STAMPED PUMP ACTUATOR AND METHOD OF ASSEMBLING SAME
20240018925 ยท 2024-01-18
Inventors
Cpc classification
F02M59/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/8053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/8023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A pump actuator for use between a cam and a pump includes an outer body, an inner body, an axle and a bearing. The outer body has an outer body inner surface. The inner body is received by the outer body. The inner body has an inner body outer surface. The axle is supported by the inner body. The bearing is supported on the axle. The inner body includes at least one stamped feature protruding outwardly from the inner body outer surface. The at least one stamped feature is configured to form an interference fit with the outer body inner surface.
Claims
1. A pump actuator for use between a cam and a pump, the pump actuator comprising: an outer body having an outer body inner surface; an inner body received by the outer body, the inner body having an inner body outer surface; an axle supported by the inner body; and a bearing supported on the axle; wherein the inner body includes at least one stamped feature protruding outwardly from the inner body outer surface, the at least one stamped feature configured to form an interference fit with the outer body inner surface.
2. The pump actuator of claim 1 wherein the at least one stamped feature comprises at least one wedge-shaped geometry having a ramp surface thereon.
3. The pump actuator of claim 1 wherein the at least one stamped feature comprises at least one trapezoidal-shaped geometry having a ramp surface thereon.
4. The pump actuator of claim 1 wherein the at least one stamped feature comprises at least one dimple-shaped geometry having a ramp surface thereon.
5. The pump actuator of claim 1 wherein the at least one stamped feature comprises a plurality of stamped features formed around the inner body.
6. The pump actuator of claim 5 wherein the plurality of stamped features and the outer body inner surface undergo localized elastic deformation.
7. The pump actuator of claim 1 wherein the inner body and the outer bodies are press-fit together.
8. The pump actuator of claim 1 wherein the inner body further includes an angled support web.
9. The pump actuator of claim 1 wherein the plurality of stamped features comprises: a first pair of stamped features having first and second opposing stamped features; and a second pair of stamped features having third and fourth opposing stamped features.
10. A pump actuator for use between a cam and a pump, the pump actuator comprising: an outer body having an outer body inner surface; an inner body received by the outer body, the inner body having an inner body outer surface; an axle supported by the inner body; and a bearing supported on the axle; wherein the inner body includes opposing stamped features protruding outwardly from the inner body outer surface, wherein the opposing stamped features are configured to form an interference fit with the outer body inner surface.
11. The pump actuator of claim 10 wherein the opposing stamped features comprise: a first pair of stamped features having first and second opposing stamped features; and a second pair of stamped features having third and fourth opposing stamped features.
12. The pump actuator of claim 11 wherein each of the stamped features comprises a wedge-shaped geometry having a ramp surface thereon.
13. The pump actuator of claim 11 wherein each of the stamped features comprises a trapezoidal-shaped geometry having a ramp surface thereon.
14. The pump actuator of claim 11 wherein each of the stamped features comprises a dimple-shaped geometry having a ramp surface thereon.
15. The pump actuator of claim 10 wherein the inner body and the outer bodies are press-fit together.
16. A method of assembling a pump actuator for use between a cam and a pump, the method comprising: providing an outer body having an outer body inner surface; providing an inner body having an inner body outer surface; deflecting portions of the inner body outwardly creating a plurality of stamped features that extend outwardly from the inner body outer surface; slidably advancing one of the outer body and inner body relative to the other of the outer body and inner body such that the stamped features slidably negotiate along the outer body inner surface creating an interference fit between the outer body and the inner body.
17. The method of claim 15 wherein deflecting portions of the inner body further comprises: creating one of wedge-shaped, trapezoidal-shaped and dimple-shaped geometries having ramp surfaces thereon, wherein the ramp surfaces slidably advance along the outer body inner surface during the slidable advancing.
18. The method of claim 17 wherein slidably advancing further comprises simultaneously aligning the inner and outer bodies relative to each other.
19. The method of claim 17 wherein slidably advancing further comprises: locating the outer body around an upper surface of the inner body; and advancing the outer body downwardly such that a bottom surface of the outer body rides over the ramped surfaces.
20. The method of claim 17 wherein slidably advancing further comprises: locating the outer body around an upper surface of the inner body; and advancing the inner body upwardly such that a bottom surface of the outer body rides over the ramped surfaces.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
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DETAILED DESCRIPTION
[0027] With initial reference to
[0028] Turning now to
[0029] According to the present disclosure, the inner body 132 can include stamped features 134 that can protrude outwardly beyond an outer diameter or surface 136 of the inner body 132. The stamped features 134 can include two pairs of opposing stamped features 134 including first and second opposing stamped features and third and fourth opposing stamped features. The opposing relationships of the stamped features 134 can influence a robust interference fit when assembled to the outer body 130. The stamped features 134 can be punched from the inside of the inner body 132 to create the outwardly extending protrusions. The inner body 132 is inserted relative to the outer body 130 causing the stamped features 134 to form an interference or press-fit during assembly (as will be described herein with respect to
[0030] With further reference to
[0031] The wedge-shaped surface 140 and the inner surface 138 of the outer body 130 will undergo localized elastic deformation. Frictional force between the surfaces will inhibit the outer and inner bodies 130, 132 from disengaging during operation. In additional advantages, the wedge shaped features 134 assists in alignment of the outer and inner bodies 130, 132 during simultaneous assembly. Alignment of the inner and outer bodies 130, 132 can be done in a single operation. In this regard, additional welding or other assembly operations are not needed. A cost reduction can be realized by avoiding such additional assembly steps.
[0032] The pump actuator 110 can further include an axle 166 and a bearing 170. In one non-limiting example, the bearing 170 can generally include an outer roller 172 and a plurality of internal rollers (not specifically shown). A plurality of apertures 178 are shown around the inner body 132.
[0033] Turning now to
[0034] In the example shown in
[0035] With further reference to
[0036] The trapezoidal-shaped surface 240 and the inner surface 138 of the outer body 130 will undergo localized elastic deformation. Frictional force between the surfaces will inhibit the outer and inner bodies 230, 132 from disengaging during operation. In additional advantages, the trapezoidal-shaped features 134 assists in alignment of the outer and inner bodies 130, 232 during simultaneous assembly. Alignment of the inner and outer bodies 130, 232 can be done in a single operation. In this regard, additional welding or other assembly operations are not needed. A cost reduction can be realized by avoiding such additional assembly steps.
[0037] Turning now to
[0038] In the example shown in
[0039] With further reference to
[0040] The dimple-shaped surface 340 and the inner surface 138 of the outer body 130 will undergo localized elastic deformation. Frictional force between the surfaces will inhibit the outer and inner bodies 330, 132 from disengaging during operation. In additional advantages, the dimple-shaped features 134 assists in alignment of the outer and inner bodies 130, 332 during simultaneous assembly. Alignment of the inner and outer bodies 130, 332 can be done in a single operation. In this regard, additional welding or other assembly operations are not needed. A cost reduction can be realized by avoiding such additional assembly steps.
[0041] By attaining an interference fit between the outer surface 136, 236, 336 of the inner body 132, 232, 332 and the inner surface 138 of the outer body 130, the inner and outer bodies of the pump actuator can be fixedly coupled together without any alternative and/or supplemental fixing components and/or methods. The stamped solution provides a more cost effective and easier to manufacture pump actuator assembly compared to available prior art offerings. By way of comparison, some prior art examples require welding the inner and outer bodies together. In production, laser welding requires capital investment and additional cycle time. Moreover, before welding the inner and outer bodies need to be aligned perfectly to avoid any bearing perpendicularity issues. The press-fit solution described herein enables assembling the two bodies during a concurrent alignment operation thereby avoiding laser welding costs.
[0042] The foregoing description of the examples has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular example are generally not limited to that particular example, but, where applicable, are interchangeable and can be used in a selected example, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.