, further provided with a thickened head which is able to pass the end hinge hole of the end hinge eye, but not the hinge hole of the next hinge eye in coupled condition, which thickened head is, in coupled condition, axially locked between the end hinge eye and the next hinge eye, while the thickened head bears a projection which reaches into the hinge hole of end hinge eye in coupled condition.
15. An assembly according to claim 14, wherein the first row comprises a sub-row with more centrally located hinge eyes with hinge holes aligned with respect to one another and an end hinge eye adjacent to the sub-row, with an enlarged hinge hole which is positioned somewhat out of alignment and with a locking surface adjacent to the hinge hole and positioned in alignment.
16. An assembly according to claim 14, wherein the hinge eyes of the hinge holes of the second row are provided with hinge holes aligned with respect to one another.
17. An assembly according to claim 14, wherein, with the aid of its thickened head, the hinge pin is axially locked between a locking surface of the end hinge eye on the one side and the next hinge eye on the other side.
18. An assembly according to claim 14, wherein the projection is substantially cylindrical.
19. An assembly according to claim 14, wherein the projection has substantially the same diameter as the body part of the pin.
20. An assembly according to claim 14, wherein the projection extends collinear with the central part of the pin.
21. An assembly according to claim 14, wherein the hinge pin is rotationally symmetrical.
22. An assembly according to claim 14, wherein the pin extends over the width of the conveyor.
23. An assembly according to claim 14, wherein the thickened head tapers from the projection towards the central part.
24. An assembly according to claim 14, wherein the cooperating conveyor parts form a substantially closed conveying surface.
25. An assembly according to claim 14, wherein the end hinge eye is partly reduced, so that the locking surface surrounds the hinge hole as a ring segment.
26. An assembly according to claim 14, wherein the end hinge eye is designed as a stop cam bearing the locking surface and reaching outwards with respect to the body part, leaving a space corresponding with the hinge hole clear.
27. A hinge pin for coupling conveyor parts, comprising a substantially elongated central body part with a thickened head, wherein the thickened head bears a narrowed projection.
28. A hinge pin according to claim 27, wherein the central body part is substantially cylindrical.
29. A hinge pin according to claim 27, wherein the projection is substantially cylindrical.
30. A hinge pin according to claim 27, wherein the projection extends collinear with the central body part of the pin.
31. A hinge pin according to claim 27, wherein the pin is substantially rotationally symmetrical.
32. A hinge pin according to claim 27, wherein the head tapers from the projection towards the central part.
33. A modular belt, comprising:
- a first belt module having a first plurality of link ends, the first plurality of link ends disposed in spaced apart relation with spaces therebetween, the first plurality of link ends including an outermost link end disposed at an edge of the module, the outermost link end having a first transverse opening that is somewhat out of alignment with respect to an adjacent second transverse opening in the first plurality of link ends;
- a second plurality of link ends disposed in spaced apart relation with spaces therebetween such that the first plurality of link ends fit into the spaces between the second plurality of link ends when adjacent modules are connected;
- a pivot rod having a first end and a second end and having a retaining ring disposed in spaced apart relation to the first end, the pivot rod extending through transverse openings in the first plurality of link ends and the second plurality of link ends of an adjacent module, the retaining ring being capable of passing through the first transverse opening in the outermost link end but not the remaining transverse openings, the retaining ring being, in coupled condition, axially locked between the outermost link end and the adjacent link end, while the first end of the pivot rod reaches into the first transverse opening in the outermost link end.
34. The modular belt of claim 33, wherein the first plurality of link ends comprises a sub-row with more centrally located link ends with transverse openings aligned with respect to one another, the outermost link end adjacent to the sub-row, the outermost link end having an enlarged first transverse opening that is positioned somewhat out of alignment and with a locking surface adjacent to the first transverse opening and positioned in alignment.
35. The modular belt of claim 33, wherein the transverse openings in the second plurality of link ends are aligned with respect to one another.
36. The modular belt of claim 33, wherein with the aid of its retaining ring, the pivot rod is axially locked between a locking surface of the outermost link end on the one side and the adjacent link end on the other side.
37. The modular belt of claim 33, wherein the pivot rod is substantially cylindrical.
38. The modular belt of claim 33, wherein the pivot rod has a substantially uniform diameter on opposite sides of the retaining ring.
39. The modular belt of claim 33, wherein the first end of the pivot rod is collinear with the second end of the pivot rod.
40. The modular belt of claim 33, wherein the pivot rod is rotationally symmetrical.
41. The modular belt of claim 33, wherein the pivot rod extends over the width of the conveyor.
42. The modular belt of claim 33, wherein the retaining ring tapers toward a midportion of the pivot rod.
43. The modular belt of claim 33, wherein intercalating the first plurality of link ends with the second plurality of link ends on an adjacent module forms a substantially closed conveying surface.
44. The modular belt of claim 33, wherein the outermost link end is partly reduced, so that a locking surface surrounds the first transverse opening as a ring segment.
45. The modular belt of claim 33, wherein the outermost link end is designed as a stop cam bearing on a locking surface and reaching outwards with respect to the module, leaving a space corresponding with the transverse opening clear.
46. A pivot rod for coupling belt modules, the pivot rod comprising: a substantially elongated central body portion having a retaining ring, wherein the retaining ring bears a narrowed projection.
47. The pivot rod of claim 46, wherein the central body portion is substantially cylindrical.
48. The pivot rod of claim 46, wherein the projection is substantially cylindrical.
49. The pivot rod of claim 46, wherein the projection extends collinear with the central body portion.
50. The pivot rod of claim 46, wherein the pivot rod is substantially rotationally symmetrical.
51. The pivot rod of claim 46, wherein the retaining ring tapers from the projection towards the central body portion.
Type: Application
Filed: Aug 4, 2006
Publication Date: Nov 30, 2006
Inventor: Michal Krisl (Muttenz)
Application Number: 11/499,409
International Classification: B65G 17/38 (20060101);