Gear pumps comprise, amongst other things, internal gear pumps and annular gear pumps in which a driving gearwheel runs eccentrically in the internal tooth system of an annular gear. Internal gear pumps, which are particularly suitable for providing high pressures, are used to deliver fluids, for example to deliver fuel to an internal combustion engine.
In the prior art, it is known to integrate internal gear pumps or annular gear pumps in an electronically commutated electric motor, with the rotor of the electric motor simultaneously being in the form of an annular gear of the internal gear pump or annular gear pump.
DE 10 2006 007 554 A1 describes a delivery pump which is integrated in an electric motor. The delivery pump comprises a first gearwheel and a second gearwheel. A delivery space is formed between the two gearwheels. The second gearwheel is mounted at its center on a mandrel. The first gearwheel is an external gearwheel and forms the rotor, the second gearwheel is an internal gearwheel which is carried along in the eccentric center of the first gearwheel. The first gearwheel comprises glued-in permanent magnets which are arranged in a manner distributed over the circumference. External magnetic field generators generate a circulating rotationally changing field which results in direct motorized tracking of the rotor.
However, mounting of the annular gear, which has to adopt the drive torque of the electric motor, is problematical in configurations of this kind. At the same time, the hydraulic forces of the internal gear pump have to be transmitted to the stator and further to the pump housing.
EP 1 600 635 A2 describes an internal gear pump which has a pump section with an internal rotor which is formed with teeth on its outer periphery. An external rotor has teeth which are formed on its inner periphery. Both rotors are accommodated in a housing. The external rotor, which is in the form of an annular gear, is mounted by means of specially shaped additional components in this case.
The solutions known in the prior art for mounting the annular gear in an internal gear pump or in an annular gear pump have a mechanically complicated design and are therefore structurally elaborate, complex and expensive in terms of production.
Therefore, it is necessary to provide a simple and cost-effective solution for mounting an annular gear for an internal gear pump or an annular gear pump.
The invention provides a gear pump for delivering a fluid, having an externally toothed gearwheel, which is rotatably mounted on a bearing pin, and an internally toothed annular gear which engage in a meshing manner for the purpose of generating a delivery effect and which are arranged in a housing together with an electrically commutatable stator, with the stator extending around the annular gear in a concentric manner and interacting with an annular magnet for the purpose of generating an electromotive force, with the annular magnet together with the annular gear executing a rotary movement for the purpose of generating the delivery effect, with the annular gear being mounted by a sliding bearing. A structurally simple and therefore cost-effective solution for mounting is provided by mounting the annular gear using a sliding bearing.
The annular magnet is preferably arranged between the stator and the annular gear. In this case, the annular magnet does not have the task of providing a sliding bearing. The tasks of a sliding bearing are advantageously adopted by other components of the internal gear pump and the annular gear itself.
In a yet further preferred embodiment, the annular magnet and the annular gear are connected to one another in a rotationally fixed manner. Therefore, a drive torque is transmitted from the rotating electromagnetic field to the annular magnet and further to the annular gear of the internal gear pump or annular gear pump. The annular magnet itself does not adopt a bearing function. Said bearing function is advantageously adopted by other components, preferably by the annular gear itself.
Further preference is given to the annular gear being produced from a non-magnetic material. This provides magnetic decoupling between the individual components.
According to a further preferred embodiment, the annular gear is mounted by an annular section which is formed at least on a surface, which is opposite the annular gear, in the form of a sliding bearing.
A second radial gap with a value of 0.1 to 0.5 mm is preferably formed between the stator and the annular magnet.
According to a further preferred embodiment, the annular section is integrally formed with the housing and projects radially inward from said housing.
According to yet a further preferred embodiment, the annular section is pressed or glued into the housing.
Preference is also given to mounting the annular gear by a disk-like element which has a bearing pin which projects from the disk-like element and which is accommodated in a cutout which is correspondingly provided in the housing. The surface of the bearing pin is preferably in the form of a sliding bearing. As an alternative, an inner wall of the recess can be in the form of a sliding bearing. In this embodiment, the fuel connections are to be produced in the housing.
Exemplary embodiments of the invention will be described in greater detail below with reference to the appended drawings, in which:
The open side of the housing 5 of the internal gear pump 1 is closed by means of a connection cover 9, with a sealing element 10 being provided in order to seal off the gap between the connection cover 9 and the housing 5 in a fluid-tight manner. The sealing element 10 is designed as an O-ring and is arranged in a corresponding encircling groove (not illustrated) inside the connection cover 9.
A structurally simple and therefore cost-effective sliding bearing is provided in the gear pump according to the invention.
Number | Date | Country | Kind |
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10 2009 028154 | Jul 2009 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2010/057973 | 6/8/2010 | WO | 00 | 2/29/2012 |
Publishing Document | Publishing Date | Country | Kind |
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WO2011/012364 | 2/3/2011 | WO | A |
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Entry |
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PCT/EP2010/057973 International Search Report, 4 pages. |
Number | Date | Country | |
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20120148426 A1 | Jun 2012 | US |