FILLING AN ARMATURE CHAMBER IN AN ACTUATOR
20230335323 · 2023-10-19
Assignee
Inventors
- Dominik Guldenschuh (Freiburg, DE)
- Markus Moosmann (Grünkraut, DE)
- Markus Diesch (Bierstetten, DE)
- Florian Schreiber (Pfaffenhofen, DE)
- Ralph Wassermann (Schwaighausen, DE)
Cpc classification
International classification
Abstract
An electromagnetic actuator for an assembly, in particular in a motor vehicle, may be mounted on a fluid chamber, which is designed to be connected to the actuator for fluid transfer when the actuator is installed in the assembly, which has a moving armature in an armature chamber, where the armature has a moving armature rod, where the actuator is designed to fill the armature chamber with fluid, in particular oil, in that the armature rod moves such that fluid is drawn into the armature chamber from the fluid chamber through a fluid path when the armature rod is connected to the fluid chamber for fluid transfer, and where a flow resistance in the fluid path between the armature chamber and the fluid chamber can be set to a first resistance level or a second resistance level.
Claims
1. An electromagnetic actuator for a motor vehicle, the electromagnetic actuator comprising: an armature located in an armature chamber, wherein the armature has a moving armature rod, wherein the actuator is configured to fill the armature chamber with a fluid when the armature rod moves such that the fluid is drawn into the armature chamber from a fluid chamber of the motor vehicle via a fluid path when the armature rod is connected to the fluid chamber, and wherein a flow resistance in the fluid path between the armature chamber and the fluid chamber can be set to a first resistance level or a second resistance level.
2. The electromagnetic actuator of claim 1, wherein the electromagnetic actuator is mounted on the fluid chamber, and wherein the fluid chamber is fluidly connected to the actuator.
3. The electromagnetic actuator according to claim 1, wherein the fluid path is formed at least in part by at least one of an axial hole and a recess in the armature rod, a radial hole at the fluid chamber end of the armature rod, and a least one radial hole in the armature rod at the armature chamber end.
4. The electromagnetic actuator according to claim 1, wherein the armature rod is radially encompassed by a core at the fluid chamber end, wherein a gap is located between the core and the armature rod which forms a segment of the fluid path, wherein the gap has a stepped longitudinal cross section that has a first step and a second step, with which the first and second flow resistance levels are obtained when the radial hole at the fluid chamber end is at the first or second step in the gap.
5. The electromagnetic actuator according to claim 4, wherein the longitudinal cross section of the gap also has a third step, which covers the radial hole at the fluid chamber end, and interrupts the fluid connection between the armature chamber and the fluid chamber.
6. The electromagnetic actuator according to claim 1, wherein the armature chamber has a first fluid reservoir and second fluid reservoir, wherein the radial hole at the armature chamber end can be brought to the level of first fluid reservoir and the first and second fluid reservoirs can be connected for fluid transfer by a segment of the fluid path.
7. The electromagnetic actuator according to claim 6, wherein the fluid path between the first and second fluid reservoirs is obtained with an axial hole in an armature sheath that radially encompasses the armature rod, and the damping is defined in particular by the diameter of the axial hole in the armature sheath.
8. The electromagnetic actuator according to claim 6, wherein the armature rod has a first radial hole at the armature chamber end and a second radial hole at the armature chamber end, which form the fluid path with the axial hole or recess between the first and second fluid reservoirs, and the damping can be defined by the diameter of the radial holes.
9. The electromagnetic actuator according to claim 1, wherein the actuator is configured to fill the armature chamber with fluid through a predefined number of axial movements.
10. The electromagnetic actuator according to claim 9, wherein the predefined number of axial movements includes less than three movements of the armature.
11. The electromagnetic actuator according to claim 9, wherein the predefined number of axial movements exactly one movement of the armature.
12. The electromagnetic actuator according to claim 1, wherein the armature chamber has a discharge gap at an end lying opposite the fluid chamber, with which the armature chamber can be drained.
13. The electromagnetic actuator according to claim 12, further comprising: a housing; a magnetic coil, which radially encompasses an interior chamber; a pole tube, which extends into the interior chamber encompassed by the coil; a core, which extends into the interior chamber encompassed by the coil and lies axially opposite the pole tube; the armature that can move axially inside the armature chamber; and a bearing, wherein at least the core and the pole tube form the armature chamber, wherein the armature sheath for the armature forms a choke between the first and second fluid reservoirs, wherein the armature rod is supported by the bearing, and wherein the pole tube and the bearing form the discharge gap.
14. An assembly for a motor vehicle, the assembly having the fluid chamber and at least one electromagnetic actuator according to claim 1.
15. A method for filling an electromagnetic actuator with fluid, comprising: filling a fluid chamber with fluid or installing the fluid chamber pre-filled with fluid; mounting the actuator on the fluid chamber; and at least partially filling an armature chamber of the electromagnetic actuator via one or more axial movements of an armature, the armature being located in an armature chamber and having a moving armature rod.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] The present invention shall be explained in greater detail below in reference to the exemplary embodiments illustrated schematically in the drawings. Therein:
[0037]
[0038]
[0039] The drawings should provide a better understanding of the embodiments of the invention. They illustrate embodiments with which the principles and concepts of the invention are explained in conjunction with the description. Other embodiments and many of the advantages can be derived from the drawings. The elements in the drawings are not necessarily drawn to scale.
[0040] Elements, features and components in the drawings that are identical, functionally identical, and have the same functions all have the same reference symbols, unless otherwise specified.
[0041] Aspects of the invention relating to oil are referred to as fluids below. It is to be understood that the selection of oil as a fluid is merely of an exemplary nature, and does not limit the scope of protection for this patent application.
DETAILED DESCRIPTION OF THE DRAWINGS
[0042]
[0043] The magnetic coil 2 forms an interior chamber in the actuator with the housing 14, in which the pole tube 3 and the core 4 are located. The pole tube 3 and core 4 are axially opposite one another and delimit an armature chamber 6 in which the armature with the choke 7 and the armature rod 8 are contained. The choke 7 is formed by an armature sheath in
[0044] The bearing 5 forms a receiver for the armature rod 8 and lies on the pole tube 3 at a stop on the bearing 5 such that a discharge gap 15 is formed between the gap 5 and the pole tube 3, with which the armature chamber can be emptied.
[0045] When the actuator 1 is connected to the fluid chamber 16 for fluid transfer, the actuator is filled through an axial movement of the actuator 1, if it has not yet been filled. The filling takes place when a fluid, oil in this case, flows from the fluid chamber 16 into the gap 18 between the armature rod 8 and the core 4, which takes place when the hole 11 at the fluid chamber end is at the first step 21. When the hole is at the first step, the fluid path between the armature chamber and the fluid chamber is opened. At this point, the fluid flows from the gap 18 through the radial hole 11 into the axial hole 10. The fluid flows out of the armature rod 8 through the radial hole 12 and in the armature chamber 6 into the fluid reservoir 19. The fluid reservoirs 19 and 20 in the armature chamber 6 are connected by a hole 13 in the armature sheath.
[0046] When the armature sheath moves axially, oil flows between the first fluid reservoir 19 and the second fluid reservoir 20. As a result, oil from one fluid reservoir 19, 20 passes into the other fluid reservoir 20, 19 when the oil is conveyed through segments of the fluid path 9, specifically the region between the holes 12 and 13, by the movement of the armature sheath.
[0047] If the armature rod 8 is raised, it is closed by the third step 23 in the core. This prevents the actuator 1 from draining when in operation.
[0048] The armature rod 8 extends along the longitudinal axis of the actuator 1 and therefore also defines the axial movement direction of the armature.
[0049]
REFERENCE SYMBOLS
[0050] 1 actuator [0051] 2 coil [0052] 3 pole tube [0053] 4 core [0054] 5 bearing [0055] 6 armature chamber [0056] 7 choke [0057] 8 armature rod [0058] 9 fluid path [0059] 10 hole [0060] 11 hole [0061] 12 hole [0062] 13 hole [0063] 14 housing [0064] 15 discharge gap [0065] 16 fluid chamber [0066] 18 gap [0067] 19 fluid reservoir [0068] 20 fluid reservoir [0069] 21 first step [0070] 22 second step [0071] 23 third step [0072] S1-S3 method steps