Pump with bleed mechanism for reducing cavitation
11149729 · 2021-10-19
Assignee
Inventors
Cpc classification
F05B2260/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C2/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A gear pump assembly includes a drive gear having a plurality of circumferentially spaced teeth, and a driven gear likewise having a plurality of circumferentially spaced teeth positioned for intermeshing engagement between the drive and driven gears via the teeth. A bleed mechanism directs carryover fluid from a discharge side of a bearing dam to an inlet side of the bearing dam in order to supply the carryover fluid to a carryover volume disposed between mating drive gear teeth and driven gear teeth. The bleed mechanism including a passage communicating with at least one of (i) a gear face of the drive gear, (ii) a gear face of the driven gear; or (iii) a bottom of a gear tooth profile adjacent a root region between adjacent gear teeth.
Claims
1. A gear pump assembly comprising: a drive gear having a plurality of circumferentially spaced teeth; a driven gear having a plurality of circumferentially spaced teeth that mesh with the teeth of the drive gear whereby rotation of the drive gear results in rotation of the driven gear; a bearing dam that directs a carryover volume from a discharge side of the pump assembly to an inlet side of the pump assembly; a bleed mechanism that supplies bleed fluid flow to the carryover volume disposed between mating drive gear teeth and driven gear teeth, the bleed mechanism including a passage in at least one of the drive gear and driven gear teeth, the passage includes at least one first passage portion extending through the teeth of the drive gear and/or driven gear, the first passage portion having an opening in an axial end of at least one of the drive gear and the driven gear, and the first passage portion extends in a direction substantially parallel to opposite faces of the teeth of the drive and/or driven gear, the passage further communicating with at least one of: (i) a non-working gear face of the drive gear, (ii) a non-working gear face of the driven gear; or (iii) a bottom of a gear tooth profile adjacent a root region between adjacent gear teeth; the bleed mechanism further including a counter bore portion at the axial opening, the counter bore portion timing the bleed fluid flow to the bleed mechanism passage; the bleed mechanism passage receiving the bleed fluid flow at the counter bore before directing the bleed fluid flow toward the gear mesh.
2. The gear pump assembly of claim 1 wherein the passage includes a second passage portion communicating at a first end with the first passage portion within the drive and/or driven gear teeth, and communicating at a second end with a face of the teeth of the drive and/or driven gear, respectively.
3. The gear pump assembly of claim 2 wherein the second passage portion is inclined relative to normal to one of the faces of the teeth of the drive and/or driven gear.
4. The gear pump assembly of claim 2 wherein the second passage portion communicates with a non-working, trailing face of the gear teeth.
5. The gear pump assembly of claim 2 wherein the second passage portion includes first and second openings that are inclined relative to normal to one of the faces of the teeth of the drive and/or driven gear.
6. The gear pump assembly of claim 5 wherein the first and second openings of the second passage portion converge toward one another.
7. The gear pump assembly of claim 1 wherein the counter bore portion is enlarged, the counter bore portion disposed at an inlet end of the first passage portion that communicates with the inlet side of the gear pump.
8. The gear pump assembly of claim 1 wherein the bleed mechanism passage includes an axial slot that communicates with a side of the teeth at one end and that communicates with the root region disposed between adjacent gear teeth at the bottom of the gear tooth profile.
9. The gear pump assembly of claim 8 wherein the bleed mechanism passage is in the drive gear, the bleed mechanism passage of the drive gear receives the bleed fluid flow from the inlet side of the pump via the axial opening before directing the bleed fluid flow toward a center of the gear mesh.
10. The gear pump assembly of claim 8 wherein the bleed mechanism passage includes a connecting portion at the bottom of the gear tooth profile.
11. The gear pump assembly of claim 10 wherein the connecting portion is angled to direct the bleed flow toward a face of the bearing dam.
12. The gear pump assembly of claim 1 wherein the passage includes a second passage portion communicating at a first end with the first passage portion within the drive and/or driven gear teeth and the second passage portion communicates with a trailing face of the gear teeth; and wherein the passage extends from the axial opening in the teeth of the drive gear to the trailing face of the drive gear teeth, or wherein the passage extends from the axial opening in the teeth of the driven gear to the trailing face of the driven gear teeth.
13. The gear pump assembly of claim 10 wherein the connecting portion extends from the axial slot in the teeth of the driven gear to a leading face of the driven gear teeth.
14. The gear pump assembly of claim 10 wherein the connecting portion extends from the axial slot in the teeth of the drive gear to a leading face of the drive gear teeth.
15. The gear pump assembly of claim 1 wherein the passage includes a second passage portion communicating at a first end with the first passage portion within the drive and/or driven gear teeth; wherein the second passage portion communicates with a trailing face of the gear teeth; and wherein the connecting portion extends from an axial slot in the teeth of the drive gear to the trailing face of the drive gear teeth.
16. The gear pump assembly of claim 15 wherein the connecting portion extends from the axial opening in the teeth of the driven gear to the trailing face of the driven gear teeth.
17. The gear pump assembly of claim 10 further comprising timing slots in bearing end faces to control flow into the axial opening.
18. The gear pump assembly of claim 17 wherein the timing slots in the bearing end faces are provided in both an inlet side and discharge side of the bearing dam that separates the inlet side and discharge side of the pump assembly.
19. A gear pump assembly comprising: a drive gear having a plurality of circumferentially spaced teeth; a driven gear having a plurality of circumferentially spaced teeth that mesh with the teeth of the drive gear whereby rotation of the drive gear results in rotation of the driven gear; a bearing dam that directs a carryover volume from a discharge side of the pump assembly to an inlet side of the pump assembly; a bleed mechanism that supplies bleed fluid flow to the carryover volume disposed between mating drive gear teeth and driven gear teeth, the bleed mechanism including: a passage in at least one of the drive gear and driven gear teeth, the passage includes at least one first passage portion extending through the teeth of the drive gear and/or driven gear, the first passage portion having an opening in an axial end of at least one of the drive gear and the driven gear, and the first passage portion extends in a direction substantially parallel to opposite faces of the teeth of the drive and/or driven gear, the passage further communicating with a side face of at least one of the drive gear and driven gear; and a counter bore portion at the axial opening, the counter bore portion timing the bleed fluid flow to the bleed mechanism passage.
20. A gear pump assembly comprising: a drive gear having a plurality of circumferentially spaced teeth; a driven gear having a plurality of circumferentially spaced teeth that mesh with the teeth of the drive gear whereby rotation of the drive gear results in rotation of the driven gear; a bearing dam that directs a carryover volume from a discharge side of the pump assembly to an inlet side of the pump assembly; a bleed mechanism that supplies bleed fluid flow to the carryover volume disposed between mating drive gear teeth and driven gear teeth, the bleed mechanism including a passage in at least one of the drive gear and driven gear teeth, the passage includes at least one first passage portion extending through the teeth of the drive gear and/or driven gear, the first passage portion having an opening in an axial end of at least one of the drive gear and the driven gear, and the first passage portion extends in a direction substantially parallel to opposite faces of the teeth of the drive and/or driven gear, the passage further communicating with at least one of: (i) a gear face of the drive gear, (ii) a gear face of the driven gear; or (iii) a bottom of a gear tooth profile adjacent a root region between adjacent gear teeth; and the bleed mechanism further comprising an enlarged counter bore portion at an inlet end of the first passage portion that communicates with the inlet side of the gear pump.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(14) A more complete understanding of the components, processes and apparatuses disclosed herein can be obtained by reference to the accompanying drawings. These figures are merely schematic representations based on convenience and the ease of demonstrating the present disclosure and are, therefore, not intended to indicate relative size and dimensions of the devices or components thereof and/or to define or limit the scope of the exemplary embodiments.
(15) Although specific terms are used in the following description for the sake of clarity, these terms are intended to refer only to the particular structure of the embodiments selected for illustration in the drawings, and are not intended to define or limit the scope of the disclosure. In the drawings and the following description below, it is to be understood that like numeric designations refer to components of like function.
(16) The singular forms “a,” “an,” and “the” include plural referents unless the context clearly dictates otherwise.
(17) As used in the specification and in the claims, the term “comprising” may include the embodiments “consisting of” and “consisting essentially of.” The terms “comprise(s),” “include(s),” “having,” “has,” “can,” “contain(s),” and variants thereof, as used herein, are intended to be open-ended transitional phrases, terms, or words that require the presence of the named ingredients/components/steps and permit the presence of other ingredients/components/steps. However, such description should be construed as also describing compositions, articles, or processes as “consisting of” and “consisting essentially of” the enumerated ingredients/components/steps, which allows the presence of only the named ingredients/components/steps, along with any impurities that might result therefrom, and excludes other ingredients/components/steps.
(18) As shown in
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(26) Timings of the drive gear 100 bleed mechanism are important as it decides the amount of bleed flow provided to avoid cavitation and erosion. Due to the addition of drive gear bleed features (140, 142, 144, 150), it is expected that overall leakage would increase. Especially as shown in
(27) Gear pumps traditionally are prone to cavitation due to the short amount of time available to fill the gear mesh.
(28) A new arrangement and method are shown in
(29) Alternate configurations are shown in
(30) This written description uses examples to describe the disclosure, including the best mode, and also to enable any person skilled in the art to make and use the disclosure. Other examples that occur to those skilled in the art are intended to be within the scope of the invention if they have structural elements that do not differ from the same concept, or if they include equivalent structural elements with insubstantial differences.
(31) Although specific advantages have been enumerated above, various embodiments may include some, none, or all of the enumerated advantages. Although exemplary embodiments are illustrated in the figures and description herein, the principles of the present disclosure may be implements using any number of techniques, whether currently known or not. Moreover, the operations of the system and apparatus disclosed herein may be performed by more, fewer, or other components and the methods described herein may include more, fewer or other steps. Additionally, steps may be performed in any suitable order.
(32) To aid the Patent Office and any readers of this application and any resulting patent in interpreting the claims appended hereto, applicants do not intend any of the appended claims or claim elements to invoke 35 U.S.C. 112(f) unless the words “means for” or “step for” are explicitly used in the particular claim.