Hydraulic motors have many different shaft configurations and are used in many different applications. Some shaft configurations include tapered roller bearings, ball bearings, needle bearings and journal bearings. These bearings are used to support the output shaft in the hydraulic motor.
Many applications apply radial loads on the output shaft of the hydraulic motor. As a result, the type of hydraulic motor chosen for an application may depend on the magnitude of the radial load being applied to the output shaft.
Hydraulic motors having journal bearings typically have lower side load capability than hydraulic motors having other types of bearings. While hydraulic motors using journal bearings are typically less expensive than other hydraulic motors using other types of bearings, the use of the other hydraulic motors may be necessitated solely as a result of side load capability. Therefore, it is desired to provide a hydraulic motor having journal bearings with improved side load capability.
An aspect of the present disclosure relates to a fluid device. The fluid device includes a housing defining a central bore, a plurality of commutator holes that extend radially outward from the central bore and a plurality of axial passages in fluid communication with the commutator holes. A fluid displacement assembly is in fluid communication with the housing. The fluid displacement assembly includes a plurality of volume chambers in fluid communication with the axial passages of the housing. An output shaft includes a valving portion disposed in the central bore of the housing. The valving portion includes a first land, a second land and a valving land disposed between the first and second lands. The first land cooperates with the central bore to define a first journal bearing and the second land cooperates with the central bore of the housing to define a second journal bearing. A coating is applied to the first and second lands of the output shaft. The coating includes a polyamide 11 material.
Another aspect of the present disclosure relates to a fluid device. The fluid device includes a housing defining a central bore, a plurality of commutator holes that extend radially outward from the central bore and a plurality of axial passages in fluid communication with the commutator holes. A fluid displacement assembly is in fluid communication with the housing. The fluid displacement assembly includes a plurality of volume chambers in fluid communication with the axial passages of the housing. An output shaft includes a valving portion disposed in the central bore of the housing. The valving portion includes a first land and an oppositely disposed second land. The first land cooperates with the central bore to define a first journal bearing and the second land cooperates with the central bore of the housing to define a second journal bearing. A coating is applied to the first and second lands of the output shaft. The coating includes a material selected from the group consisting of polyamide, polytetrafluoroethylene and combinations thereof.
Another aspect of the present disclosure relates to a fluid device. The fluid device includes a housing defining a central bore, a plurality of commutator holes that extend radially outward from the central bore and a plurality of axial passages in fluid communication with the commutator holes. A fluid displacement assembly is in fluid communication with the housing. The fluid displacement assembly includes a plurality of volume chambers in fluid communication with the axial passages of the housing. An output shaft includes a valving portion disposed in the central bore of the housing. The valving portion includes a first land, a second land and a valving land disposed between the first and second lands. The first land cooperates with the central bore to define a first journal bearing and the second land cooperates with the central bore of the housing to define a second journal bearing. The valving portion of the output shaft defines a first groove disposed between the first land and the valving land and a second groove disposed between the second land and the valving land. The first and second journal bearings are lubricated by fluid from the first and second grooves, respectively, during operation of the fluid device. A coating is applied to the first and second lands and the valving land of the output shaft. The coating includes a material selected from the group consisting of polyamide, polytetrafluoroethylene and combinations thereof.
Another aspect of the present disclosure relates to a method for manufacturing an output shaft for a fluid device. The method includes machining a first land and a second land of a valving portion of an output shaft of a fluid device. The output shaft is heat treated. A first grinding operation is performed on the output shaft. A coating is applied the first land and second land of the output shaft. The coating includes a material selected from the group consisting of polyamide, polytetrafluoroethylene and combinations thereof. A second grinding operation is performed on the first land and the second land of the output shaft.
Another aspect of the present disclosure relates to a method for manufacturing an output shaft for a fluid device. The method includes machining an interface portion, a sealing portion and a valving portion of an output shaft, the sealing portion being disposed between the interface portion and the valving portion, wherein the valving portion includes a first land, a second land and a valving land disposed between the first and second lands. The output shaft is heat treated. A first grinding operation is performed on the output shaft. A coating is applied the first land and second land of the output shaft. The coating includes a polyamide material. A second grinding operation is performed on the first land and the second land of the output shaft following the application of the coating.
Reference will now be made in detail to the exemplary aspects of the present disclosure that are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like structure.
Referring now to
The fluid device 10 includes a body 12. In the depicted embodiment, the body 12 includes a plurality of sections. In the depicted embodiment, the body 12 includes a flange 14, a housing 16, a spacer plate 18, a fluid displacement assembly 20, and an end cap 22. The sections of the body 12 are held together in tight sealing engagement by a plurality of bolts 24.
The housing 16 is made of a metallic material. In the depicted embodiment, the housing 16 is made of a ferrous metal (e.g., grey iron, ductile iron, etc.). The housing 16 includes a first axial end 26 and an oppositely disposed second axial end 28. In the depicted embodiment, the flange 14 abuts the first axial end 26 of the housing 16 while a first face 30 of the spacer plate 18 abuts the second axial end 28. The fluid displacement assembly 20 abuts a second face 32 of the spacer plate 18. In the depicted embodiment, the fluid displacement assembly 20 is a gerolerĀ® assembly. The fluid displacement assembly 20 includes a ring 34, a star 36 and a plurality of rollers 38. The star 36 is disposed in a central opening of the ring 34 and is adapted to obit and rotate about a central axis of the ring 34. The ring 34, star 36 and rollers 38 cooperatively define a plurality of fluid volume chambers 40 that expand and contract as the star 36 orbits and rotates about the central axis of the ring 34.
In the depicted embodiment, the housing 16 defines a fluid inlet port (not shown) and a fluid outlet port 42. The housing 16 defines a central bore 44 that extends through the first and second axial ends 26, 28. The fluid inlet port is in fluid communication with the central bore 44 through a first fluid passage (not shown). The fluid outlet port 42 is in fluid communication with the central bore 44 through a second fluid passage 46.
The housing 16 defines a plurality of commutator holes 48. The commutator holes 48 extend radially outward from the central bore 44. The housing 16 further defines a plurality of axial passages 50 in fluid communication with the plurality of commutator holes 48. The axial passages 50 are in fluid communication with the fluid volume chambers 40 of the fluid displacement assembly 20.
The fluid device 10 further includes an output shaft assembly 52. In the depicted embodiment, the output shaft assembly 52 includes a bearing assembly 54 and an output shaft 56. In the depicted embodiment, the bearing assembly 54 includes a bearing race 58 and a thrust bearing 60.
Referring now to
The output shaft 56 includes an interface portion 64, a sealing portion 66 and a valving portion 68. In the depicted embodiment, the sealing portion 66 is disposed between the interface portion 64 and the valving portion 68.
The interface portion 64 of the output shaft 56 is adapted for coupling to a customer application (e.g., a coupler, a wheel hub, a winch, etc.). The interface portion 64 extends outwardly from the flange 14 of the fluid device 10. In the depicted embodiment, the interface portion 64 defines a keyway 70 that is adapted to receive a shaft key 72.
The sealing portion 66 of the output shaft 56 is operably associated with a shaft seal 74 (shown in
The valving portion 68 of the output shaft 56 is disposed in the central bore 44 of the housing 16. The valving portion 68 includes a first end 76 and an oppositely disposed second end 78. The first end 76 of the valving portion 68 is disposed immediately adjacent to the sealing portion 66.
The valving portion 68 further includes a first land 80, a second land 82 and a valving land 84. The first land 80 is disposed adjacent to the first end 76 while the second land 82 is disposed adjacent to the second end 78. The valving land 84 is disposed between the first and second lands 80, 82.
The valving portion 68 defines a first groove 86 that is disposed between the first land 80 and the valving land 84. The first groove 86 extends circumferentially about the central axis 62 of the output shaft 56. In the depicted embodiment, the first groove 86 is in fluid communication with the first fluid port of the housing 16 when the valving portion 68 of the output shaft 56 is disposed in the central bore 44 of the housing 16.
The valving portion 68 defines a second groove 88 that is disposed between the second land 82 and the valving land 84. The second groove 88 extends circumferentially about the central axis 62 of the output shaft 56. In the depicted embodiment, the second groove 88 is in fluid communication with the second fluid port 52 of the housing 16 when the valving portion 68 of the output shaft 56 is disposed in the central bore 44 of the housing 16.
The valving land 84 of the valving portion 68 defines a first plurality of slots 90 that is in fluid communication with the first groove 86 and a second plurality of slots 92 that is in fluid communication with the second groove 88. The first and second pluralities of slots 90, 92 extend in an axial direction. In the depicted embodiment, the first and second pluralities of slots 90, 92 are alternately disposed about the valving land 84 of the valving portion 68 of the output shaft 56.
As the output shaft 56 rotates in the central bore 44 of the housing 16, the first and second pluralities of slots 90, 92 are in commutating fluid communication with commutator holes 48 in the housing 16. This commutating fluid communication provides selective fluid communication between the first and second fluid ports of the housing 16 and the volume chambers 40 of the fluid displacement assembly 20.
The first land 80 of the output shaft 56 and the central bore 44 of the housing 16 cooperatively define a first journal bearing 94 (shown in
The first and second journal bearings 94, 96 allow the fluid device 10 to function when a radial force F (shown in
Referring now to
In the depicted embodiment, the coating 100 includes a polyamide (PA) material. In one embodiment, the coating 100 includes a polyamide 11 (PA11) material. In one embodiment, the polyamide material is at least about 50% by weight of the coating 100.
In another embodiment, the coating 100 includes a polytetrafluoroethylene (PTFE) material. In one embodiment, the polytetrafluoroethylene material is at least about 50% by weight of the coating 100.
In the subject embodiment, a thickness of the coating 100 at the first and second lands 80, 82 of the output shaft 56 is greater than or equal to about 0.1 mm. In another embodiment, the thickness of the coating 100 at the first and second lands 80, 82 of the output shaft 56 is less than or equal to about 0.2 mm. In another embodiment, the thickness of the coating 100 at the first and second lands 80, 82 of the output shaft 56 is in a range of about 0.1 mm to about 0.2 mm.
Referring now to
As shown in
The coating 100 applied to the output shaft 56 of the fluid device 10 allows for the radial clearance between the first and second lands 80, 82 to be minimized while providing significantly improved side load capability. This minimization of radial clearance allows the fluid device 10 to perform at volumetric efficiencies greater than or equal to the standard fluid device at rated side load capabilities. Thus, the coating 100 provides increased side load capability without sacrificing volumetric efficiency.
Referring now to
In step 204, the output shaft 56 is heat treated to a desired hardness. In step 206, a first grinding operation is performed on the heat treated output shaft 56. In one embodiment, the grinding operation 206 is performed on the outer diameter of the interface portion 64, the sealing portion 66 and the valving portion 68 of the output shaft 56.
After the grinding operation 206, the interface portion 64 and the sealing portion 66 of the output shaft 56 are masked (e.g., concealed or covered) by a covering in step 208. In step 210, the output shaft 56 is coated with the coating 100. In step 210, the coating 100 is applied to the output shaft 56. In the subject embodiment, a portion of the output shaft 56 is masked. Therefore, the coating 100 is only applied to the unmasked portion of the output shaft 56. In the depicted embodiment, the coating 100 is applied to the valving portion 68 of the output shaft 100. In the depicted embodiment, the coating 100 is applied to the first land 80, the second land 82, and the valving land 84 of the output shaft 56. In one embodiment, the coating 100 is sprayed onto the output shaft 56. In another embodiment, the output shaft 56 is dipped into the coating 100.
After the coating 100 has been applied to the output shaft 56, the masking is removed from the output shaft 56 in step 212. In step 214, a second grinding operation is performed on the portion of the output shaft 56 having the coating 100. In the depicted embodiment, the second grinding operation is performed on the first land 80, the second land 82 and the valving land 84. The second grinding operation is adapted to remove excess amounts of the coating 100 from the output shaft 56. In the depicted embodiment, the second grinding operation is adapted to provide a thickness of the coating 100 that is greater than or equal to about 0.1 mm. In another embodiment, the second grinding operation is adapted to provide a thickness of the coating 100 that is less than or equal to about 0.2 mm. In another embodiment, the second grinding operation is adapted to provide a thickness of the coating 100 that is in a range of about 0.1 mm to about 0.2 mm.
Various modifications and alterations of this disclosure will become apparent to those skilled in the art without departing from the scope and spirit of this disclosure, and it should be understood that the scope of this disclosure is not to be unduly limited to the illustrative embodiments set forth herein.
This application is being filed on Aug. 22, 2014, as a PCT International Patent application and claims priority to U.S. Patent Application Serial No. 61/869,348 filed on Aug. 23, 2014, the disclosure of which is incorporated herein by reference in its entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/US2014/052263 | 8/22/2014 | WO | 00 |
Number | Date | Country | |
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61869348 | Aug 2013 | US |