Claims
- 1. A positive fluid displacement device (PFDD) for delivering a fluid comprising
- a housing for said device;
- a crankshaft mounted within said housing, said crankshaft for coupling to the driveshaft of a motor;
- a crankpin connected to said crankshaft to provide an orbital movement around said crankshaft;
- a fluid displacement module (FDM) for quick and easy assembly with said housing and said crankpin, said FDM having a first piston/cylinder assembly comprising
- a piston having a connecting end and a piston head, said connecting end connected to said crankpin to operably provide said piston with a circular motion;
- a cylinder having a cylinder head, said cylinder head having a side enclosing one end of a displacement chamber, said cylinder for holding said piston, said piston head enclosing a second end of said displacement chamber;
- said cylinder head having a flat surface on a side opposite to the side enclosing said displacement chamber; and
- an opening in said cylinder head, said opening allowing fluid communication to and from said displacement chamber, said piston head having a protrusion sized to fill said opening;
- a first port plate having a flat surface which in assembly is in sealing engagement with the flat surface of said cylinder head, said port plate having two ports for fluid communication through said opening to said displacement chamber, one port being an inlet port to said displacement chamber and one port being an outlet port from said displacement chamber, in assembly said housing acts to hold said port plate from any substantial movement in two dimensions while allowing movement in one dimension;
- a port plate spring located in assembly between said housing and said port plate to urge the flat surface of said port plate in said one dimension into sealing engagement with the flat surface of said cylinder head wherein said port plate is urged against said cylinder head in floating engagement therewith;
- wherein in operation, the circular movement of said crankpin imparts a reciprocating movement to said cylinder, the flat surface of said cylinder head moving back and forth across the flat surface of said port plate once per revolution of said crankpin wherein said opening is successively brought into fluid communication with said inlet port and said outlet port;
- said FDM having a second piston/cylinder assembly identical to said first piston/cylinder assembly, the second piston having a connecting end connected to said crankpin to provide an opposing piston/cylinder assembly; and
- a second port plate associated with said second piston/cylinder assembly, said second port plate identical to said first port plate.
- 2. The PFDD of claim 1 wherein said FDM further includes
- a cylinder carriage, said cylinder head securely fastened to said carriage to form a cylinder carriage/head assembly, said cylinder mounted on said carriage within a recess in said cylinder head.
- 3. The PFDD of claim 2 wherein said housing further includes grooves and wherein each said cylinder carriage/head assembly further includes an ear, said ear mating with an associated groove in assembly with said housing.
- 4. The PFDD of claim 1 wherein said cylinder and said cylinder head are both made of ceramic material.
- 5. The PFDD of claim 4 wherein said cylinder is made of one of a ceramic and a glass material.
- 6. The PFDD of claim 1 wherein each said piston/cylinder assembly further includes a piston seal assembly comprising
- a sealing ring having minimum clearance with the walls of said cylinder, said sealing ring made of compliant material;
- said piston head having a first conical surface for engagement with said sealing ring;
- a sleeve slidably mounted on said piston, said sleeve having a second conical surface for engagement with said sealing ring;
- a retainer located on said piston; and
- an urging mechanism mounted between said retainer and said sleeve to urge said second conical surface into engagement with said sealing ring wherein said sealing ring is squeezed between said first and second conical surfaces to form two lips to engage the walls of said cylinder and provide a seal between said piston and said cylinder.
- 7. The PFDD of claim 6 further including
- an O-ring interposed between said piston head and said sleeve.
- 8. The PFDD of claim 7 wherein said urging mechanism is located on said piston at a position out of contact with said fluid.
- 9. The PFDD of claim 8 wherein said urging mechanism is comprised of a plurality of spring washers surrounding said piston.
- 10. The PFDD of claim 1 wherein the outlet port is shaped to enable fluid communication with the opening in the associated cylinder head for a larger portion of cylinder head movement than the inlet port.
- 11. The PFDD of claim 1 wherein the inlet port is shaped to enable fluid communication with the opening in the associated cylinder head for a larger portion of cylinder head movement than the outlet port.
- 12. The PFDD of claim 1 wherein said second piston/cylinder assembly is not identical to said first piston/cylinder assembly in that said second piston is larger in surface area than said first piston thereby displacing a greater quantity of fluid per revolution, said first and second pistons sized to provide output quantities of fluid in a predetermined ratio.
- 13. The PFDD of claim 1 further including
- a second FDM having third and fourth piston/cylinder assemblies with components in the same relationship defined for said first piston/cylinder assembly; and
- wherein in assembly the third and fourth pistons are connected to said crankpin at 180.degree. from each other and at about 90.degree. from the first and second pistons.
- 14. The PFDD of claim 13 wherein said third and fourth pistons are sized differently in surface area to provide a predetermined ratio of fluid quantity per revolution.
- 15. The PFDD of claim 12 further including a supply line and an output line and wherein the outlet port of the first port plate is connected to the inlet port of the second port plate and the outlet port of said second port plate is connected to the inlet port of said first port plate;
- the inlet port of said second port plate connected to said supply line;
- the outlet port of said second port plate connected to said output line; and
- wherein the quantity of fluid delivered to said outlet line per revolution is the difference in displacement of said first and second cylinders per revolution, wherein said device can deliver an exact predetermined quantity of fluid per revolution.
- 16. The PFDD of claim 1 further including
- an adjusting mechanism mounted within said housing for moving the position of said cylinder head relative to said housing toward or away from said piston head to alter the displacement of said device per revolution.
- 17. The PFDD of claim 16 including a compliant mounting for said cylinder head for movement of said cylinder head by said piston head should contact occur during a revolution.
- 18. The PFDD of claim 16 including a compliant mounting for said piston head for movement of said piston head should contact with said cylinder head occur during a revolution.
- 19. The PFDD of claim 1 wherein said device includes sensing mechanisms to indicate cylinder head position.
- 20. The PFDD of claim 19 further including a motor coupled to said crankshaft for driving said PFDD for a predetermined angular rotation in response to cylinder head position.
- 21. The PFDD of claim 1 further including a connecting line and wherein said connecting line connects the output port of the first port plate to the inlet port of the second port plate, wherein the inlet port of said first port plate is plugged, and wherein the outlet port of said second port plate delivers vacuum.
- 22. The PFDD of claim 12 further including a connecting line and wherein said connecting line connects the output port of said first cylinder to the inlet port of said second cylinder, wherein the inlet port of said first cylinder is plugged, and wherein the outlet port of said second cylinder delivers vacuum.
- 23. The PFDD of claim 1 further including
- a manifold connected in assembly to said housing, said manifold having fluid passageways for connection with the inlet and outlet ports of the port plates in the fluid displacement modules.
- 24. The PFDD of claim 12 further including
- a second FDM having third and fourth piston/cylinder assemblies with components in the same relationship defined for said first piston/cylinder assembly; and
- said third and fourth pistons are sized differently in surface area to provide a predetermined ratio of fluid quantity per revolution.
- 25. A method of eliminating valves and achieving near dead volume in a positive fluid displacement device (PFDD) employing pistons to draw fluid into displacement chambers and expel fluid therefrom, and to eliminate internal leakage in said PFDD, said method comprising
- providing a PFDD housing with a crankshaft and a crankpin, said crankpin providing circular motion around said crankshaft;
- providing at least two pistons capable of being driven by said crankpin in a circular motion;
- providing at least two cylinders, each cylinder having a cylinder head, said cylinders capable of being driven by said crankpin in a reciprocating motion;
- providing an opening in each cylinder head for allowing fluid communication to and from the displacement chambers;
- providing a protrusion on each piston, said protrusion sized to fill said opening when the piston is at top dead center to achieve near zero dead volume in the displacement chamber;
- providing inlet and outlet ports for allowing alternating fluid communication through the opening to fill the displacement chamber on an intake stroke of the piston and to empty the displacement chamber on an exhaust stroke of the piston to achieve valveless operation;
- providing a port plate containing said inlet and outlet ports, said port plate having a flat surface for mating with a flat surface on said cylinder head to provide a sealing relationship therebetween;
- providing for a port plate mounting arrangement that allows said port plate to move in one dimension to maintain the sealing relationship with said cylinder head and to accommodate sufficient clearance of said cylinder head in two other dimensions to allow for movement in said one dimension; and
- providing for the maintenance of sufficient force on said port plate in a dimension perpendicular to the plane of reciprocating motion to maintain said sealing relationship and thereby eliminate internal leakage in said PFDD.
- 26. The method of claim 25 further including
- providing for a cylinder carriage to which said cylinder head is fastened to form a cylinder carriage/head assembly;
- providing for driving said cylinder carriage/head assembly in a reciprocating fashion from the circular movement of said crankpin; and
- providing for the stable support of said cylinder carriage/head assembly by capturing the reciprocating movement in grooves connected to said housing.
- 27. The method of claim 25 further including
- providing for the elimination of wear particles which might otherwise contaminate delivered fluid by making said port plate and said cylinder head from ceramic material.
- 28. The method of claim 27 further including
- providing for a sealing relationship of said piston with said cylinder; and
- providing for the elimination of lubricating oil by making said relationship of said piston with said cylinder from compliant material,
- wherein the pumped fluid remains uncontaminated by wear particles and lubricant.
- 29. The method of claim 28 wherein said method includes providing for the pumping of fluid without the presence of shearing action on the transferred fluid by said PFDD thereby preventing damage to the transferred fluid.
- 30. The method of claim 25 wherein said method includes providing for the pumping of slurries by said PFDD without making special provision to prevent jamming of moving wetted parts in said PFDD.
- 31. The method of claim 30 wherein said PFDD is capable of pumping slurries without pressurizing the inlet port.
- 32. The method of claim 25 further including
- providing for a fluid displacement module (FDM) which, together with said port plate, includes all wetted parts;
- wherein corrosive or dangerous fluids can be handled by said PFDD in a first operation and said PFDD can be used to handle a different fluid in a second operation by changing or cleaning only the FDM and port plates.
- 33. The method of claim 32 further including
- providing non-convoluted wide passageways to enter fluid through said inlet port to said displacement chamber; and
- providing non-convoluted wide passageways to empty fluid through said outlet port from said displacement chamber
- wherein turbulent flow and cavitation are prevented during operation of the device and cleaning of the FDM is facilitated by allowing a flushing/backwashing operation to completely clear the FDM.
- 34. The method of claim 25 further including
- providing said PFDD with the capability of operating equally well in either direction of crankshaft rotation.
- 35. The method of claim 25 further including
- providing for precision in the volume of delivered fluid to achieve fluid metering capability; and
- providing for precision in the volume of delivered fluid throughout the operational speed of said PFDD from low speeds to top-rated speed.
- 36. The method of claim 35 further including
- providing for specific mixing ratios of a plurality of delivered fluids by providing different diameter displacement chambers wherein a first fluid is pumped from a first smaller displacement chamber and a second fluid is pumped from a second larger displacement chamber; and
- providing for the maintenance of an accurate mixing ratio of said first and said second fluids for all PFDD flow rates.
- 37. The method of claim 36 further including
- providing for the delivery of said plurality of fluids through a specific angular rotation, said angular rotation including a partial crankshaft revolution and, if desired, a number of crankshaft revolutions.
- 38. The method of claim 36 further including
- providing for connection of the inlet port of said smaller chamber to the outlet port of said larger chamber and to a delivery line;
- providing for connection of the outlet port of said smaller chamber to the inlet port of said larger chamber and to a supply line;
- wherein the delivery of fluid per revolution is equal to the differential displacement of said chambers per revolution.
- 39. The method of claim 37 further including
- providing for connection of the inlet port of said smaller chamber to the outlet port of said larger chamber and to a delivery line;
- providing for connection of the outlet port of said smaller chamber to the inlet port of said larger chamber and to a supply line;
- wherein the delivery of fluid per revolution is equal to the differential displacement of said chambers per revolution.
- 40. The method of claim 25 further including
- providing for direct connection of an input line to the inlet port of said port plate; and
- providing for direct connection of an output line to the outlet port of said port plates.
- 41. The method of claim 25 further including
- providing for the interposition of a manifold to connect to said inlet and outlet ports of said port plates and to connect to input lines and output lines.
- 42. The method of claim 41 further including
- providing for sealing the manifold connection to the port plates to prevent escape of fluid.
- 43. The method of claim 25 further including
- providing a larger inlet port than outlet port to facilitate fluid filling of the displacement chamber.
- 44. The method of claim 25 further including
- providing a larger outlet port than inlet port to facilitate fluid discharge from the displacement chamber.
- 45. The method of claim 25 further including
- providing for plugging the inlet port of the smaller chamber; and
- providing for connecting the output line of the smaller chamber to the inlet port of the larger chamber to facilitate delivery of vacuum from said larger chamber.
- 46. The method of claim 25 further including
- providing for the delivery of a plurality of fluids from different displacement chambers.
- 47. The method of claim 25 further including
- providing for the delivery of fluid from one chamber; and
- providing for the delivery of vacuum from a second chamber.
- 48. The method of claim 25 further including
- providing for adjustment of cylinder head position relative to piston position at top dead center to facilitate near zero dead volume operation.
- 49. The method of claim 48 further including
- providing for a compliant cylinder head to accommodate contact between piston and cylinder head at top dead center.
- 50. The method of claim 48 further including
- providing for a compliant piston to accommodate contact between piston and cylinder head at top dead center.
- 51. The method of claim 25 further including
- providing for the optimization of port timing by providing for maximum fluid communication between a displacement chamber and inlet and output ports when the piston is travelling at maximum linear speed in a dimension parallel to the axis of the cylinder and when the cylinder head is at rest in order to optimize filling and discharge of the displacement chamber.
- 52. The method of claim 25 further including
- providing for the optimization of port timing by providing for a transfer in fluid communication to said displacement chamber from inlet port to output port or vice versa when the piston is at rest in a dimension parallel to the axis of the cylinder and when the cylinder head is travelling at maximum speed.
- 53. The method of claim 25 further including
- providing for the development of pressure ratios in excess of 100:1, said pressure ratio defined as the volume of a displacement chamber at bottom dead center divided by the volume of the same displacement chamber at top dead center.
Parent Case Info
This application claims the benefit of U.S. Provisional Patent Application No. 60/049,535, filed Jun. 13, 1997, and U.S. Provisional Patent Application No. 60/071,984, filed Jan. 20, 1998.
US Referenced Citations (6)