Internal gear pump
09751512 ยท 2017-09-05
Assignee
Inventors
- Harald Speer (Freiberg, DE)
- Rene Schepp (Waiblingen, DE)
- Edgar Kurz (Heilbronn-Horkheim, DE)
- Norbert Alaze (Markgroeningen, DE)
Cpc classification
F04C2/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0076
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/16
PERFORMING OPERATIONS; TRANSPORTING
F04C15/0007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03C4/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The disclosure relates to an internal gear pump as a hydraulic pump for a slip-controlled vehicle brake system. The disclosure proposes to configure the internal gear pump as a preassembled module with a cartridge as housing, which can be pressed into a receptacle of a hydraulic block of the vehicle brake system. The cartridge has two steps which are parallel to one another for attaching a press-in ram and for orienting the cartridge in an angularly correct manner by means of the press-in ram, and a sealing surface, with which the cartridge bears in a sealed manner in the receptacle of the hydraulic block when the cartridge is pressed into the receptacle.
Claims
1. An internal gear pump for a hydraulic vehicle brake system, comprising: a cartridge in which gears of the internal gear pump are housed, the cartridge formed as a preassembled module and including a shoulder configured for angular alignment of the cartridge during installation of the cartridge; and a drive wheel positioned on one end of the cartridge, a diameter of the drive wheel being smaller than a diameter of the cartridge, wherein the drive wheel does not overlap the shoulder when viewed axially.
2. The internal gear pump as claimed in claim 1, further comprising a pump shaft that is eccentric with respect to the cartridge.
3. The internal gear pump as claimed in claim 1, the cartridge having an encircling sealing surface on an outer circumference of the cartridge, the encircling sealing surface configured to seal the cartridge in a socket.
4. The internal gear pump as claimed in claim 3, wherein the sealing surface is narrow.
5. The internal gear pump as claimed in claim 1, wherein the cartridge has a circular cross section.
6. The internal gear pump as claimed in claim 1, wherein the cartridge includes two parallel surfaces extending in secant directions so as to form the shoulder.
7. The internal gear pump as claimed in claim 6, wherein: the two parallel surfaces are formed as part of two mutually opposite parallel steps which are parallel with respect to a longitudinal axis of the cartridge, and each of the two mutually opposite parallel steps further includes a radial surface situated in a radial plane of the cartridge defined perpendicular to the longitudinal axis and which are configured for pressing the cartridge into a socket.
8. An internal gear pump for a hydraulic vehicle brake system, comprising: a cartridge in which gears of the internal gear pump are housed, the cartridge formed as a preassembled module and including a shoulder configured for angular alignment of the cartridge during installation of the cartridge, wherein the cartridge includes two parallel surfaces extending in secant directions so as to form the shoulder.
9. The internal gear pump as claimed in claim 8, wherein: the two parallel surfaces are formed as part of two mutually opposite parallel steps which are parallel with respect to a longitudinal axis of the cartridge, and each of the two mutually opposite parallel steps further includes a radial surface situated in a radial plane of the cartridge defined perpendicular to the longitudinal axis and which are configured for pressing the cartridge into a socket.
10. The internal gear pump as claimed in claim 8, further comprising a pump shaft that is eccentric with respect to the cartridge.
11. The internal gear pump as claimed in claim 8, the cartridge having an encircling sealing surface on an outer circumference of the cartridge, the encircling sealing surface configured to seal the cartridge in a socket.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure is explained in greater detail below by means of an embodiment illustrated in the drawing, in which:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5)
(6) An annulus 5, which is arranged coaxially in the cartridge 3 and is mounted rotatably therein, and a pinion 6 of the internal gear pump 1, which is arranged eccentrically in the annulus 5 and meshes with the annulus 5, can be seen in an open end of the cartridge 3, said end being visible in
(7) The pinion 6 is fixed for conjoint rotation on a pump shaft 9, which is passed in a sealed manner through the closed end of the cartridge 3 forming the housing 2 of the internal gear pump 1. As can be seen in
(8) Arranged on both sides of the pinion 6, the annulus 5 and of the divider (not visible in the drawing) arranged in the pump space 7 are axial disks 11, which rest on the pinion 6, the annulus 5 and the divider. The axial disks 11 are axially movable and rotationally fixed, cover the pressure space (not visible) and the divider (not visible) and have apertures in the region of the suction space 8. Axial disks 11 of this kind are also referred to as pressure disks or control disks or plates. The axial disks 11 have what are referred to as pressure fields 12 in the outer sides facing away from the pinion 6, the annulus 5 and the divider, said pressure fields being surrounded by a pressure field gasket 13. The pressure fields 12 are flat depressions which extend approximately over the pressure space and the divider, being kidney-shaped in the embodiment depicted. Applying pressure to the pressure fields 12 pushes the axial disks 11 into sealing contact with the pinion 6, the annulus 5 and the divider. The pressure fields 12 have a through hole 14, via which they communicate with the pressure space of the internal gear pump 1. The axial disk 11 facing an observer in
(9) The internal gear pump 1 is preassembled as a module in the cartridge 3 which forms the housing 2 of the internal gear pump 1. Owing to preassembly as a module, the internal gear pump 1 can be handled and installed as a standard component and, furthermore, the internal gear pump 1 preassembled as a module can be tested for serviceability and leaktightness before being installed.
(10)
(11) The two sockets 16 for the internal gear pumps 1 in the hydraulic block 15 are embodied as cylindrical countersunk holes congruent with the cartridges 3, into which the internal gear pumps 1 can be inserted or pressed, as can be seen in
(12) The suction connection hole opens in the region cut out of the axial disk 11, with the result that the suction connection hole communicates with the suction space 8 of the internal gear pump 1. As a result, a suction and a pressure connection of the internal gear pumps 1 are produced by the insertion or pressing of the internal gear pumps 1 into the sockets 16 in the hydraulic block 15, including the sealing of the connections. The hydraulic block 15 forms a housing for the two internal gear pumps 1 and is here referred to as a surrounding housing to distinguish it from the cartridges 3, which likewise form a housing 2 for the internal gear pumps 1. In the hydraulic block 15 forming the surrounding housing, the two internal gear pumps 1 preassembled as modules are accommodated together with their cartridges 3 forming their housings 2.
(13) On the side on which the drive wheel 10 is situated, the cartridge 3 has two mutually opposite and mutually parallel steps 17. Treads of the steps 17 are mutually parallel surfaces in secant planes of the cartridge 3, which are also axially parallel planes of the cartridge 3. They are referred to below as parallel surfaces 18. Risers of the steps 17 are situated in a radial plane of the cartridge 3 and are referred to below as radial surfaces 19. The parallel surfaces 18 form a shoulder 20 for angularly correct alignment of the cartridge 3 by means of a corresponding press-in ram (not shown), which is applied to the radial surfaces 19 to press in the cartridge 3 and has a free space for the drive wheel 10. A diameter of the drive wheel 10 is less than a distance between the parallel surfaces 18, ensuring that the drive wheel 10 does not overlap the steps 17 and that the press-in ram (not shown) can be applied to the steps 17.
(14) The cylindrical cartridge 3 which forms the housing 2 of the internal gear pump 1 has a somewhat larger diameter on the side on which the drive wheel 10 is situated than on the opposite side. In other words: on the side of the drive wheel 10, the cylindrical cartridge 3 has an oversize. In this way, a cylindrical encircling sealing surface 21 is formed, extending a short distance beyond the steps 17 in an axial direction.
(15) At their mouths, the sockets 16 have an oversize which extends somewhat deeper than the steps 17 of the cartridges 3 (see
(16) During press-fitting, the cartridges 3 are aligned with the press-in ram (not shown), which is applied to the parallel steps 17, in such a way that the drive wheels of the two internal gear pumps 1 mesh with a gearwheel arranged between them, which is referred to as driving wheel 23 and which is depicted in
(17) In the embodiment, the drive wheels 10 of the internal gear pumps 1 are at a distance from one another when the cartridges 3 that form the housings 2 of the internal gear pumps 1 are aligned at the correct angle. This ensures that the drive wheels 10 cannot disengage from the driving wheel 23 through rotation of the cartridges 3 in the sockets 16 of the hydraulic block 15.