TRACK SHOE ASSEMBLY INCLUDING A SHOE PLATE AND A GROUSER AND RELATED METHOD OF MANUFACTURE
20230105350 · 2023-04-06
Assignee
Inventors
- Eric J. JOHANNSEN (Washington, IL, US)
- Kevin L. STEINER (Tremont, IL, US)
- Jason L. SEBRIGHT (Chillicothe, IL, US)
- Donovan S. CLARKE (East Peoria, IL, US)
Cpc classification
International classification
Abstract
In at least one aspect, a track shoe assembly includes a shoe plate having a shoe plate body including at least one shoe plate attachment surface defining a groove extending along a width of the shoe plate body, and a grouser having a grouser body having at least one grouser attachment surface, a cross-sectional shape of the at least one grouser attachment surface being the same as a cross-sectional shape of the groove defined by the at least one shoe plate attachment surface.
Claims
1. A track shoe assembly comprising: a shoe plate having a shoe plate body including at least one shoe plate attachment surface defining a groove extending along a width of the shoe plate body; and a grouser having a grouser body having at least one grouser attachment surface, a cross-sectional shape of the at least one grouser attachment surface being the same as a cross-sectional shape of the groove defined by the at least one shoe plate attachment surface.
2. The track shoe assembly according to claim 1, wherein the at least one grouser attachment surface is attached to the groove in the shoe plate body by welding.
3. The track shoe assembly according to claim 2, wherein the welding used to attach the at least one grouser attachment surface to the groove in the shoe plate body is one of arc welding and friction welding.
4. The track shoe assembly according to claim 3, wherein the welding is arc welding, and includes one or metal inert gas (MIG) arc welding, tungsten inert gas (TIG) welding, and shielded metal arc welding (SMAW).
5. The track shoe assembly according to claim 2, wherein an entire length of the groove in the shoe plate body and an entire length of the at least one grouser attachment surface are welded together.
6. The track shoe assembly according to claim 1, wherein each of the at least one attachment surface of the shoe plate body and the at least one attachment surface of the grouser body includes a planar surface and at least two angled surfaces adjacent to the planar surface.
7. The track shoe assembly according to claim 6, wherein an edge between each planar surface and each of the two angled surfaces is a chamfered edge.
8. The track shoe assembly according to claim 6, wherein an edge between each planar surface and each of the two angled surfaces is a rounded edge.
9. The track shoe assembly according to claim 1, wherein each of the at least one attachment surface of the shoe plate body and the at least one attachment surface of the grouser body includes a curved surface.
10. The track shoe assembly according to claim 8, wherein a radius of curvature of the curved surface of the shoe plate body is approximately equal to or greater than a radius of curvature of the curved surface of the grouser body.
11. A track chain assembly comprising: a plurality of track links; a plurality of track shoe assemblies, including the track shoe assembly according to claim 1; and a plurality of track pins configured to attach the plurality of track links to the plurality of track shoe assemblies.
12. A track shoe assembly comprising: a shoe plate having a shoe plate body including at least one shoe plate attachment surface extending along a width of the shoe plate body; and a grouser having a grouser body having at least one grouser attachment surface configured to be attached to the at least one shoe plate attachment surface, wherein a ratio of a cross-sectional area of an end surface of the grouser body to a length of the shoe plate body is in the range of 25 mm to 210 mm.
13. The track shoe assembly according to claim 12, wherein the at least one grouser attachment surface is attached to the at least one shoe plate attachment surface by welding, including one of arc welding and friction welding.
14. The track shoe assembly according to claim 12, wherein the at least one grouser attachment surface is attached to the at least one shoe plate attachment surface by one of metal inert gas (MIG) arc welding, tungsten inert gas (TIG) welding, and shielded metal arc welding (SMAW).
15. The track shoe assembly according to claim 12, wherein the at least one grouser attachment surface is attached to the at least one shoe plate attachment surface by brazing.
16. A track chain assembly comprising: a plurality of track links; a plurality of track shoe assemblies, including the track shoe assembly according to claim 12; and a plurality of track pins configured to attach the plurality of track links to the plurality of track shoe assemblies.
17. A method of manufacturing a track shoe assembly, the method comprising: forming a shoe plate having a shoe plate body including at least one shoe plate attachment surface extending along a width of the shoe plate body; forming a grouser body having at least one grouser attachment surface configured to be attached to the at least one shoe plate attachment surface, wherein a ratio of a cross-sectional area of an end surface of the grouser body to a length of the shoe plate body is in the range of 25 mm to 210 mm; and attaching the grouser to the shoe plate to form the track shoe assembly.
18. The method according to claim 17, wherein the attaching the grouser to the shoe plate includes welding the at least one grouser attachment surface to the at least one shoe plate attachment surface, the welding including one of arc welding and friction welding.
19. The method according to claim 17, wherein the attaching the grouser to the shoe plate includes welding the at least one grouser attachment surface to the at least one shoe plate attachment surface, the welding including one of metal inert gas (MIG) arc welding, tungsten inert gas (TIG) welding, and shielded metal arc welding (SMAW).
20. The method according to claim 17, wherein the attaching the grouser to the shoe plate includes brazing the at least one grouser attachment surface to the shoe plate attachment surface.
21. A track shoe assembly comprising: a shoe plate having a shoe plate body including at least one shoe plate attachment surface extending along a width of the shoe plate body, the shoe plate body being formed of a shoe plate material; and a grouser having a grouser body having at least one grouser attachment surface, the grouser body being formed of a grouser material, and the grouser material being different than the shoe plate material.
22. The track shoe assembly according to claim 21, wherein the at least one grouser attachment surface is attached to the at least one shoe plate attachment surface by welding, including one of arc welding and friction welding.
23. The track shoe assembly according to claim 21, wherein the at least one grouser attachment surface is attached to the at least one shoe plate attachment surface by welding, including one of metal inert gas (MIG) arc welding, tungsten inert gas (TIG) welding, and shielded metal arc welding (SMAW).
24. The track shoe assembly according to claim 21, wherein the at least one grouser attachment surface is attached to the at least one shoe plate attachment surface by brazing.
25. The track shoe assembly according to claim 21, wherein a hardness of the grouser material is in the range of RKW C45 to RKW C55, and a hardness of the shoe plate material is in the range of RKW C35 to RKW C45.
26. A track chain assembly comprising: a plurality of track links; a plurality of track shoe assemblies, including the track shoe assembly according to claim 21; and a plurality of track pins configured to attach the plurality of track links to the plurality of track shoe assemblies.
27. A track shoe assembly comprising: a shoe plate having a shoe plate body including at least one shoe plate attachment surface extending along a width of the shoe plate body, the shoe plate body being formed of a shoe plate material; and a grouser having a grouser body having at least one grouser attachment surface, configured to be attached to the at least one shoe plate attachment surface, the grouser body being formed of a grouser material, wherein a hardness of the grouser material is greater than a hardness of the shoe plate material.
28. The track shoe assembly according to claim 27, wherein a hardness of the grouser material is in the range of RKW C45 to RKW C55, and a hardness of the shoe plate material is in the range of RKW C35 to RKW C45.
29. The track shoe assembly according to claim 27, wherein the at least one grouser attachment surface is attached to the at least one shoe plate attachment surface by welding, including one of arc welding and friction welding.
30. The track shoe assembly according to claim 27, wherein the at least one grouser attachment surface is attached to the at least one shoe plate attachment surface by welding, including one of metal inert gas (MIG) arc welding, tungsten inert gas (TIG) welding, and shielded metal arc welding (SMAW).
31. The track shoe assembly according to claim 27, wherein the grouser material and the shoe plate material are the same material.
32. A track chain assembly comprising: a plurality of track links; a plurality of track shoe assemblies, including the track shoe assembly according to claim 27; and a plurality of track pins, configured to attach the plurality of track links to the plurality of track shoe assemblies.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate various exemplary embodiments and together with the description, serve to explain the principles of the disclosed embodiments.
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF EMBODIMENTS
[0020] Both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the features, as claimed. As used herein, the terms “comprising,” “having,” including,” and any variations thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements, but may include other elements not expressly listed or inherent to such a process, method, article, or apparatus. In addition, in this disclosure, relative terms, such as, for example, “about,” “generally, “substantially,” and “approximately” are used to indicate a possible variation of ±10% in the stated value. Further, in this disclosure, references to widths, depths, and lengths provided with respect to various portions and/or surfaces are consistent, i.e., all widths are defined along a Y-axis, all depths are defined along a Z-axis, and all lengths are defined along an X-axis.
[0021]
[0022]
[0023] The front surface 208 and the back surface 210 are on intersecting planes, while the end surface 212 and the other end surface 214 are opposite to each other. Put another way, the distal surface 206 and the planar surface 216 are parallel to each other and to a Z-Y plane, and the end surface 212 and the other end surface 214 are parallel to each other and to an X-Z plane. In addition, the end surface 212 and the other end surface 214 have a trapezoid shape, though the shape of these surfaces is not limited to a trapezoid, and may be any polygon or a shape having one or more curved, curvilinear, and/or flat edges.
[0024] With reference to
[0025] As shown in
[0026] The shoe plate body 220 may also include one curved portion 234 adjacent to the front surface 224, and another curved portion 236 adjacent to the back surface 226. The curved portions 234 and 236 are defined by curves on the distal surface 222 and the proximal surface 228, respectively, as shown in
[0027] The shoe plate body 220 may also include a groove 244, shown in
[0028] With reference to
[0029] The dimensions of the attachment surfaces of the grouser body 204 and the dimensions of the attachment surfaces of the groove 244 of the shoe plate body 220 may be approximately equal to each other. More specifically, a width and a depth of the planar surface 216 of the grouser body 204 may be approximately equal to a width and a depth of the planar surface 246 of the shoe plate body 220. In addition, a width and a measured distance within an X-Z plane of the angled surfaces 218 of the grouser body 204 may be approximately equal to the corresponding dimensions of the angled surfaces 248 of the shoe plate body 220. By virtue of the approximately equal dimensions of these attachment surfaces, welding, including, in particular, linear friction welding can be performed to attach the grouser body 204 to the shoe plate body 220 at the attachment surfaces.
[0030] In an alternative embodiment, the plurality of attachment surfaces of the grouser body 204 may form a groove within the grouser body 204, and the plurality of attachments surfaces of the shoe plate body 220 may form a protrusion, instead of the groove 244 shown in
[0031] With reference to
[0032] A material used to form the grouser 200 may be the same or different than a material used to form the shoe plate 202. In the embodiment in which the materials used to form the grouser 200 and the shoe plate 202 are the same material, the material may have different hardnesses, such that a hardness of the material that forms the grouser 200 is greater than a hardness of the material that forms the shoe plate 202, as measured by Rockwell hardness (RKW). Alternatively, in the embodiment in which the materials used to form the grouser 200 and the shoe plate 202 are different, as depicted in
[0033] The grouser 200 and the shoe plate 202 are configured to be securely attached to each other by welding, for example, as discussed in more detail with reference to
[0034] With reference to
[0035] The grouser 200 extends outward from the distal surface 222 of the shoe plate body 220, so that, when the track shoe assembly 120 is mounted on the track chain 118 of the track assembly 110, shown in
INDUSTRIAL APPLICABILITY
[0036] The grouser 200 and shoe plate 202 of the present disclosure can provide for a relatively stronger and longer-lasting (that is, a longer use life) track shoe assembly 120 of a track assembly 110 of a track-type vehicle 100, such as the track-type tractor shown in
[0037]
[0038] In addition, the method 500 may include a step 504 of forming a grouser 200 having a grouser body 204 having attachment surfaces, including a planar surface 216 and at least two angled surfaces 218 configured to fit within the groove 244 of the shoe plate body 220. Forming the grouser 200 may include rolling a material, such as a high alloy steel, hardened to the RKW C45 to RKW C55 range, for example. Of course, in a case in which a shape of the attachment surfaces of the grouser body 204 differs from the trapezoidal shape shown in
[0039] Finally, the method 500 may include a step 506 of attaching the grouser 200 to the shoe plate 202. Specifically, step 506 may include welding or brazing the attachment surfaces of the grouser body 204 to the attachment surfaces of the shoe plate body 220, with the planar surface 218 of the grouser body 204 being welded to the planar surface 248 of the shoe plate body 220, and the angled surfaces 218 of the grouser body 204 being welded to the angled surfaces 248 of the shoe plate body 220. Welding may include one of arc welding, such as metal inert gas (MIG) arc welding, tungsten inert gas (TIG) welding, and shielded metal arc welding (SMAW), and friction welding, such as linear friction welding. The welding or brazing may be used to attach the surfaces along entire widths thereof, or welding may be used on a portion of the surfaces (that is, not the entirety of the width of the surfaces). Although some examples of particular types of welding are described above, other types of welding may be performed as part of the attaching step of the method 500. Although the method 500 is described as including steps 502 to 506, noted above, the method 500 is not limited to these steps.
[0040] And, although the method 500 includes the steps of forming the groove 244 in the shoe plate body 220, and forming the grouser body 204 to include a plurality of attachment surfaces to fit within the groove 244 of the shoe plate body 220, the method may alternatively include steps of forming a groove in the grouser body 204, and forming the shoe plate body 220 to include a plurality of attachment surfaces to fit within the groove formed in the grouser body 204.
[0041] Other embodiments of the disclosure will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. It is intended that the specification and examples be considered as exemplary only, with a true scope and spirit of the invention being indicated by the following claims.