Claims
- 1. A balanced, pressure-compensated, single-stage hydraulic valve system with interconnected fluid-supply, interconnected fluid-return and distinct fluid-control ports, said hydraulic valve system being responsive to applied signals, and said system comprising:
- (a) a plurality of chambers, with each said chamber having an inlet port, an outlet port, and a chamber port, each connected thereto;
- (b) a displaceable control assembly, located largely within and extending between said chambers, and having substantially planar means, within each said chamber, with at least one said planar means intervening fully between said inlet port and said outlet port within each said chamber, so that simultaneously each said planar means is in the midrange between said inlet and said outlet ports therebeside when said assembly is positioned midway between displacive extremes;
- (c) flow-impeding clearances, at least one being an inlet clearance between said planar means and the adjacent wall surrounding said inlet port of said chamber, and at least one being an outlet clearance between said planar means and the adjacent chamber wall surrounding said outlet port therebeside, each such said clearance forming within each said chamber when said control assembly is positioned intermediately between said displacive extremes;
- (d) guiding means constraining displacive movement of said control assembly to be generally in the manner causing, within each said chamber, said inlet clearance to change in inverse proportion to said outlet clearance;
- (e) means for displacing said control assembly, and thereby changing said clearances, in proportion to said signals;
- (f) means to conduct fluid, substantially unimpeded, between each said inlet port and a said supply port, and between each said outlet port and a said return port; further, discrete means to conduct fluid, either relatively impeded or substantially unimpeded, between each said chamber port and a said control port, with each said control port being thus connected to sufficient distinct said chamber ports to thereby utilize at least one said discrete means impeding flow and one said discrete means not impeding flow, but connected only to said chamber ports of said chambers in which displacement of said control assembly changes said inlet clearances similarly therein, and, simultaneously, said outlet clearances similarly therein;
- (g) means causing the net displacive hydrostatic force acting on said control assembly to counteract any net unbalanced displacive hydrodynamic force also acting thereupon, and, in the absence of unbalanced displacive hydrodynamic forces, to be generally small or nil, and to be negligible or nil when unbalanced displacive hydrodynamic forces are absent and equal pressures exist in all said chambers;
- whereby, with equal fluid pressures delivered to said supply ports and with equal fluid pressures existing at said return ports, any unbalanced hydrodynamic forces acting to displace said control assembly are offset by proportional hydrostatic forces, thereby stabilizing said assembly between said inlet and said outlet ports, and enabling said system to control the flow delivered through said control ports, in response to said signals, through changes in the relative positions of said planar means within said chambers, by displacement of the thus stabilized said control assembly.
- 2. The system of claim 1 wherein means affecting the orientations and magnitudes of said hydrostatic forces acting on said control assembly in said chambers is proper sizing of the internal components, including said inlet and said outlet ports, said planar means, said inlet and said outlet clearances, and said fluid-conductive means impeding flow.
- 3. The system of claim 1 wherein each said fluid-conductive means impeding flow is an orifice.
- 4. The system of claim 1 wherein said control assembly is slidably mounted.
- 5. The system of claim 1 wherein said control assembly is mounted by resilient means which restrain said control assembly between said displacive extremes.
- 6. The system of claim 1 wherein said planar means are simultaneously each approximately halfway between said inlet and outlet ports therebeside when said assembly is positioned midway between said displacive extremes.
- 7. The system of claim 1 wherein said means for displacing said control assembly is a force motor.
- 8. The system of claim 1 wherein said signal is electrical.
- 9. The system of claim 1 having sealing means minimizing fluid leakage.
- 10. A balanced, pressure-compensated, single-stage hydraulic valve system with interconnected fluid-supply, interconnected fluid-return and distinct fluid-control ports, said hydraulic valve system being responsive to applied electrical signals, and said system comprising:
- (a) a plurality of spools, juxtaposed coaxially in a cavity within a valve body and separated therein by spacing means therebetween, to form an even number of chambers, with said spacing means having means generally not impeding flow to conduct fluid radially therethrough, and with said chambers each interposed between the opening to an inlet bore, extending coaxially through one of the adjacent said spools therebeside, and the opening to an outlet bore, extending coaxially through the other adjacent said spool therebeside, and each having a chamber port, located between said adjacent spools in the wall of said cavity;
- (b) a translatable control assembly extending between said chambers through said inlet bores and said outlet bores of said spools, said assembly comprising, firstly, a plurality of radially projecting flanges with at least one said flange intervening fully between said inlet bore and said outlet bore of each said chamber and, secondly, means to space apart said flanges so that, simultaneously, each is in the midrange between said adjacent spools therebeside when said assembly is positioned midway between translative extremes;
- (c) flow-impeding clearances, at least one being an inlet clearance between said flange and the adjacent face surrounding said inlet bore of said adjacent spool, and at least one being an outlet clearance between said flange and the adjacent spool face surrounding said outlet bore therebeside, forming within each said chamber when said control assembly is positioned intermediately between said translative extremes;
- (d) guiding means constraining translational movement of said control assembly to be generally codirectional with the axis of said spools, and thereby causing said translation to change, within each said chamber, said inlet clearance in reciprocal proportion to said outlet clearance;
- (e) means for translating said control assembly, and thereby changing said clearances, in proportion to said electrical signals;
- (f) means to conduct fluid, substantially unimpeded, between each said inlet bore and a said supply port, and between each said outlet bore and a said return port; further, discrete means to conduct fluid, either relatively impeded or substantially unimpeded, between each said chamber port and a said control port, with each said control port being thus connected to sufficient distinct said chamber ports to thereby utilize at least one said discrete means impeding flow and one said discrete means not impeding flow, but connected only to said chamber ports of said chambers in which translation of said control assembly changes said inlet clearances equally therein, and, simultaneously, said outlet clearances equally therein;
- (g) means causing the net axial hydrostatic force acting on said control assembly, in the absence of any net unbalanced axial hydrodynamic forces acting on said assembly, to be generally small or nil;
- (h) means causing the net axial hydrostatic forces acting on said control assembly, within said chambers having said chamber ports connected to the same said control port, to be similarly oriented; means causing the net axial hydrostatic forces acting on said control assembly in said chambers having said chamber ports connected to said control ports by said fluid-conductive means not impeding flow to be counterposed, and those in said chambers having said chamber ports connected to said control ports by said fluid-conductive means impeding flow to be counterposed; means causing the net axial hydrostatic force acting on said control assembly in each said chamber to be directed toward said outlet bore thereat, and away from said inlet bore thereat;
- (j) means causing the net axial hydrostatic force acting on said control assembly in each said chamber having said chamber port connected to said control port by said fluid-conductive means not impeding flow, to vary in proportion to fluid pressure applied thereto via said chamber port thereat; means causing the net axial hydrostatic force acting on said control assembly, in each said chamber having said chamber port connected to said control port by said fluid-conductive means impeding flow, to vary in inverse proportion to fluid pressure applied thereto via said chamber port thereat; and means ensuring that the magnitudes of the net axial hydrostatic forces acting on said control assembly, in said chambers having said chamber ports connected to said control ports by said fluid-conductive means impeding flow, are at least as sensitive to changes in fluid pressure applied thereto via said chamber port thereat, as are those in said chambers having said chamber ports connected to said control ports by said fluid-conductive means not impeding flow;
- whereby, with equal fluid pressures delivered to said supply ports and with equal fluid pressures existing at said return ports, any unbalanced axial hydrodynamic forces acting to translate said control assembly are offset by proportional axial hydrostatic forces, thereby stabilizing said assembly between said spools, and enabling said system to control the flow delivered through said control ports, in response to said electrical signals, through changes in the relative position of the thus stabilized said control assembly.
- 11. The system of claim 10 wherein said control assembly is mounted by resilient means which restrain said control assembly between said translative extremes.
- 12. A balanced, pressure-compensated, single-stage hydraulic valve system with interconnected fluid-supply, interconnected fluid-return and distinct fluid-control ports, said hydraulic valve system being responsive to applied electrical signals, and said system comprising:
- (a) a plurality of cavities, within a valve body, with each said cavity having distinct inlet ports, distinct outlet ports, and distinct chamber ports, each connected thereto;
- (b) a rotatable control assembly, located largely within and extending between said cavities, and comprising, firstly, a central shaft dividing each said cavity into separate chambers, with each said chamber having at least one said inlet port, one said outlet port and one said chamber port and, secondly, radially projecting fins, coplanar with the axis of said shaft, extending therefrom into each said chamber, and intervening fully between said inlet and said outlet ports therein, so that, simultaneously, each is in the midrange between said inlet and said outlet ports therebeside when said assembly is positioned midway between rotative extremes;
- (c) flow-impeding clearances, at least one being an inlet clearance between said fin and the adjacent wall surrounding said inlet port of said chamber, and at least one being an outlet clearance between said fin and the adjacent chamber wall surrounding said outlet port therebeside, each such said clearance forming within each said chamber when said control assembly is positioned intermediately between said rotative extremes;
- (d) guiding means constraining rotational movement of said control assembly to be generally about the axis of said shaft, and thereby causing said rotation to change, within each said chamber, said inlet clearance in reciprocal proportion to said outlet clearance;
- (e) means for rotating said control assembly, and thereby changing said clearances, in proportion to said electrical signals;
- (f) means to conduct fluid, substantially unimpeded, between each said inlet port and a said supply port, and between each said outlet port and a said return port; further, discrete means to conduct fluid, either relatively impeded or substantially unimpeded, between each said chamber port and a said control port, with each said control port being thus connected to sufficient distinct said chamber ports to thereby utilize at least one said discrete means impeding flow and one said discrete means not impeding flow, but connected only to said chamber ports of said chambers in which rotation of said control assembly changes said inlet clearances equally therein, and, simultaneously, said outlet clearances equally therein;
- (g) means causing the net hydrostatic torque acting on said control assembly, in the absence of any net unbalanced hydrodynamic torques acting on said assembly, to be generally small or nil;
- (h) means causing the net hydrostatic torques acting on said control assembly, within said chambers having said chamber ports connected to the same said control port, to be similarly oriented; means causing the net hydrostatic torques acting on said control assembly in said chambers having said chamber ports connected to said control ports by said fluid-conductive means not impeding flow to be counterposed, and those in said chambers having said chamber ports connected to said control ports by said fluid-conductive means impeding flow to be counterposed; means causing the net hydrostatic torque acting on said control assembly in each said chamber to be directed to rotate said assembly toward said outlet port thereat, and away from said inlet port thereat;
- (j) means causing the net hydrostatic torque acting on said control assembly in each said chamber having said chamber port connected to said control port by said fluid-conductive means not impeding flow, to vary in proportion to fluid pressure applied thereto via said chamber port thereat; means causing the net hydrostatic torque acting on said control assembly, in each said chamber having said chamber port connected to said control port by said fluid-conductive means impeding flow, to vary in inverse proportion to fluid pressure applied thereto via said chamber port thereat; and means ensuring that the magnitudes of the net hydrostatic torques acting on said control assembly, in said chambers having said chamber ports connected to said control ports by said fluid-conductive means impeding flow, are at least as sensitive to changes in fluid pressure applied thereto via said chamber port thereat, as are those in said chambers having said chamber ports connected to said control ports by said fluid-conductive means not impeding flow;
- whereby, with equal fluid pressures delivered to said supply ports and with equal fluid pressures existing at said return ports, any unbalanced hydrodynamic torques acting to translate said control assembly are offset by proportional hydrostatic torques, thereby stabilizing said assembly between said inlet and said outlet ports, and enabling said system to control the flow delivered through said control ports, in response to said electrical signals, through changes in the relative positions of said fins within said chambers, by rotation of the thus stabilized said control assembly.
- 13. The system of claim 12 wherein said control assembly is mounted by resilient means which restrain said control assembly between said rotative extremes.
- 14. A balanced, pressure-compensated, single-stage hydraulic valve system with interconnected fluid-supply, interconnected fluid-return and distinct fluid-control ports, said hydraulic valve system being responsive to applied signals, and said system comprising:
- (a) a plurality of cavities, with each said chamber having an inlet port, an outlet port, and a chamber port, each connected thereto;
- (b) a displaceable control assembly, located largely within and extending between said cavities, and having substantially planar means, within each said chamber, with at least one said planar means intervening fully between said inlet port and said outlet port within each said chamber, so that simultaneously each said planar means is in the midrange between said inlet and said outlet ports therebeside when said assembly is positioned midway between displacive extremes;
- (c) flow-impeding clearances, at least one being an inlet clearance between said planar means and the adjacent wall surrounding said inlet port of said chamber, and at least one being an outlet clearance between said planar means and the adjacent chamber wall surrounding said outlet port therebeside, each such said clearance forming within each said chamber when said control assembly is positioned intermediately between said rotative extremes;
- (d) guiding means constraining displacive movement of said control assembly to be generally in the manner causing, within each said chamber, said inlet clearance to change in inverse proportion to said outlet clearance;
- (e) means for displacing said control assembly, and thereby changing said clearances, in proportion to said signals;
- (f) means to conduct fluid, substantially unimpeded, between each said inlet port and a said supply port, and between each said outlet port and a said return port; further, discrete means to conduct fluid between each said chamber port and a said control port, with each said control port being thus connected only to said chamber ports of said chambers in which displacement of said control assembly changes said inlet clearances similary therein, and, simultaneously, said outlet clearances similarly therein;
- (g) means causing the net displacive hydrostatic force acting on said control assembly to be generally small or nil in the absence of unbalances displacive hydrodynamic forces acting likewise thereupon, and to be negligible or nil when unbalanced displacive hydrodynamic forces are absent and equal pressures exist in all said chambers;
- (h) means counteracting any net unbalanced displacive hydrostatic force acting upon said control assembly;
- whereby, with equal fluid pressures delivered to said supply ports and with equal fluid pressures existing at said return ports, any unbalanced hydrodynamic forces acting to displace said control assembly are compensated, thereby stabilizing said assembly between said inlet and said outlet ports, and enabling said system to control the flow delivered through said control ports, in response to said signals, through changes in the relative positions of said planar means within said chambers, by displacement of the thus stabilized said control assembly.
- 15. The system of claim 14 wherein said displacive movement of said control assembly is translative.
- 16. The system of claim 14 wherein said displacive movement of said control assembly is rotative.
- 17. The system of claim 14 wherein said means for displacing said control assembly includes a force motor.
- 18. The system of claim 14 wherein said signal is electrical.
- 19. The sysetm of claim 14 wherein means affecting the orientations and magnitudes of said hydrostatic forces acting on said control assembly in said chambers is proper sizing of the internal components, including said inlet and said outlet ports, said planar means, said inlet and said outlet clearances, and said fluid-conductive means impeding flow.
- 20. The system of claim 14 wherein said means counteracting net unbalanced hydrodynamic force comprises said net displacive hydrostatic force.
- 21. The system of claim 14 wherein said means counteracting net unbalanced hydrodynamic force comprises resilient means restraining said control assembly between said displacive extremes.
- 22. The system of claim 14 wherein each said discrete means to conduct fluid conducts fluid either relatively impeded or substantially unimpeded, and wherein each said control port is thereby connected to sufficient distinct said chamber ports to utilize at least one said discrete means impeding flow and one said discrete means not impeding flow.
- 23. The system of claim 22 wherein said said fluid-conductive means impeding flow includes an orifice.
- 24. The system of claim 14 having means to balance said control assembly against forces due to motion or orientation of said valve system.
- 25. The system of claim 14 wherein said inlet clearances are each formed between said planar means and a raised portion of said chamber wall surrounding said inlet port therebeside, and said outlet clearances are each formed between said planar means and a raised portion of said chamber wall surrounding said outlet port therebeside.
- 26. The system of claim 14 wherein said control assembly is slidably mounted.
- 27. The system of claim 14 wherein said planar means are simultaneously each approximately halfway between said inlet and outlet ports therebeside when said assembly is positioned midway between said displacive extremes.
- 28. The system of claim 14 having sealing means minimizing fluid leakage.
- 29. A balanced, pressure-flow-compensated, single-stage hydraulic valve system with interconnected fluid-supply, interconnected fluid-return and distinct fluid-control ports, said hydraulic valve system being responsive to applied electrical signals, and said system comprising:
- (a) a plurality of spools, juxtaposed coaxially in a cavity within a valve body and separated thereby by spacing means therebetween, to form an even number of chambers, with said spacing means having means generally not impeding flow to conduct fluid radially therethrough, and with said chambers each interposed between the opening to an inlet bore, extending coaxially through one of the adjacent said spools therebeside, and the opening to an outlet bore, extending coaxially through the other adjacent said spool therebeside, and each having a chamber port, located between said adjacent spools in the wall of said cavity;
- (b) a translatable control assembly extending between said chambers through said inlet bores and said outlet bores of said spools, said assembly comprising, firstly, a plurality of radially projecting flanges with at least one said flange intervening fully between said inlet bore and said outlet bore of each said chamber and, secondly, means to space apart said flanges so that, simultaneously, each is in the midrange between said adjacent spools therebeside when said assembly is positioned midway between translative extremes;
- (c) flow-impeding clearances, at least one being an inlet clearance between said flange and the adjacent face surrounding said inlet bore of said adjacent spool, and at least one being an outlet clearance between said flange and the adjacent spool face surrounding said outlet bore therebeside, forming within each said chamber when said control assembly is positioned intermediately between said translative extremes;
- (d) guiding means constraining translational movement of said control assembly to be generally codirectionally with the axis of said spools, and thereby causing said translation to change, within each said chamber, said inlet clearance in reciprocal proportion to said outlet clearance;
- (e) means for translating said control assembly, and thereby changing said clearances, in proportion to said electrical signals;
- (f) means to conduct fluid, substantially unimpeded, between each said inlet port and a said supply port, and between each said outlet port and a said return port; further, discrete means to conduct fluid, either relatively impeded or substantially unimpeded, between each said chamber port and a said control port, with each said control port being thus connected to sufficient distinct said chamber ports to thereby utilize at least one said discrete means impeding flow and one said discrete means not impeding flow, but connected only to said chamber ports of said chambers in which translation of said control assembly changes said inlet clearances equally therein, and, simultaneously, said outlet clearances equally therein;
- (g) means causing the net hydrostatic force acting on said control assembly, in the absence of any net unbalanced axial hydrodynamic forces acting on said assembly, to be generally small or nil;
- (h) means causing the net axial hydrostatic forces acting on said control assembly, within said chambers having said chamber ports connected to the same said control port, to be similarly oriented; means causing the net axial hydrostatic forces acting on said control assembly in said chambers having said chamber ports connected to said control ports by said fluid-conductive means not impeding flow to be counterposed, and those in said chambers having said chamber ports connected to said control ports by said fluid-conductive means impeding flow to be counterposed; means causing the net axial hydrostatic force acting on said control assembly in each said chamber to be directed toward said outlet bore thereat, and away from said inlet bore thereat;
- (j) means causing the net axial hydrostatic force acting on said control assembly in each said chamber having said chamber port connected to said control port by said fluid-conductive means not impeding flow, to vary in proportion to fluid pressure applied thereto via said chamber port thereat; means causing the net axial hydrostatic force acting on said control assembly, in each said chamber having said chamber port connected to said control port by said fluid-conductive means impeding flow, generally to vary in inverse proportion to fluid pressure applied thereto via said chamber port thereat; and means generally ensuring that the magnitudes of the net axial hydrostatic forces acting on said control assembly, in said chambers having said chamber ports connected to said control ports by said fluid-conductive means impeding flow, are at least as sensitive to changes in fluid pressure applied thereto via said chamber port thereat, as are those in said chambers having said chamber ports connected to said control ports by said fluid-conductive means not impeding flow;
- (k) means compensating any remaining net unbalanced hydrodynamic force acting upon said control assembly;
- whereby, with equal fluid pressures delivered to said supply ports and with equal fluid pressures existing at said return ports, any unbalanced hydrodynamic forces acting to translate said control assembly are offset by proportional axial forces which comprise, in whole or in part, hydrostatic forces, thereby stabilizing said assembly between said spools, and enabling said system to control the flow delivered through said control ports, in response to said electrical signals, through changes in the relative position of the thus stabilized said control assembly.
- 30. The system of claim 29 wherein said means for translating said control assembly includes a force motor.
- 31. The system of claim 29 wherein means affecting the orientations and magnitudes of said hydrostatic forces acting on said control assembly in said chmabers is proper sizing of the internal components, including said inlet and said outlet bores, said flanges, said inlet and said outlet clearances, and said fluid-conductive means impeding flow.
- 32. The system of claim 29 wherein each said discrete fluid-conductive means impeding flow includes an orifice.
- 33. The system of claim 29 wherein said means for compensating any remaining unbalanced hydrodynamic forces includes resilient means restraining said control assembly between said translative extremes.
- 34. The system of claim 29 having means to balance said control assembly against forces created by motion or orientation of said valve system.
- 35. The system of claim 29 wherein said clearances are each formed between said flange and a raised annular portion of said surface of said spool surrounding said opening to said inlet or said outlet bore therebeside.
- 36. The system of claim 29 wherein said internal components are substantially symmetrical on either side of the midplane normal to the axis of the middlemost said spool.
- 37. The system of claim 29 wherein said control assembly is slidably mounted.
- 38. The system of claim 29 wherein said flanges are simultaneously each approximately halfway between said adjacent faces of said spools therebeside when said assembly is positioned midway between said extremes.
- 39. The system of claim 29 having sealing means minimizing fluid leakage.
- 40. A balanced, pressure-flow-compensated, single-stage hydraulic valve system with interconnected fluid-supply, interconnected fluid-return and distinct fluid-control ports, said hydraulic valve system being responsive to applied electrical signals, and said system comprising:
- (a) a plurality of cavities, within a valve body, with each said cavity having distinct inlet portions, distinct outlet ports, and distinct chamber ports, each connected thereto;
- (b) a rotatable control assembly, located largely within and extending between said cavities, and comprising, firstly, a central shaft dividing each said cavity into separate chambers, with each chamber having at least one said inlet port, one said outlet port and one said chamber port and, secondly, radially projecting fins, coplanar with the axis of said shaft, extending therefrom into each said chamber, and intervening fully between said inlet and said outlet ports therein, so that, simultaneously, each is in the midrange between said inlet and said outlet ports therebeside when said assembly is positioned midway between rotative extremes;
- (c) flow-impeding clearances, at least one being an inlet clearance between said fin and the adjacent wall surrounding said inlet port of said chamber, and at least one being an outlet clearance between said fin and the adjacent chamber wall surrounding said outlet port therebeside, each such said clearance forming within each said chamber when said control assembly is positioned intermediately between said rotative extremes;
- (d) guiding means constraining rotational movement of said control assembly to be generally about the axis of said shaft, and thereby causing said rotation to change, within each said chamber, said inlet clearance in reciprocal proportion to said outlet clearance;
- (e) means for rotating said control assembly, and thereby changing said clearances, in proportion to said electrical signals;
- (f) means to conduct fluid, substantially unimpeded, between each said inlet port and a said supply port, and between each said outlet port and a said return port; further, discrete means to conduct fluid, either relatively impeded or substantially unimpeded, between each said chamber port and a said control port, with each said control port being thus connected to sufficient distinct said chamber ports to thereby utilize at least one said discrete means impeding flow and one said discrete means not impeding flow, but connected only to said chamber ports of said chambers in which translation of said control assembly changes said inlet clearances equally therein, and, simultaneously, said outlet clearances equally therein;
- (g) means causing the net hydrostatic torque acting on said control assembly, in the absence of any net unbalanced hydrodynamic torques acting on said assembly, to be generally small or nil;
- (h) means causing the net hydrostatic torque acting on said control assembly, within said chambers having said chamber ports connected to the same said control port to be similarly oriented; means causing the net hydrostatic torques acting on said control assembly in said chambers having said chamber ports connected to said control ports by said fluid-conductive means not impeding flow to be counterposed, and those in said chambers having said chamber ports connected to said control ports by said fluid-conductive means impeding flow to be counterposed; means causing the net hydrostatic torque acting on said control assembly in each said chamber to be directed to rotate said assembly toward said outlet port thereat, and away from said inlet port thereat;
- (j) means causing the net hydrostatic torque acting on said control assembly in each said chamber having said chamber port connected to said control port by said fluid-conductive means not impeding flow, to vary in proportion to fluid pressure applied thereto via said chamber port thereat; means causing the net hydrostatic torque acting on said control assembly, in each said chamber having said chamber port connected to said control port by said fluid-conductive means impeding flow, generally to vary in inverse proportion to fluid pressure applied thereto via said chamber port thereat; and means generally ensuring that the magnitudes of the net hydrostatic torques acting on said control assembly, in said chambers having said chamber ports connected to said control ports by said fluid-conductive means impeding flow, are at least as sensitive to changes in fluid pressure applied thereto via said chamber port thereat, as are those in said chambers having said chamber ports connected to said control ports by said fluid-conductive means not impeding flow;
- (k) means compensating any remaining net unbalanced hydrodynamic torque acting upon said control assembly;
- whereby, with equal fluid pressures delivered to said supply ports and with equal fluid pressures existing at said return ports, any unbalanced hydrodynamic torques acting to translate said control assembly are offset by proportional torques which comprise, in whole or in part, hydrostatic torques, thereby stabilizing said assembly between said inlet and said outlet ports, and enabling said system to control the flow delivered through said control ports, in response to said electrical signals, through changes in the relative positions of said fins within said chambers, by rotation of the thus stabilized said control assembly.
- 41. The system of claim 40 wherein said means for rotating said control assembly includes a force motor.
- 42. The system of claim 40 wherein means affecting the orientations and magnitudes of said hydrostatic forces acting on said control assembly in said chambers is proper sizing of the internal components, including said inlet and said outlet ports, said fins, said inlet and said outlet clearances, and said fluid-conductive means impeding flow.
- 43. The system of claim 40 wherein each said discrete fluid-conductive means impeding flow includes an orifice.
- 44. The system of claim 40 wherein said means for compensating any remaining unbalanced hydrodynamic forces includes resilient means restraining said control assembly between said rotative extremes.
- 45. The system of claim 40 wherein said control assembly is slidably mounted.
- 46. The system of claim 40 wherein said fins are simultaneously each approximately halfway between said inlet and outlet ports therebeside when said assembly is positioned midway between said rotative extremes.
- 47. The system of claim 40 having sealing means minimizing fluid leakage.
Parent Case Info
This is a continuation-in-part of copending application Ser. No. 07/341,930 filed on Apr. 21, 1989, now abandoned.
US Referenced Citations (7)
Foreign Referenced Citations (1)
| Number |
Date |
Country |
| 1229952 |
Sep 1960 |
FRX |
Continuation in Parts (1)
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Number |
Date |
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| Parent |
341930 |
Apr 1989 |
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