Electric motor-vehicle coolant pump
11162511 · 2021-11-02
Assignee
Inventors
- Lars Heitzig (Leipzig, DE)
- Clemens Reichel (Rossau, DE)
- Hemke Maeter (Dresden, DE)
- Falk Steiger (Markkleeberg, DE)
Cpc classification
F04D13/064
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/0673
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/5806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An electric motor-vehicle coolant pump includes a housing, a pump unit with blade elements, a motor unit with a motor stator and a motor rotor which are mounted in the housing via a bearing, and inlet and outlet openings with respective center axes. The pump unit pumps a cooling fluid. The motor rotor has an impeller element and a drive element which extends in an axial direction and which has an axis of rotation. The blade elements are arranged on the impeller element. The inlet and outlet openings each allow the cooling fluid to flow through the motor unit. The outlet openings of the pump unit are arranged in the motor rotor. When viewed in an outlet direction, the respective center axes of the outlet openings include an angle α of 10° to 135° with respect to a projection of the axis of rotation into the respective outlet opening.
Claims
1. An electric motor-vehicle coolant pump comprising: a housing; a pump unit comprising blade elements, the pump unit being configured to pump a cooling fluid; a motor unit comprising a motor stator and a motor rotor which are mounted in the housing via a bearing, the motor rotor comprising an impeller element and a drive element which extends in an axial direction and which comprises an axis of rotation, the blade elements of the pump unit being arranged on the impeller element; an inlet opening comprising a center axis; and outlet openings comprising respective center axes, wherein, the inlet opening and the outlet openings are each configured to allow the cooling fluid pumped by the pump unit to flow through the motor unit, the outlet openings of the pump unit are arranged in the motor rotor, when viewed in an outlet direction, the respective center axes of the outlet openings include an angle α of 10° to 135° with respect to a projection of the axis of rotation into the respective outlet opening, the outlet openings are provided in a region of a transition from the impeller element to the drive element, and the outlet openings are configured to extend substantially in a tangential direction relative to the projection of the axis of rotation.
2. The electric motor-vehicle coolant pump as recited in claim 1, wherein the angle α is between 45° and 65°.
3. The electric motor-vehicle coolant pump as recited in claim 1, wherein the outlet openings are formed as bores which are arranged in a circular configuration at a uniform mutual offset in a circumferential direction.
4. The electric motor-vehicle coolant pump as recited in claim 1, wherein, the motor rotor is configured to be pot-shaped, and the drive element is configured to be cylindrical.
5. The electric motor-vehicle coolant pump as recited in claim 4, wherein the motor rotor is an external rotor.
6. The electric motor-vehicle coolant pump as recited in claim 4, wherein the inlet opening is provided as an annular gap between the housing and the drive element which is configured to be cylindrical.
7. The electric motor-vehicle coolant pump as recited in claim 1, wherein the motor unit is an electrically commutated electric motor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention is described in greater detail below on the basis of embodiments and of the drawings in which:
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DETAILED DESCRIPTION
(6) In an embodiment of the present invention, center axes of the outlet openings, when viewed in the outlet direction, include, toward the outside, an angle between α=10° and α=135° with a projection of the axis of rotation into the respective outlet opening. The described embodiment of the coolant pump provides that the contaminant particles will be discharged via the outlet opening nearly to their full extent without contaminant particles remaining in the region of the motor rotor and possibly damaging the pump unit.
(7) In an embodiment of the present invention, the outlet openings can, for example, extend substantially in the tangential or radial direction relative to the projected axis of rotation of the impeller element. The angle α can, for example, be between 45° and 65°. A particularly safe discharge of the contaminant particles is thereby provided since the contaminant particles will be conveyed into the region of the vane elements.
(8) The outlet openings are advantageously formed as bores arranged in a circular configuration at a uniform mutual offset in the circumferential direction. Due to the embodiment of a coolant pump as provided by the present invention, three outlet bores can, for example, be sufficient for an effective discharge of the contaminant particles.
(9) In an embodiment of the present invention, the motor rotor can, for example, be pot-shaped, wherein the drive element is cylindrical. The contaminant particles are discharged from the interior of the motor rotors without residues despite the pot-shaped design of the motor rotor. The motor rotor is advantageously provided as an external rotor.
(10) It can be particularly advantageous if the outlet openings are provided in the outermost region of the impeller element or, in case of a pot-shaped design of the motor rotor, in the impeller element or in the cylindrical drive element in the region of the transition from the impeller element to the drive element. It is thereby avoided that contaminant particles might remain in the pot-shaped motor rotor in a particularly effective manner.
(11) The motor unit is advantageously provided as an electrically commutated electric motor.
(12) The inlet opening can advantageously be provided as an annular gap between the housing and the cylindrical drive element. Particularly in case of the wet-running principle, a gap inherently exists between the cylindrical drive element and the housing which can be used in a simple manner as an inlet opening.
(13) The present invention will be explained in greater detail below with reference to the drawings.
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(18) It is also possible to realize the outlet openings 33 as outlet bores extending in a radial direction.
(19) The present invention is not limited to embodiments described herein; reference should be had to the appended claims.