This disclosure relates generally to mechanical assemblies including a rotating tapered shaft and structures mounted to the tapered shaft. Embodiments include a hub adapter to couple a gear to a tapered drive shaft of a pump.
Mechanical assemblies including tapered shafts and structures mounted to the tapered shafts are generally known and disclosed, for example, by the Alborn U.S. Pat. No. 1,790,737 and the Killingsworth U.S. Pat. No. 2,543,854. These patents disclose axles having tapered end portions, and wheels having hubs. The wheels are mounted to the axles with the hubs inserted onto the tapered end portions of the axles. Nuts engaging threaded ends of the axles secure the hubs to the axles.
High pressure fuel pump assemblies including tapered shafts and drive gears mounted to the tapered shafts are also known. In these assemblies the end portions of the fuel pump drive shafts are tapered and include threaded stubs at their ends. Hubs of the gears have tapered central openings that are inserted onto the tapered end portions of the shafts. Nuts inserted onto the threaded stubs of the drive shafts secure the gears onto the drive shafts. Openings through the gear hubs that are aligned with openings in the drive shafts can receive pins to prevent the gear hubs from rotating on the drive shafts as the nuts are installed.
There remains, however, a continuing need for assemblies including rotating tapered shafts and structures mounted to the shafts. Such assemblies that are efficient to manufacture, assemble and/or service would be especially desirable.
Disclosed embodiments include assemblies comprising rotating tapered shafts and structures mounted to the shafts. The assemblies are efficient to manufacture, assemble and/or service.
One example is an assembly comprising a rotating shaft having a tapered end portion; a hub adapter including a first mounting portion comprising a tapered opening and a second mounting portion extending from the first mounting portion and configured to receive a drive member, wherein the tapered opening is configured to be inserted onto and engaged with the tapered end portion of the rotating shaft; and an adapter fastener structure to secure the hub adapter to the rotating shaft.
In embodiments, the fastener structure comprises a threaded stub on the tapered end portion of the rotating shaft, wherein the threaded stub extends through the opening of the hub adapter; and a threaded nut installed on the threaded stud.
Embodiments further include a first adapter alignment structure on the hub adapter; and a second adapter alignment structure on the rotating shaft, wherein the first adapter alignment structure and the second adapter alignment structure cooperate to enable a predetermined registration of the hub adapter on the rotating shaft. The first adapter alignment structure may include a keyway; and the second adapter alignment structure may include a pin receivable by the keyway. In embodiments, the first adapter alignment structure includes a first alignment opening extending through a portion of the hub adapter and into the tapered opening; the second adapter alignment structure includes a second alignment opening extending into the tapered end portion of the rotating shaft, wherein the first and second adapter alignment openings can be aligned; and the assembly further includes a pin extending between the first alignment opening and the second alignment opening.
In embodiments, the first mounting portion of the hub adapter further includes a flange extending into the tapered opening and configured to engage the tapered end portion of the rotating shaft. The tapered end portion of the rotating shaft may include a shoulder; and the flange of the hub adapter may engage the shoulder of the rotating shaft.
Embodiments may further comprise a drive structure (e.g., a drive or driven member) mounted to the second mounting portion of the hub adapter. The drive structure may comprise a gear. Embodiments further comprise one or more drive fastener structures to secure the drive structure to the second mounting portion of the hub adapter. The one or more drive fastener structures may comprise a threaded opening in the second mounting portion of the hub adapter; and a threaded bolt inserted in the threaded opening. In embodiments, the drive structure includes an opening aligned with each threaded opening in the second mounting portion; and each threaded bolt extends through an associated opening in the drive member and into engagement with the drive member. Embodiments may also include a plurality of the drive member fastener structures at circumferentially spaced-apart locations on the second mounting portion around the tapered opening. Embodiments may further include a first location opening extending through the drive structure; a second location opening extending into the second mounting portion of the hub adapter, wherein the first and second location openings can be aligned; and a locating pin extending between the first location opening and the second location opening.
Embodiments of the assembly include a high pressure pump such as a fuel pump and the rotating shaft is a high pressure pump drive shaft. The drive structure may comprise a gear.
Another example is a pump assembly, comprising a pump including a rotating drive shaft having a tapered end portion; a first alignment structure on the drive shaft; a hub adapter including a first mounting portion comprising a tapered opening and a second mounting portion extending from the first mounting portion and configured to receive a drive member, wherein the tapered opening is configured to be inserted onto and engaged with the tapered end portion of the rotating shaft; a second alignment structure on the hub adapter, wherein the first alignment structure and the second alignment structure cooperate to enable a predetermined registration of the hub adapter on the rotating shaft; and a fastener structure to secure the hub adapter to the rotating shaft.
In embodiments, the first alignment structure includes a pin; and the second alignment structure includes a keyway receivable by the pin. Embodiments may further include a registration structure on the hub adapter to enable a predetermined registration of a drive member to the hub adapter. A drive member may be mounted to the hub adapter, and may comprise a gear.
Embodiments of the assembly further include a gear registration structure on one or both of the hub adapter and the gear to enable a predetermined registration of the gear to the hub adapter. The gear registration structure may include asymmetrically located fastener-receiving openings on one or both of the gear and the hub adapter.
Embodiments of the pump assembly are configured for mounting to an engine block; and the hub adapter further comprises alignment indicia for enabling alignment of the hub adapter to the engine block. Embodiments may include alignment indicia on the gear for enabling alignment of the gear.
As perhaps best shown in
Tapered hub adapter 10 includes a first or shaft mounting portion 30 and a second or drive mounting portion 32 that is peripheral to the shaft mounting portion. The shaft mounting portion 30 includes a tapered surface 34 defining a tapered opening 36. The tapered opening 36 tapers in a manner that is complimentary to the taper of the tapered end portion 16 of the drive shaft 14. The tapered surface 34 of the hub adapter 10 is thereby configured to mate with and engage the tapered end portion 16 of the drive shaft 14.
Drive mounting portion 32 includes portions extending circumferentially around the shaft mounting portion 30. In the illustrated embodiments the drive mounting portion 32 is continuous. Drive mounting portion 32 is configured to receive the drive gear 15 (or other drive or driven structures in other embodiments). In the illustrated embodiments the drive mounting portion 32 includes a plurality of threaded openings 40 at circumferentially spaced-apart locations. As described in greater detail below, the threaded openings 40 form part of a fastener structure used to join the hub adapter 10 to the drive gear 15 in embodiments. Embodiments of the hub adapter 10 include a location opening 42 extending into the drive mounting portion 32 on a side opposite the side facing the high pressure pump 12. As described in greater detail below, the location opening 42 may be used to join the hub adapter 12 and drive gear 15.
Tapered hub adapter 10 is assembled onto the high pressure pump 12 by sliding the shaft mounting portion 32 over the drive shaft 14 (i.e., with the tapered end portion 16 of the drive shaft extending into the tapered opening 36 of the hub adapter). The tapered surface 34 of the hub adapter 10 thereby engages the surface 17 of the tapered end portion 16 of the drive shaft 14 for a friction fit. With the hub adapter 10 mounted on the drive shaft 14, the threaded stub 20 of the drive shaft will extend through the tapered opening 36 of the mounting portion 30. A threaded nut 46 can be inserted onto the threaded stub 20 to secure the hub adapter 10 to the drive shaft 14. In other embodiments, other fastener structures are used to secure the hub adapter 10 to the drive shaft 14 (e.g., a bolt screwed into a threaded opening in the drive shaft 14).
Drive gear 15 can be assembled onto the drive mounting portion 32 of the hub adapter 10. Embodiments of the drive gear 15 may include a location opening (not shown) that extends through the gear (i.e., in a direction generally perpendicular to the rotational axis of the gear). The location opening is positioned on the drive gear 15 to align with the location opening 42 in the hub adapter 10 when the drive gear is properly located on the hub adapter. In embodiments that include the location opening in the drive gear 15 and location opening 42 in the hub adapter 10, the location openings may be aligned, and a dowel pin (not shown) inserted into or through the location openings with portions of the pin extending into both the gear and hub adapter to locate the gear and hub adapter with respect to one another. Drive gear 15 includes openings 48 that extend through the gear and are aligned with the threaded openings 40 in the hub adapter 10. Threaded bolts 50 are inserted though the openings 48 and into corresponding threaded openings 40 in the hub adapter 10 to secure the drive gear 15 to the hub adapter. In other embodiments, other fastener structures are used to secure the drive gear 15 to the hub adapter 10 (e.g., treaded studs extending from the hub adapter through holes in the drive gear, with threaded nuts on the studs).
Hub adapters such as 10 may provide important advantages. For example, they can couple torque between a drive or driven source and a drive shaft (e.g., from a gear train to a high pressure pump in the illustrated embodiments). Flat drive members such as the drive gear can be effectively coupled to tapered shafts. Serviceability of the drive source-to-drive shaft joint is enhanced as the bolts or other fasteners that secure the gear or other drive structure to the hub adapter may have lower nominal torque than a single nut (e.g., if the drive gear is mounted directly to the drive shaft). It allows the drive gear or other drive member to be removed and serviced without servicing the tapered drive shaft joint. It may also prevent field related issues to slip issues from servicing the taper joint by making the taper a non-service item installed during the driven member (e.g., high pressure pump) assembly.
As shown in
The illustrated embodiments of tapered shaft hub adapter 110 also include one or more structures shown as openings or notches 166 (two are shown). The notches 166 function as structures on the hub adapter 110 that can be engaged by tooling (not shown) during the assembly or installation of the hub adapter onto the pump 112 to radially hold the hub adapter with respect to the pump and resist torque. In the illustrated embodiments the notches 166 are shown on the peripheral edge of the drive mounting portion 132 of the hub adapter 110. As shown in
In embodiments, the hub adapter 110 and/or gear 115 are configured so that the gear can be installed or assembled onto the hub adapter in a matter that registers or times the position of the gear on the hub adapter (and thereby to the operating stroke of the pump 112). In the embodiments shown in
The embodiments of drive gear 115 illustrated in
Embodiments of hub adapter 110, pump 112 and gear 115 offer important advantages. For example, the hub adapter 110 may be installed on the pump 112 to form an assembly during a first manufacturing operation (e.g., by a first entity), and later assembled onto the engine block 170 during a second manufacturing operation (e.g., by a second entity). The assembly including the pump 112 and hub adapter 110 can thereby be efficiently assembled onto the engine block 170. Similarly, the drive gear 115 can be efficiently assembled onto the assembly of the pump 112 and hub adapter 110. The timing and registration indicia and features, such as the dowel pin 160 and keyway 162, asymmetrically arranged openings 140 on the hub adapter 110 and corresponding openings 148 on the drive gear 115, and alignment indicia 164, 172 and 176, enable the efficient and effective timing or registration of the pump 112 to the drive gear 115 and/or other drive train components during the assembly process.
It is to be understood that the above description is intended to be illustrative, and not restrictive. Many other embodiments will be apparent to those of skill in the art upon reading and understanding the above description. For example, it is contemplated that features described in association with one embodiment are optionally employed in addition or as an alternative to features described in connection with another embodiment. The scope of the invention should, therefore, be determined with reference to the appended claims, along with the full scope of equivalents to which such claims are entitled.
Filing Document | Filing Date | Country | Kind |
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PCT/US21/64577 | 12/21/2021 | WO |
Number | Date | Country | |
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63128234 | Dec 2020 | US |