Valve device
10054092 ยท 2018-08-21
Assignee
Inventors
- Michael Kleindl (Schwieberdingen, DE)
- Tamim Latif (Tokyo, JP)
- Michael Spitznagel (Seitingen-Oberflacht, DE)
- Matthias Maess (Boeblingen, DE)
- Dominik Brunner (Wiernsheim, DE)
Cpc classification
F02M63/0077
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K47/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01L3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K47/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M63/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A valve device includes a housing, a flow duct and a valve body. The valve body is arranged in the flow duct and has a sealing section that bears against a housing-side sealing seat when the valve device is closed. The sealing section and the sealing seat together form a sealing region. There is a collapse zone immediately upstream of the sealing region in the flow duct when the valve device is closed. The collapse zone is delimited by a boundary wall that is at least substantially perpendicular with respect to a movement axis of the valve body and by a deflector wall that is arranged at an angle with respect to the boundary wall. The boundary wall is longer than the deflector wall.
Claims
1. A valve device, comprising: a housing; a flow duct; a valve body arranged in the flow duct, the valve body having a sealing section configured to bear against a housing-side sealing seat when the valve device is closed; a guide element connected to the housing and configured to guide the valve body along a movement axis of the valve body; and a housing insert fixedly connected to the housing, wherein: the sealing section and the sealing seat together form a sealing region, a decaying space is defined in the flow duct immediately upstream of the sealing region when the valve device is closed, the decaying space is delimited by a boundary wall, which is at least substantially perpendicular with respect to a movement axis of the valve body and by a deflector wall which is arranged at an angle with respect to the boundary wall, the boundary wall is longer than the deflector wall, the sealing seat is adjoined on a side opposite the boundary wall by a flow guiding face, which is at least partially inclined in relation to a fluid flow direction prevailing in the sealing region when the valve device is open, the defector wall, the sealing seat and the flow guiding face together form a housing-side projection, and the flow duct, the decaying space, and the sealing seat are all defined by the housing insert.
2. The valve device as claimed in claim 1, wherein the boundary wall is at least 1 mm longer than the deflector wall.
3. The valve device as claimed in claim 1, wherein the boundary wall is longer than the deflector wall by a factor of at least 1.2.
4. The valve device as claimed in claim 1, wherein the boundary wall is annular disk-shaped.
5. The valve device as claimed in claim 1, wherein the deflector wall is hollow-cylindrical.
6. The valve device as claimed in claim 1, wherein the flow guiding face is inclined in relation to the fluid flow direction by at least 10.
7. The valve device as claimed in claim 1, wherein the flow guiding face is inclined in relation to the fluid flow direction by at most 90.
8. A high pressure pump of a fuel system of an internal combustion engine, the high pressure pump comprising: an outlet valve for discharging fuel from a delivery space of the high pressure pump, the outlet valve configured as a valve device, including: a housing; a flow duct; a valve body arranged in the flow duct, the valve body having a sealing section configured to bear against a housing-side sealing seat when the valve device is closed; a guide element connected to the housing and configured to guide the valve body along a movement axis of the valve body; and a housing insert fixedly connected to the housing, wherein: the sealing section and the sealing seat together form a sealing region, a decaying space is defined in the flow duct immediately upstream of the sealing region when the valve device is closed, the decaying space is delimited by a boundary wall, which is at least substantially perpendicular with respect to the movement axis of the valve body, and by a deflector wall, which is arranged at an angle with respect to the boundary wall, the boundary wall is longer than the deflector wall, the sealing seat is adjoined on a side opposite the boundary wall by a flow guiding face, which is at least partially inclined in relation to a fluid flow direction prevailing in the sealing region when the valve device is open, the defector wall, the sealing seat and the flow guiding face together form a housing-side projection, and the flow duct, the decaying space, and the sealing seat are all defined by the housing insert.
9. The valve device as claimed in claim 2, wherein the boundary wall is at least 2 mm longer than the deflector wall.
10. The valve device as claimed in claim 2, wherein the boundary wall is at least 3 mm longer than the deflector wall.
11. The valve device as claimed in claim 3, wherein the boundary wall is longer than the deflector wall by a factor of at least 1.5.
12. The valve device as claimed in claim 4, wherein the boundary wall is concentric with respect to the movement axis of the valve body.
13. The valve device as claimed in claim 5, wherein the deflector wall is concentric with respect to the movement axis of the valve body.
14. The valve device as claimed in claim 6, wherein the flow guiding face is inclined in relation to the fluid flow direction by at least 20.
15. The valve device as claimed in claim 7, wherein the flow guiding face is inclined in relation to the fluid flow direction by at most 70.
16. The valve device as claimed in claim 1, wherein the housing, housing insert, and guide element are separate structures.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the following text, exemplary embodiments of the disclosure will be explained with reference to the drawing, in which:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5)
(6) The inlet valve 20 is, for example, a quantity control valve and can be actuated by an electromagnet. As an alternative to an electromagnet, a piezoelectric actuator or hydraulic actuator can also be used, for example.
(7) The high pressure pump 24 has an outlet valve which is configured in the form of a valve device 22 which will be described in greater detail in the following text. The valve device 22 communicates via a high pressure line 26 to a high pressure accumulator 28.
(8) During operation of the fuel system 10, the prefeed pump 16 delivers fuel from the fuel tank 12 into the low pressure line 18. Here, the inlet valve 20 determines the fuel quantity which is fed to the delivery space 23 of the high pressure pump 24.
(9) The function of the valve device 22 consists in opening in a delivery phase of the high pressure pump 24, in order to produce a fluid connection between the delivery space 23 and the high pressure accumulator 28, in order that the high pressure accumulator 28 can be filled with pressurized fluid. In a suction phase of the high pressure pump 24, the valve device 22 closes, in order to prevent an undesired backflow of fluid out of the high pressure accumulator 28 into the delivery space 23.
(10)
(11) Upstream of the sealing seat 32, the valve device 22 has a flow duct 38 which extends parallel to the longitudinal axis 29.
(12) The sealing seat 32 and the sealing section 34 are configured flatly and parallel to one another and together form a sealing region 42. A decaying space 44 is formed upstream of the sealing region 42 and downstream of the flow duct 38 by means of a step-like recess in the housing 30, which decaying space 44 is delimited by a deflector wall 46 which extends at a right angle from the sealing region 42 or its plane and by a boundary wall 48 which is at an angle, in particular perpendicularly, with respect to the deflector wall 46.
(13) The boundary wall 48 extends perpendicularly with respect to a movement axis 50, along which the valve body 36 can be moved for opening and closing the valve device 22. The movement axis 50 and the longitudinal axis 29 are preferably parallel to one another and, in particular, identical to one another.
(14) A fluid, in particular fuel, first of all flows within the flow duct 38 substantially parallel to the longitudinal axis 29 and is then deflected radially to the outside upstream of the valve body 36. The deflection of the flow takes place comparatively prematurely and with low loss by means of the hydraulic action of the decaying space 44 downstream of an edge 52 which delimits the flow duct 38 on the end side.
(15) Moreover, the valve device 22 comprises a valve spring 54 which loads the valve body 36 with a closing force. The valve spring 54 is supported on a supporting element 56 which is connected to the housing 30 or is configured in one piece with the latter.
(16) In order to guide the valve body 36 along the movement axis 50, a guide element 58 is provided which is connected to the housing 30 or is configured in one piece with the latter.
(17) The flow duct 38, the decaying space 44 and/or the sealing seat 32 can be formed by the housing 30 or, as shown in
(18) In an open state of the valve device 22, fluid, in particular fuel, flows in the sealing region 42 in a fluid flow direction 62 (cf.
(19) The deflector wall 46, the sealing seat 32 and the flow guiding face 64 together form a housing-side projection 66. The flow guiding face 64 is inclined relative to the fluid flow direction 62 by an angle 68 of from 0 to 90, preferably of from approximately 10 to approximately 80, in particular of from approximately 20 to approximately 70.
(20) The boundary wall 48 is preferably of annular disk-shaped configuration and has a length 70 which is measured in the radial direction.
(21) The deflector wall 46 is hollow-cylindrical and is preferably concentric with respect to the movement axis 50 of the valve body 36. The deflector wall 46 has a length 72 which is measured parallel to the movement axis 50 of the valve body 36.
(22) The sealing seat 32 is preferably of annular disk-shaped configuration and has a length 74 which is measured in the radial direction.
(23) The length 70 of the boundary wall 48 is greater than the length 72 of the deflector wall 46. For example, as shown in
(24) The length 70 of the boundary wall 48 is preferably greater than the length 74 of the sealing seat. For example, as shown in
(25) If, as shown in
(26) During the implosion of vapor bubbles of this type, the load which is produced in the process is distributed to a relatively large area of the valve body 36 or the deflector wall 46 and the boundary wall 48 which is parallel to the sealing section 34 of the valve body, as a result of which the cavitation erosion is reduced considerably. In particular, the valve device 22 has no constricting (wedge-like) spatial sections in the surroundings of the vapor bubbles, which spatial sections are particularly susceptible to cavitation erosion.