Claims
- 1. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; and a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis, said solenoid having a solenoid length and said casing having a symmetry plane oriented transversely to said axis, said stationary magnetic core being spaced from said symmetry plane by a distance of approximately one quarter of said solenoid length less 1 to 4 mm.
- 2. The assembly defined in claim 1 wherein said movable magnetic core has an inner end always disposed inside said solenoid and said casing and an outer end always located outside said solenoid and said casing.
- 3. The assembly defined in claim 2 wherein said casing has a casing length, said movable magnetic core having a length greater than one-half of said casing length.
- 4. The assembly defined in claim 1 wherein said solenoid has a wall thickness of less than approximately 9 mm.
- 5. The assembly defined in claim 4 wherein said movable magnetic core has an outer surface and said casing has an inner surface, said outer surface being spaced from said inner surface by a distance of less than approximately 10 mm.
- 6. The assembly defined in claim 5 wherein said wall thickness differs from said distance by less than 1 mm.
- 7. The assembly defined in claim 1 wherein said symmetry plane essentially bisects said solenoid.
- 8. The assembly defined in claim 1 wherein said stationary magnetic core has a core length measured along said axis, said core length being approximately one quarter of said solenoid length.
- 9. The assembly defined in claim 1 wherein said cross-section is rectangular.
- 10. The assembly defined in claim 9 wherein said cross-section is square.
- 11. The assembly defined in claim 1, further comprising a current source operatively connected to said solenoid, said movable magnetic core being operatively connected to a load, whereby the assembly acts as an motor.
- 12. The assembly defined in claim 1, further comprising means for restoring said movable magnetic core from a maximally retracted position to a maximally extended position, said movable magnetic core having a maximum proportion of its length located inside said solenoid and said casing in said maximally retracted position and a minimum proportion of its length located inside said solenoid and said casing in said maximally extended position.
- 13. The assembly defined in claim 12 wherein said stationary magnetic core is manufactured from a plurality of steel fins bonded to each other along planes extending generally perpendicularly to said axis, said steel fins having outer surfaces vacuum plated with a layer of aluminum, a layer of zinc, and a layer of nickel, said stationary magnetic core having a through hole traversed by said push rod, said through hole being lapped by said push rod in a manufacturing process.
- 14. The assembly defined in claim 13 wherein said layer of aluminum has a thickness of 4 to 5 μm, said layer of zinc has a thickness of 2 to 3 μm, and said layer of nickel has a thickness of 50 to 60 μm.
- 15. The assembly defined in claim 12 wherein said means for restoring includes a spring.
- 16. The assembly defined in claim 1 wherein said solenoid and said casing are coaxially and symmetrically disposed about said axis.
- 17. The assembly defined in claim 1 wherein said stationary magnetic core and said movable magnetic core have polygonal cross-sections in planes oriented essentially perpendicularly to said axis, said casing and said solenoid also having polygonal cross-sections in said planes oriented essentially perpendicularly to said axis.
- 18. The assembly defined in claim 1 wherein said casing is made of magnetic material.
- 19. The assembly defined in claim 1 wherein said axis is an axis of symmetry of said stationary magnetic core and said movable magnetic core and wherein said solenoid is symmetrical about said axis.
- 20. The assembly defined in claim 1 wherein said stationary magnetic core is integral with said casing.
- 21. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; and a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis, said movable magnetic core having an inner end always disposed inside said solenoid and said casing and an outer end always located outside said solenoid and said casing, said casing having a casing length, said movable magnetic core having a length greater than one-half of said casing length, said casing having a symmetry plane oriented transversely to said axis, said casing having a mouth opening traversed by said movable magnetic core, said movable magnetic core having a reciprocation stroke with an extreme position where said inner end is located on a side of said symmetry plane opposite said mouth opening.
- 22. The assembly defined in claim 21 wherein said inner end is disposed at less than approximately 4 mm from said symmetry plane in said extreme position of said movable magnetic core.
- 23. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; and a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis, said stationary magnetic core and said movable magnetic core having rectangular cross-sections in planes oriented essentially perpendicularly to said axis, said casing and said solenoid also having rectangular cross-sections in said planes oriented essentially perpendicularly to said axis.
- 24. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis; and a current source operatively connected to said solenoid, said movable magnetic core being operatively connected to a load, whereby the assembly acts as an motor, said current source including means for initiating an energization of said solenoid when said movable magnetic core is located at a maximum distance from said stationary magnetic core.
- 25. The assembly defined in claim 24 wherein said load includes means for restoring said movable magnetic core from a maximally retracted position to a maximally extended position, said movable magnetic core having a maximum proportion of its length located inside said solenoid and said casing in said maximally retracted position and a minimum proportion of its length located inside said solenoid and said casing in said maximally extended position.
- 26. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis; and means for restoring said movable magnetic core from a maximally retracted position to a maximally extended position, said movable magnetic core having a maximum proportion of its length located inside said solenoid and said casing in said maximally retracted position and a minimum proportion of its length located inside said solenoid and said casing in said maximally extended position, said means for restoring including a push rod extending along said axis through said stationary magnetic core.
- 27. The assembly defined in claim 26 wherein said push rod has a cylindrical outer surface coated with a nickel layer and an outer copper layer.
- 28. The assembly defined in claim 27 wherein said layer of copper has a thickness of 45 to 50 μm and said layer of nickel has a thickness of 50 to 60 μm.
- 29. The assembly defined in claim 26 wherein said push rod, said stationary magnetic core and said movable magnetic core are all made of the same material.
- 30. The assembly defined in claim 26, further comprising means operatively connected to said push rod for restoring said push rod to a withdrawn position prior to a moving of said movable magnetic core along said axis from said maximally extended position to said maximally retracted position.
- 31. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis, and means for supplying to said solenoid an electrical potential in the form of a series of transient electrical pulses having a phase synchronized with a reciprocating stroke of said movable magnetic core.
- 32. The assembly defined in claim 31 wherein said pulses have a sawtooth profile to maximize magnetization for a given average current value.
- 33. The assembly defined in claim 32 wherein said average current value is approximately one-half of a maximum current value of said pulses.
- 34. The assembly defined in claim 31 wherein said pulses have a width or duration which is pulse width modulated according to an instantaneous inductance of said device.
- 35. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis; and an electrical circuit operatively connected to said solenoid for energizing same, said circuit including an additional inductor with a variable inductance.
- 36. The assembly defined in claim 35 wherein said casing is made of magnetic material, said electrical circuit including a power supply and means for periodically disconnecting said power supply from said solenoid during reciprocating of said movable magnetic core, thereby permitting energy recuperation in magnetic material of at least one of said casing, said stationary magnetic core and said movable magnetic core.
- 37. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; and a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis, said solenoid including a coil holder or spool of hard polyurethane vacuum plated with a layer of aluminum, a layer of zinc, and a layer of nickel, said solenoid having a cavity surface lapped with said movable magnetic core in a manufacturing process.
- 38. The assembly defined in claim 37 wherein said layer of aluminum has a thickness of 4 to 5 μm, said layer of zinc has a thickness of 2 to 3 μm, and said layer of nickel has a thickness of 50 to 60 μm.
- 39. The assembly defined in claim 37 wherein said stationary magnetic core and said movable magnetic core have polygonal cross-sections in planes oriented essentially perpendicularly to said axis and wherein said solenoid has a polygonal cross-section in planes oriented essentially perpendicularly to said axis, said spool defining a spool cavity having edges extending parallel to said axis, said edges being provided with elongate oil channels extending parallel to said axis.
- 40. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; and a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis, said solenoid having a first length, said casing has a second length, and said movable magnetic core has a reciprocation stroke of a third length, said first length being greater than third length, said second length being equal to approximately a sum of said first length and said third length.
- 41. The assembly defined in claim 40 wherein said stationary core has a portion with a fourth length disposed inside said solenoid, said fourth length being at least one-third of said third length.
- 42. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; and a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis, said casing being constructed of a plurality of steel fins bonded to each other and having outer surfaces vacuum plated with a layer of aluminum, a layer of zinc, and a layer of nickel.
- 43. The assembly defined in claim 42 wherein said layer of aluminum has a thickness of 4 to 5 μm, said layer of zinc has a thickness of 2 to 3 μm, and said layer of nickel has a thickness of 50 to 60 μm.
- 44. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; and a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis, said stationary magnetic core being manufactured from a plurality of steel fins bonded to each other along planes extending generally perpendicularly to said axis, said steel fins having outer surfaces vacuum plated with a layer of aluminum, a layer of zinc, and a layer of nickel.
- 45. The assembly defined in claim 44 wherein said layer of aluminum has a thickness of 4 to 5 μm, said layer of zinc has a thickness of 2 to 3 μm, and said layer of nickel has a thickness of 50 to 60 μm.
- 46. A magnetic assembly comprising:a casing; a solenoid disposed inside said casing; a stationary magnetic core disposed at least partially inside said solenoid, said stationary core being fixed relative to said solenoid and said casing; and a movable magnetic core disposed for reciprocation partially inside said solenoid along an axis, said solenoid including a coil holder or spool having walls, said stationary magnetic core and said movable magnetic core having working surfaces, said working surfaces and said walls defining a space therebetween, said space being filled with grease.
- 47. An energy conversion method comprising:providing a magnetic device including a casing, a solenoid disposed inside said casing, a stationary magnetic core disposed inside said solenoid, said stationary core being fixed relative to said solenoid and said casing, and a movable magnetic core disposed for reciprocation inside said solenoid along an axis; reciprocating said movable magnetic core along said axis and between a maximally retracted position to a maximally extended position, said movable magnetic core having a maximum proportion of its length located inside said solenoid in said maximally retracted position and a minimum proportion of its length located inside said solenoid in said maximally extended position; and during reciprocating of said movable magnetic core, supplying to said solenoid an electrical potential in the form of a series of transient electrical pulses having a phase synchronized with a reciprocating stroke of said movable magnetic core.
- 48. The method defined in claim 47, further comprising applying a force to said movable magnetic core to return said movable magnetic core from said maximally retracted position to said maximally extended position.
- 49. The method defined in claim 48 wherein the applying of said force includes pushing said movable magnetic core with a push rod extending along said axis through said stationary magnetic core.
- 50. The method defined in claim 49 wherein said push rod, said stationary magnetic core and said movable magnetic core are all made of the same material.
- 51. The method defined in claim 49, further comprising restoring said push rod to a withdrawn position prior to a moving of said movable magnetic core along said axis from said maximally extended position to said maximally retracted position.
- 52. The method defined in claim 51 wherein the restoring of said push rod precedes the moving of said movable magnetic core along said axis from said maximally extended position to said maximally retracted position by at least approximately 0.5 ms.
- 53. The method defined in claim 49 wherein said push rod has a cylindrical outer surface coated with a nickel layer and an outer copper layer.
- 54. The method defined in claim 49 wherein said force is mechanically derived.
- 55. The method defined in claim 54 wherein said force is a spring derived force.
- 56. The method defined in claim 47 wherein said pulses have a sawtooth profile to maximize magnetization for a given average current value.
- 57. The method defined in claim 56 wherein said average current value is approximately one-half of a maximum current value of said pulses.
- 58. The method defined in claim 47 wherein said pulses have a width or duration which is pulse width modulated according to an instantaneous inductance of said device.
- 59. The method defined in claim 47 wherein an additional inductor with a variable inductance is provided in an electrical circuit including said solenoid, further comprising continually adjusting the inductance of said additional inductor during reciprocating of said movable magnetic core to stabilize a magnetization speed of said casing and concomitantly decreasing a growth rate of current passing through said solenoid.
- 60. The method defined in claim 47 wherein said stationary magnetic core and said movable magnetic core have polygonal cross-sections in planes oriented essentially perpendicularly to said axis.
- 61. The method defined in claim 47 wherein said casing is made of magnetic material and the supplying of said electrical potential includes generating said pulses in a power supply and conducting said pulses to said solenoid, further comprising periodically disconnecting said power supply from said solenoid during reciprocating of said movable magnetic core, thereby permitting energy recuperation in magnetic material of at least one of said casing, said stationary magnetic core and said movable magnetic core.
CROSS-REFERENCE TO A RELATED APPLICATION
This application relies for priority purposes on U.S. provisional application Ser. No. 60/070,807 filed Jan. 8, 1998.
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Provisional Applications (1)
|
Number |
Date |
Country |
|
60/070807 |
Jan 1998 |
US |