Hybrid drive component

Information

  • Patent Grant
  • 11333235
  • Patent Number
    11,333,235
  • Date Filed
    Friday, June 14, 2019
    5 years ago
  • Date Issued
    Tuesday, May 17, 2022
    2 years ago
Abstract
A hybrid drive component, such as a pulley, a drive sprocket, or an idler is composed of metal and composite material. The drive component manufacturing methods extend the overall life of the pulley while also reducing material usage and product weight thereby making the application more efficient. The drive component includes a drive element, a hub/bearing element and a connecting element. The connecting element is a molded construction that interconnects the drive element and the hub element.
Description
BACKGROUND OF THE INVENTION

The present invention relates to rotary drive transmission components, and more particularly to pulleys and drive wheels.


Common pulley manufacturing methods utilize stamped components which require part specific stamping dies that are costly to design, manufacture, and maintain. These stamped components are then assembled with welds and/or rivets using complex custom-built assembly equipment with long setup times. Some methods also require welding which creates heat distortion of the pulley and limits options for applying finishes to the final product.


These manufacturing methods for pulleys negatively affect the life expectancy and efficiency of the application in which they are utilized by inducing vibration, wear, corrosion, and increased rolling resistance. The overall mass of the pulley can also reduce the efficiency of the application as well as its ease of transportation.


Likewise, other pulley manufacturing methods are heavier or more prone to wear and conditions that degrade overall product life. Many of these methods also cause variations in how the bearing is captured resulting in excessive play or rolling resistance due to reduction in radial clearances of the bearing which ultimately leads to premature failures.


As can be seen, there is a need for an improved apparatus and methods to extend the overall life of the pulley while also reducing material usage and product weight thereby making the application more efficient.


SUMMARY OF THE INVENTION

In one aspect of the present invention a drive component is disclosed. The drive component includes a hub element, configured for axial rotation in conjunction with a shaft. A drive element has a drive face defined around an outer circumference of a central plate. The central plate has a central opening at a rotational axis of the drive component. A plurality of through holes are defined through a face of the central plate in a radially disposed spaced apart relation about the central opening. A connecting element formed of a moldable material interconnects the drive element and the hub element. The moldable material is formed around a portion of the central plate and through the through holes defined in the face of the drive element and around an outer face of the hub element.


In some embodiments, the hub element includes a cylindrical hub having a plurality of cogs radially emanating from the outer face of the hub element. Preferably, the cogs are disposed in a spaced apart relation around the outer face of the hub element. The ID of the hub may have additional features such as a keyway or spline for engagement with a shaft.


In other embodiments, a plurality of protrusions extend from at least one side of the central face of the drive element. The plurality of protrusions may be defined in a radially disposed spaced apart relation. Preferably, the plurality of protrusions are interposed between the plurality of through holes.


In yet other embodiments, a plurality of in indentations are defined in an opposite face from the protrusions.


In other embodiments, the hub element comprises a bearing.


In other aspects of the invention, a drive component has a hub element, configured for axial rotation in conjunction with a shaft. A drive element has a drive face defined around an outer circumference of a central plate. The central plate having a central opening at a rotational axis of the drive component. A plurality of through holes are defined through a face of the central plate in a radially disposed spaced apart relation about the central opening. A molded connecting element interconnects the drive element and the hub element. The molded connecting element extends through the plurality of through holes and around an outer face of the hub element.


In some embodiments, the drive component also includes a protrusion extending from the central plate, wherein the protrusion is molded into a body of the molded connecting element.


In other embodiments, an indentation is defined in an opposite side of the central plate from the protrusion.


In other embodiments, the hub element is a bearing assembly, wherein the molded connecting element is formed about an outer race of the bearing assembly.


In yet other embodiments, the hub element includes a cog protruding from and outer face of the hub element. The molded connecting element is formed about the cog.


These and other features, aspects and advantages of the present invention will become better understood with reference to the following drawings, description and claims.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is three perspective view of the hybrid drive pulley with the center view being a cross section;



FIG. 2 is a upper left cross section perspective view of the hybrid drive pulley components;



FIG. 3 is a perspective view of the drive element with the center view being a cross section;



FIG. 4 is a cross section view of the connecting element;



FIG. 4a is a perspective view of a cross section of the connecting element at a left side of the hub recess shown in FIG. 4;



FIG. 4b is a perspective view of a cross section of the connecting element at a right side of the hub recess shown in FIG. 4;



FIG. 5 is a perspective view of the drive hub;



FIG. 6 is a perspective view of the hybrid idler pulley with the center view being a cross section; and



FIG. 7 is a perspective cross section side view of the hybrid idler pulley.





DETAILED DESCRIPTION OF THE INVENTION

The following detailed description is of the best currently contemplated modes of carrying out exemplary embodiments of the invention. The description is not to be taken in a limiting sense, but is made merely for the purpose of illustrating the general principles of the invention.


Broadly, embodiments of the present invention provide an improved apparatus and methods for rotary drive components, such as a drive pulley or an idler. An apparatus according to some aspects of the invention includes a hybrid, that is, a combination of a metallic component with a molded composite material in the construction of the rotary drive component.


As seen in reference to the drawings of FIGS. 1-7 a rotary drive component 10, such as a pulley or idler roller is shown. The rotary drive component 10 includes a hub element 13 or 24, a connecting element 12, and a drive element 11.


The hub element, which may be one of a drive hub 13 for power transmission or a bearing assembly 24 for an idler configuration. The hub element 13 or 24 is surrounded by a connecting element 12 formed by an over mold composite material, such as a nylon, a plastic or other suitable material that interconnects the hub element 13 or 24 and the drive element 11.


As best seen in reference to FIG. 5, the hub element 13 may be formed as a cylindrical hub having a plurality of cogs 22, or protrusions, radially emanating from a surface of the hub element 13. The cogs 22 are disposed in a spaced apart relation around an outer circumference of the hub 13. The hub element 13 may also include a ID feature 23 for receiving an alignment spline, or key stock, or other engagement means to connect the rotary drive component 10 to a shaft. Depending on the application, the hub 13, cogs 22 may be positioned at a mid point of the hub element 13 or they may be offset so that a portion of the hub element 13 protrudes from a face of the drive component 10, as seen in reference to FIG. 2.


As best seen in reference to FIG. 7, the hub element 13 may alternatively be a bearing assembly 24. The bearing assembly 24 includes an outer race 25, an inner race 27. A plurality of rollers or ball bearings 26 may be carried between the outer race 25 and the inner race 27.


The drive element 11 may include a drive face 18 defined around an outer circumference of the drive element 11. In the non-limiting embodiments shown, the drive face 18 is formed as a pulley face for carrying a V-belt in a belt driven mechanism. In other embodiments, the drive face 18 may be shaped for carrying a serpentine belt. The drive face 18 may be smooth, or it may have circumferential or transverse ribs for engagement with the serpentine belt. As will be appreciated from the present disclosure, the drive face 18 may also include a toothed configuration for carrying a chain in a chain drive mechanism. The drive face 11, is carried on a central plate 14 having a central opening defined at the rotational axis of the drive component 10.


A plurality of through holes 15 are defined through the face of the central plate in a radially disposed spaced apart relation about the through hole. A plurality of protrusions 16 may also be defined in at least one face of the central plate 14. In some embodiments an indentation 17 is defined in the central plate 14 opposite the protrusions 16. The protrusions 16 and indentations 17, when present, are defined in a radially disposed, spaced apart relation about the through hole. The protrusions 16 and indentations 17 may be interposed between the plurality of through holes 15.


The connecting element 12 is formed of a moldable material and interconnects the drive element 11 and the hub element 13 or 24. The connecting element 12 is molded, such as via injection molding, so that the material flows through the apertures 15 defined through the face 14 of the drive element 11. Because the material filling the apertures 15 are susceptible to shearing by action of the drive element 11 in conveyance of torque from the drive element 11, the moldable material that formed around the plurality of protrusions 16 and filling recessed areas 17 provide an additional torque transmission element that acts on the body of the connecting element 12 providing enhanced torque transmission capabilities.


Likewise, the moldable material forms around the hub element 13. In the case of a drive hub 13, the moldable material of the connecting element forms around the cogs 22 of the drive hub 13 for conveying torque to/from the shaft upon which the drive hub 13 is attached. In the case of a bearing 24, the moldable material of the connecting element 12 is formed around at least one side of the outer race 25 of the bearing 24.


As indicated previously, other pulley manufacturing methods are more prone to premature failures in use or high scrap rates during manufacturing due to thickness variation in raw materials and material composition. In other aspects of the invention, a method of making the drive component 10 extends the life of the drive component 10 while also reducing material usage and product weight thereby making the application more efficient.


The drive element 11 may be formed from a stamped blank of a sheet of metal material, such as steel or aluminum. The blank may be formed in a stamping press or a split/spin forming machine to create the desired drive element 11 shape. The drive element 11 may be coated as needed, such as a paint, a plating, or other finish.


The formed drive element is placed into a die cavity in an injection molding machine. The hub element 13 is placed into a center of the die cavity in the injection molding machine. An injection molding cycle injects the composite material (nylon, plastic or other) into the die cavity to over-mold the bearing/hub 24, 13 and formed drive element 11. The molded material is allowed to cool in the die. The finished hybrid pulley may then be ejected from the die.


As will be appreciated, the present invention can be used to drive, apply tension or change direction to belt, rope, cable, or chain systems on all new applications and can also be used as a direct replacement to existing pulleys manufactured using previous manufacturing methods.


It should be understood, of course, that the foregoing relates to exemplary embodiments of the invention and that modifications may be made without departing from the spirit and scope of the invention as set forth herein.

Claims
  • 1. A drive component, comprising: a hub element, configured for axial rotation about a shaft;a drive element having a drive face defined around an outer circumference of a central plate having a central opening at a rotational axis of the drive component, wherein a plurality of through holes are defined through a face of the central plate in a radially disposed spaced apart relation about the central opening, wherein a plurality of protrusions extend from at least one side of the central plate of the drive element; anda connecting element formed of a moldable material that interconnects the drive element and the hub element wherein the moldable material: is formed around a portion of the central plate; is formed through the plurality of through holes defined in the face of the drive element; is formed over the plurality of protrusions in the at least one side of the central plate of the drive element; and is formed around an outer face of the hub element.
  • 2. The drive component of claim 1, wherein the hub element further comprises: a cylindrical hub having a plurality of cogs radially emanating from the outer face of the hub element.
  • 3. The drive component of claim 2, wherein the cogs are disposed in a spaced apart relation around the outer face of the hub element.
  • 4. The drive component of claim 3, wherein the hub element further comprises: an ID feature for receiving an alignment key to connect the drive component to the shaft.
  • 5. The drive component of claim 1, wherein the plurality of protrusions are defined in a radially disposed spaced apart relation.
  • 6. The drive component of claim 5, wherein the plurality of protrusions are interposed between the plurality of through holes.
  • 7. The drive component of claim 1, further comprising: a plurality of indentations defined in an opposite face from the protrusions.
  • 8. The drive component of claim 1, wherein the hub element comprises a bearing.
  • 9. A drive component, comprising: a hub element, configured for axial rotation about a shaft;a drive element having a drive face defined around an outer circumference of a central plate having a central opening at a rotational axis of the drive component, wherein a plurality of through holes are defined through a face of the central plate in a radially disposed spaced apart relation about the central opening, and wherein a plurality of protrusions extend from at least one side of the central plate of the drive element; anda molded connecting element interconnecting the drive element and the hub element, wherein the molded connecting element extends through the plurality of through holes, is formed over the plurality of protrusions in the at least one side of the central plate of the drive element, and extends around an outer face of the hub element.
  • 10. The drive component of claim 9, further comprising: an indentation defined in an opposite side of the central plate from the protrusion.
  • 11. The drive component of claim 10, wherein the hub element further comprises: a bearing assembly, wherein the molded connecting element is formed about an outer race of the bearing assembly.
  • 12. The drive component of claim 10, wherein the hub element further comprises: a cog protruding from an outer face of the hub element, wherein the molded connecting element is formed around the cog.
US Referenced Citations (67)
Number Name Date Kind
3076352 Larsh Feb 1963 A
3541873 Kramer Nov 1970 A
3592511 Hudelson Jul 1971 A
3610066 Richlik Oct 1971 A
3651705 Bertinetti Mar 1972 A
3666322 Pickron May 1972 A
3772928 Gobeille Nov 1973 A
3946618 Green Mar 1976 A
3990136 Hishida Nov 1976 A
4098137 Yaros Jul 1978 A
4366609 Speer Jan 1983 A
4468210 McCutchan, Jr. Aug 1984 A
4473363 McCutchan, Jr. Sep 1984 A
4589860 Brandenstein May 1986 A
4668209 Kyoosei May 1987 A
4717370 Rohrig Jan 1988 A
4722722 Rampe Feb 1988 A
4881426 Serizawa Nov 1989 A
4946427 Rampe Aug 1990 A
5069654 Rampe Dec 1991 A
5074828 Ellis Dec 1991 A
5098346 Redmond Mar 1992 A
5120279 Rabe Jun 1992 A
5308289 Funahashi May 1994 A
5368525 Funahashi Nov 1994 A
5507698 Kuribayashi Apr 1996 A
5728343 Ueno Mar 1998 A
5797819 Arai Aug 1998 A
5846470 Funatsu Dec 1998 A
5852951 Santi Dec 1998 A
5931755 Mailey Aug 1999 A
6099426 Nakagomi Aug 2000 A
6200513 Emmett Mar 2001 B1
6355195 Funatsu Mar 2002 B1
6432343 Zollondz Aug 2002 B1
6482140 Takatsu Nov 2002 B1
6716907 Asai Apr 2004 B2
6817959 Blaimschein Nov 2004 B1
6881166 Burkhardt Apr 2005 B1
7297081 Eck Nov 2007 B2
7452926 Arai Nov 2008 B2
7824287 Nonoshita Nov 2010 B2
7967709 Emura Jun 2011 B2
8308591 Hamada Nov 2012 B2
8962734 Arai Feb 2015 B2
9011282 Staples Apr 2015 B2
9416863 Schaefer Aug 2016 B2
9841096 Bell Dec 2017 B2
10302184 Yokozawa May 2019 B2
10830329 Hirose Nov 2020 B2
11009112 Moore May 2021 B2
20030199351 Nichols Oct 2003 A1
20050049096 Eck Mar 2005 A1
20050282672 Nonoshita Dec 2005 A1
20060160647 Swane Jul 2006 A1
20060167166 Koizumi Jul 2006 A1
20070232427 Ueno Oct 2007 A1
20070272781 Tsuda Nov 2007 A1
20080090687 Eck Apr 2008 A1
20090048392 Tsuda Feb 2009 A1
20110300979 Dutil Dec 2011 A1
20140206486 Fuchs Jul 2014 A1
20140357439 Schaefer Dec 2014 A1
20160003340 Crump Jan 2016 A1
20170204907 Zhao Jul 2017 A1
20170284528 Yokozawa Oct 2017 A1
20170292598 Moore Oct 2017 A1
Related Publications (1)
Number Date Country
20200393032 A1 Dec 2020 US