This application claims priority to German Patent Application No. 10 2016 102 433.3, entitled “Gear Pump,” filed on Feb. 11, 2016, the entire contents of which are hereby incorporated by reference for all purposes.
The present disclosure relates to the field of pump design, in particular to a gear pump, which may be employed as an oil pump in an internal combustion engine.
A gear pump uses the meshing of gear wheels (gears) to pump fluid through fluid displacement. Gear pumps are one of the most common types of pumps for hydraulic applications. For example, oil pumps used in internal combustion engines are usually implemented as gear pumps. Gear pumps are also widely used in chemical installations to pump highly viscous fluids. Basically, two different types of gear pumps exist, i.e. external gear pumps, which use two external spur gears, and internal gear pumps, which use an external spur gear and an internal spur gear.
As the gears rotate, the gear teeth come out of mesh on the intake side (suction side) of the pump thereby creating a void and respective suction. The void is filled by fluid, which is carried by the gears to the outlet side (pressure side) of the pump, where the meshing of the gears displaces the fluid. The mechanical clearances are small (on the order of a few 10 micrometers), and the tight clearances, along with the speed of rotation, effectively prevent the fluid from leaking back. Usually, the rigid design of the gears and the housing allows for very high pressures and the ability to pump highly viscous fluids.
External gear pumps are usually designed such that, on the intake side, the fluid (e.g. oil) flows towards the gears in a radial direction (radial inflow). In this regard the terms “radial” and “axial” refer to the rotation of the gears. Particularly when two engaged teeth of two meshed gears are about to come out of the mesh at the intake side of the pump, the above-mentioned void does not yet have a radial connection to the intake channel and path of the fluid is still blocked by the teeth of the gears. At the same time the volume between the two meshed teeth (not yet filled with fluid) becomes larger, which leads to a drop of pressure in this volume. When the two teeth finally disengage, the radial connection between the above-mentioned void and the intake suddenly opens, which may lead to an abrupt increase of local pressure and, in the worst case, to cavitation. The resulting pressure variations may impede the fluid flow into the void, deteriorate the volumetric efficiency of the pump, and increase undesired leakage. In particular, the sudden pressure drops of the opening teeth may suck oil through the small sealing gap (clearance seal) from the pressure side of the pump, which gives rise to additional leakage.
In view of the above explanation, one object of the present disclosure may be to provide a gear pump with improved efficiency. This object as achieved by the gear pump of claim 1. Various embodiments and further developments are covered by the dependent claims.
A gear pump is described herein. In accordance with one embodiment, the gear pump comprises a first gear meshed with a second gear as well as a housing in which the gears are supported. The housing includes a first void, which at least partly adjoins a first side surface of the first gear, and a second void, which at least partly adjoins a second side surface of the first gear. The gear pump further comprises a fluid intake channel configured to direct fluid towards the gears, wherein at least one deflector is arranged within the fluid intake such that an incident fluid flow is diverted towards the first void as well as to the second void.
In one embodiment the deflector is shaped and positioned such that the incident fluid flow is split into a first portion and a at least a second portion, wherein the first portion of the fluid flow is diverted towards the first void and the second portion of the fluid flow is diverted towards the second void. The deflector may be shaped such that the incident fluid flow is prevented from directly flowing towards circumferential surfaces of the gears in a radial direction. The deflector may be either an integral component of the housing or a separate component that is mounted to an inner surface of the intake channel or the housing. A further deflector may be arranged such so as to guide the first portion of the fluid flow towards the first void.
The first void may be formed by a recess that is formed in an inner surface of a cover of the housing. The second void may be formed by a recess that is formed in an inner surface of the housing. Additionally or alternatively, the second void may be formed by an indentation that is formed within the intake adjacent to the second side surface of the first gear. In various embodiments, the first and the second voids are axially neighboring the gears on opposing sides of the gears.
In some embodiments the duct forming the fluid intake is slanted (not in-line) with respect to a duct forming the fluid outlet. The intake channel may be arranged at least partly in the interior of the housing. Additionally or alternatively, the intake channel may be at least partly formed by a duct externally attached to the housing.
The present disclosure can be better understood with reference to the following description and drawings. The components in the figures are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the present disclosure. Moreover, in the figures, like reference numerals designate corresponding parts. In the drawings:
The following description relates to an oil pump as an illustrative example of a gear pump. Such oil pumps may be used, for example, as part of the lubrication system of an internal combustion system. It is understood, however, that gear pumps implemented in accordance with the embodiments described herein may be readily used in non-automotive applications and also used to pump fluids other than oil.
To improve the situation, the duct forming the oil intake channel 12 may be designed such that the inflowing oil is diverted into voids, which are located axially right and left of at least one of the gears 20, 21. The mentioned diverting is accomplished by a deflector or a system of deflectors arranged within the intake channel 12 of the gear pump. The voids may be formed by recesses in the cover 11 and the housing 10. At least one of the voids may be formed by an indentation in the intake channel 12 adjacent to a side surface of the gear 20. The deflector diverts the incident oil flow towards the mentioned voids thereby, firstly, generating a dynamic pressure within the voids and, secondly, preventing the incident oil flow from directly reaching the circumferential surface of the gears 20, 21 from a radial direction.
In the examples describes herein, the first deflector 31 is arranged in the fluid intake channel 12 of the gear pump, wherein the fluid intake channel 12 is in the interior of the housing 10. That is, the duct forming the fluid intake channel 12 on the suction side of the pump is mainly formed by the specific shaping of the interior of the housing 10. However, it is understood that, in general, at least a part of the fluid intake may be formed by a separate component, which is external to the housing 10 and attached to the housing 10 during assembly of the gear pump.
In all embodiments, the deflector 31 may be an integral portion of the housing 10. The housing may be made of, for example cast iron or cast aluminum. That is, deflector 31 and the main part of the housing 10 may be one piece. The recesses 15b or the indentation 15b′ forming the void in the intake channel 12 may either be made by using an appropriately shaped casting mold or using a subsequent abrasive machining process, for example by milling the recess into the cast housing 10. Alternatively, the deflector 31 may be a separate component which is mounted in the intake channel 12 of the gear pump during assembly. Thereby the deflector 31 may be screwed, welded or glued to an inner surface of the intake channel 12. Generally, the deflector 31 itself may be one piece or composed of two or more pieces which are joined to form the deflector 31. In any embodiment the deflector may have any geometric shape and mounted in any position, provided that the shape and the position of the deflector 31 are such that the incident fluid flow is split into a first portion and a at least a second portion, wherein the first portion of the fluid flow is diverted towards the first void (recess 15a) and the second portion of the fluid flow is diverted towards the second void (recess 15b or indentation 15b′, see
Although the present disclosure has been illustrated and described with respect to one or more implementations, variations and/or modifications may be made to the illustrated examples without departing from the spirit and scope of the appended claims. In particular regard to the various functions performed by the above described components or structures (units, assemblies, devices, circuits, systems, etc.), the terms (including a reference to a “means”) used to describe such components are intended to correspond—unless otherwise indicated—to any component or structure which performs the specified function of the described component (e.g., that is functionally equivalent), even though not structurally equivalent to the disclosed structure, which performs the function in the herein illustrated exemplary implementations of the present disclosure.
In addition, while a particular feature of the present disclosure may have been disclosed with respect to only one of several implementations, such feature may be combined with one or more other features of the other implementations as may be desired and advantageous for any given or particular application. Furthermore, to the extent that the terms “including”, “includes”, “having”, “has”, “with”, or variants thereof are used in either the detailed description and the claims, such terms are intended to be inclusive in a manner similar to the term “comprising”.
Number | Date | Country | Kind |
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10 2016 102 433 | Feb 2016 | DE | national |
Number | Name | Date | Kind |
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3280756 | Gordon | Oct 1966 | A |
3575535 | Bickar | Apr 1971 | A |
20130175290 | Vogt | Jul 2013 | A1 |
Number | Date | Country |
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102015107519 | Nov 2016 | DE |
2016180570 | Nov 2016 | WO |
Number | Date | Country | |
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20170234312 A1 | Aug 2017 | US |