Claims
- 1. A pump assembly comprising:a) an axial piston pump including a swash plate rotatable by an input shaft; a non-rotatable cylinder containing a plurality of piston bores, each bore having an axially movable piston with a spherical end extending through the cylinder journaled in a slipper in contact with a swash plate; a spring biased retainer plate holding the slippers and biasing the slippers into contact with the swash plate to maintain the swash plate in fixed axial position, the swash plate having a cam shaped circumferential edge surface; and, b) an auxiliary pump mounted between the axial ends of the piston pump, the auxiliary pump having a prime mover in contact with the cam shaped edge of the swash plate.
- 2. The pump assembly of claim 1 wherein the swash plate has one axial end generally perpendicular to the longitudinal centerline of the input shaft and an opposite swash end inclined at an angle to the longitudinal centerline with the circumferential cam edge between the ends, and the piston pump having a housing containing a cylindrical shaft inlet passage at one axial end terminating in an swash plate chamber containing the swash plate, the intersection of the intermediate chamber and the inlet passage defining an annular seat surface and a thrust bearing between the annular seat surface and the axial end of the swash plate.
- 3. The pump assembly of claim 2 wherein the thrust bearing has a Teflon coating adjacent the swash plate.
- 4. The pump assembly of claim 3 wherein the pump shaft is journaled only in a sleeve bearing pressed into the shaft inlet passage and the spring biased retainer plate maintains the swash plate against the thrust plate.
- 5. The pump of claim 4 wherein the pump shaft and swash plate is a unitary structure and the pump housing is a unitary structure.
- 6. The combination of an axial piston pump coupled to an auxiliary pump comprising:a pump housing having a configured central chamber generally symmetrical about a longitudinal axis extending through the housing; the central chamber having a generally cylindrical inlet passage at one longitudinal end of the pump housing, a cylinder chamber at the opposite longitudinal end of the pump housing and a swash plate chamber between and connecting the inlet passage and cylinder chamber; and an end plate adjacent the opposite longitudinal end of the pump housing closing the cylinder chamber; an annular, non-rotatable cylinder fixed to the pump housing containing a plurality of piston bores extending therethrough and circumferentially spaced about the longitudinal axis; a piston axially moveable within each bore having a spherical end extending through the piston bore and journaled in a slipper and the other end in valved communication with a pump outlet formed in the end plate; a tail shaft received within the cylinder centered about the longitudinal axis; a spherical bearing having a central opening receiving the tail shaft and a spring biasing the spherical bearing in a direction of the tail shaft; a retainer plate having a central opening smaller than the outside spherical diameter of the spherical bearing receiving the spherical bearing so that the retainer plate can variably swivel about the spherical bearing, the retainer plate having a plurality of circumferential spaced openings equal to the plurality of pistons and through which the slippers are received and retained; an inlet shaft rotatably journaled in the inlet passage; a swash plate within the swash plate chamber integral with the inlet shaft and rotatable with the inlet shaft; the spring biasing the slippers into contact with the swash plate through the retainer plate, and the swash plate having an outer circumferential edge formed as a cam surface; the pump housing further having a pump drive passage extending from outside the housing in communication with the swash plate chamber; and, an auxiliary pump mounted to the pump housing, the auxiliary pump having a prime mover axially movable by the cam surface along the circumferential edge of the swash plate.
- 7. The combination of claim 6 wherein the intersection of the inlet shaft passage and the swash plate chamberforms an annular seat surface; the swash plate having a flat annular end surface adjacent the annular seat surface at one axial end thereof and a swash surface in contact with the slippers at its opposite end and an annular thrust bearing between the flat annular end surface of the swash plate and the housing's annular seat surface.
- 8. The combination of claim 7 wherein a sleeve bearing pressed within the inlet shaft passage supports the inlet shaft.
- 9. The combination of claim 8 wherein the sleeve bearing and the thrust bearing have a Teflon coating adjacent, respectively, the inlet shaft and the annular end surface of the swash plate, a metallic wear surface adjacent the Teflon coating and a base metal surface adjacent the metallic wear surface.
- 10. The combination of claim 9 wherein the swash plate and the inlet shaft is a unitary structure and the pump housing is a single casting.
- 11. An axial piston pump capable of driving an auxiliary pump attached thereto comprising:a pump housing having a configured central chamber generally symmetrical about a longitudinal axis extending through the housing; the central chamber having a generally cylindrical inlet passage at one longitudinal end of the pump housing, a cylinder chamber at the opposite longitudinal end of the pump housing and a swash plate chamber between and connecting the inlet passage and cylinder chamber, the intersection of the swash plate chamber with the inlet passage defining an annular seat surface in the housing; and an end plate adjacent the opposite longitudinal end of the pump housing closing the cylinder chamber; an annular, non-rotatable cylinder fixed to the pump housing containing a plurality of piston bores extending therethrough and circumferentially spaced about the longitudinal axis; a piston axially moveable within each bore having a spherical end extending through the piston bore and journaled in a slipper and the other end in valved communication with a pump outlet formed in the end plate; a sleeve bearing pressed into the inlet passage; an inlet shaft rotatably journaled only by the sleeve bearing; the swash plate having a swash surface at one axial end thereof in contact with the slippers, a flat annular end surface at its opposite axial end and a circumferential cam edge surface between the swash surface and the flat annular end surface; an annular thrust bearing between the housing's annular seat surface and the swash plate's annular end surface; and, the pump housing having a pump drive passage extending from outside the pump housing to the swash plate chamber whereby the prime mover of an auxiliary pump can be driven by the cam edge of the swash plate.
- 12. The pump of claim 11 wherein the sleeve bearing and the thrust bearing have a Teflon coating adjacent, respectively, the inlet shaft and the annular end surface of the swash plate, a metallic wear surface adjacent the Teflon coating and a base metal surface adjacent the metallic wear surface.
- 13. The pump of claim 12 further includinga tail shaft received within the cylinder centered about the longitudinal axis; a spherical bearing having a central opening receiving the tail shaft and a spring biasing the spherical bearing in a direction of the tail shaft; a retainer plate having a central opening smaller than the outside spherical diameter of the spherical bearing receiving the spherical bearing so that the retainer plate can variably swivel about the spherical bearing, the retainer plate having a plurality of circumferential spaced openings equal to the plurality of pistons and through which the slippers are received and retained.
- 14. The pump of claim 13 wherein the swash plate and the inlet shaft is a unitary structure and the pump housing is a single casting.
Parent Case Info
This patent application is a continuation-in-part of application Ser. No. 09/553.285, filed on Apr. 20, 2000, pending and incorporated herein by reference.
US Referenced Citations (8)
Non-Patent Literature Citations (1)
| Entry |
| SAE Technical Paper 2000-01-0687, entitled “Development of a Variable-Desplacement, Rail-Pressure Supply Pump for a Dimethyl Ether” by James C. McCandless, Ho Teng and Jeffrey B. Schneyer presented Mar. 6-9, 2000. |
Continuation in Parts (1)
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Number |
Date |
Country |
| Parent |
09/553285 |
Apr 2000 |
US |
| Child |
09/645257 |
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US |