OSCILLATING PISTON PUMP FOR FLUIDS
20200217314 ยท 2020-07-09
Inventors
Cpc classification
F04C15/064
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C9/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/603
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to an oscillating piston pump for liquid and gaseous fluids, comprising: a pump housing having at least two sector-shaped working chambers, which are diametrically opposed relative to a pivot axis arranged in-between; an oscillating piston, having at least two displacement portions which extend diametrically relative to the pivot axis and are each received pivotably in one of the working chambers; an electric drive, which moves the oscillating piston alternately on a pivot movement between two turning points delimited within the working chambers; a group of outlet valves, which ensure the discharge of a volume displaced from the working chambers to a pump outlet; and a group of inlet valves, which ensure the entry of a volume flowing into the working chambers from a pump inlet. The group of outlet valves or inlet valves is arranged on both sides of each working chamber and communicates through the pump housing with the pump outlet or the pump inlet. The other group of inlet valves or outlet valves is arranged in the oscillating piston and communicates via a cavity in the oscillating piston with the pump inlet or the pump outlet.
Claims
1. A swivel piston pump for liquid and gaseous fluids, comprising: a pump housing having at least two sector-shaped working chambers opposing each other diametrically with respect to a pivot axis positioned therebetween; a swivel piston having at least two displacement sections which extend diametrically with respect to the pivot axis and which are each received in a swiveling manner in one of the working chambers; an electrical drive which moves the swivel piston alternately between two turning points on a pivoting motion contained within the working chamber; a set of outlet valves which allow a volume displaced from the working chambers to exit toward a pump outlet; and a set of inlet valves which allow a volume flowing into the working chambers to enter from a pump inlet; wherein at least one of the set of outlet valves and set of inlet valves) is arranged on both sides of each working chamber and communicates with one of the pump outlet or and pump inlet through the pump housing; and configured such that the other set of the inlet valves or set of the outlet valves is disposed in the swivel piston and communicates with the pump inlet or pump outlet via a cavity in the swivel piston.
2. The swivel piston pump according to claim 1, wherein the cavity of the swivel piston is opened towards an axial side relative to the pivot axis, and an orifice of the pump inlet or pump outlet facing the swivel piston is formed in the pump housing so as to overlap an opened cross-section of the cavity).
3. The swivel piston pump according to claim 1, wherein the opened cross-section of the cavity extends annularly around the pivot axis, and the orifice of the pump inlet or pump outlet is disposed centrally with respect to the pivot axis.
4. The swivel piston pump according to claim 1, wherein the cavity takes the form of a hollow space matching the outer contour of the swivel piston.
5. The swivel piston pump according to claim 1, wherein the swivel piston is produced as a molded plastic part having an overmolded steel shaft as the pivot axis.
6. The swivel piston pump according to claim 1, wherein the outlet valves are formed by flexible lock vanes which release an outlet side of a valve opening.
7. The swivel piston pump according to claim 1, wherein the inlet valves are each formed by an arrangement of prisms of triangular cross-section which are flexibly movable with respect to each other, said prisms being disposed with an apex edge of the cross-section facing a flow direction and being disposed perpendicularly facing a shut-off direction with a lateral side of the cross-section.
8. The swivel piston pump according to claim 1, wherein the electrical drive is configured as a rotary solenoid drive having an armature which can be pivoted electromagnetically around a pivot axis between two working points, and is fixed non-rotatably with the swivel piston.
9. The swivel piston pump according to claim 1 7, wherein the electrical drive is configured as an electrically rotating motor that is coupled to the swivel piston via an eccentric actuator mechanism.
10. A method of using a swivel piston pump according to claim 1 for pumping liquid and/or gaseous fluids.
11. A method of using a swivel piston pump according to claim 1 as a lubricating oil pump for a transmission.
Description
[0033] The invention is described below in detail based on one exemplary embodiment with reference to the drawings. They show:
[0034]
[0035]
[0036]
[0037] First, the structure of an exemplary embodiment of the swivel piston pump according to the present invention designed to be used as an oil pump in a low-pressure lubricant system, e.g., for supplying lubrication oil to gears in a transmission will be described with reference to
[0038] In
[0039] Illustrated at the top right and lower left of the pivot axis 12, two areas of a pump outlet 14 connected via a bow-shaped channel in the pump housing 1 are arranged between the working chambers 10. Between the working chambers 10 and the pump outlet 14, valve openings are formed in the run-up surfaces of the working chambers 10. The valve openings, together with clasp-like, flexible lock vanes 40 that respectively cover a side lying on the outside with respect to the working chamber 10, of the valve opening, form outlet valves 4 of the swivel piston pump.
[0040] The swivel piston 2 is fixed on the pivot axis 12 which is simultaneously a drive shaft of the electric drive 3. The swivel piston 2 includes two displacement sections 20 which are alternately pivoted in the working chambers 10 over a rotational angle of approximately 90, as shown by the double arrow. Between the displacement sections 20, the swivel piston 2 has a circular outer contour. The inside of the swivel piston 2 is a hollow part and opened to the side of the viewer of the illustration, which results in a cavity 25. The cavity 25 surrounds an accommodation of the pivot axis 12 and extends into the displacement sections 20.
[0041] Inlet valves 5 of the swivel piston pump are provided in the flanks of the displacement sections 20 that are pivoted towards the run-up surfaces of the working chambers 10. The inlet valves 5 are formed by prismatic sections 50 and openings in the area of the wall of the swivel piston 2 lying therein between. The prismatic sections 50 have a triangular cross-section and are formed integrally with the swivel piston 2 at one end. Due to the fact that in the exemplary embodiment it is inlet valves 5 which allow a sucked-in delivery flow to pass through from the cavity 25 into a working chamber 10 and which are supposed to block in the reverse direction, all triangular cross-sections are arranged in a flow-efficient manner such that they point towards the cavity 25 with an apex and point towards the pump chamber 10 with a surface or hypotenuse of the triangle.
[0042] The prismatic sections 50 have a free end towards the open side of the cavity 25, such that they may incline at the free end like cantilevers clamped in on one side when a material with sufficient elasticity is chosen, particularly a plastic material. When the pump medium flows through, the prismatic sections 50 are thus flexibly inclined, either spreading apart at the free end or pressing together depending on the flow direction due to the different flow resistance of the triangular cross-section. A passage function and a blocking function thus result in opposing flow directions.
[0043] In the exemplary embodiment of the swivel piston pump, which is configured for use as a lubrication oil pump, that is, for pumping mediums of higher viscosity, a sufficient valve function may already be achieved by means of the illustrated arrangement of three prismatic sections 50 with a central, larger cross-section, and two smaller cross-sections offset thereto, the blocking function being improved by selecting different cross-section sizes.
[0044] In
[0045] As shown in
[0046] In the shown embodiment, the electric drive 3 is provided by what is called a bistable rotary solenoid including two solenoids 30 and an armature 32. The solenoids 30 are axially separated from one another and are in contact with two pole rings 31, which are also axially separated, and with a coaxial ferrite core 33. The armature 32 is pivotable on the pivot axis 12 and has two armature bodies which each have a diametrically longer extension of the circumference and, offset by 90 thereto, a diametrically shorter extension of the circumference, i.e., for example, a circular area with two ring segments recessed at the inside opposite of one another. The armature bodies are each accommodated and mounted in a central recess of a pole ring 31. Each recess of the pole rings 31 has two opposing pole shoes.
[0047] When one of the solenoids 30 is supplied with current, the armature 32 pivots into a position by means of a reluctance force, in which the corresponding armature body aligns itself with its longer diametric extension between the pole shoes of the recess of the corresponding pole ring 31 in order to decrease the air gap and thus the magnetic resistance in a magnetic circuit passing through the solenoid 30, the ferrite core 33, the pole ring 31 and the armature body.
[0048] The pole shoes of the two pole rings 31 or the two armature bodies of the armature body 32 are off-set to one another by 90. Thus an alternating pivoting motion of the pivot axis 12 by 90 is generated when the two solenoids 30 are alternately supplied with current by the control circuit 34.
[0049] In the following, the functionality of the swivel piston pump will be explained.
[0050] When the swivel piston 2 moves from the initial position shown in
[0051] At the same time, negative pressure is generated in a section of the working chamber 10 at the rear side of the swivel piston 2 such that a volume of the pumping medium sucked in through the pump inlet 15 follows and flows into the working chamber 10. Prismatic sections 50 of the inlet valves 5 at the rear intake side of the swivel piston 2 are thereby spread apart the the free ends by the delivery flow taken in and open for a flow from the cavity 25 into the working chamber 10. The flexible lock vanes 40 of the outlet valves 4 are pulled against the valve openings in the pump housing 1 at the intake side of the swivel piston 2 and block the outlet valves 4.
[0052] The same functionality is provided in a reverse pivoting motion back to the initial position of the swivel piston 2 in