US3609611A - Method and apparatus for stabilizing permanent magnets - Google Patents

Method and apparatus for stabilizing permanent magnets Download PDF

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US3609611A
US3609611A US861402A US3609611DA US3609611A US 3609611 A US3609611 A US 3609611A US 861402 A US861402 A US 861402A US 3609611D A US3609611D A US 3609611DA US 3609611 A US3609611 A US 3609611A
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flux density
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F13/00Apparatus or processes for magnetising or demagnetising
    • H01F13/003Methods and devices for magnetising permanent magnets

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  • One way of accomplishing this is to magnetize the magnet to a flux density which is greater than the preselected value and then stabilize the magnet, that is, reduce the flux density to the preselected value.
  • the present invention contemplates the provision of a simple and inexpensive method for stabilizing a permanent magnet accurately to a preselected value of flux density. More particularly, according to the invention, the magnet is magnetized in the desired direction to a flux density greater than the preselected value and then the magnet is progressively magnetized in a perpendicular direction. Such magnetization in the perpendicular direction progressively reduces the flux density of the magnet in the desired direction and is continued until the flux density in the desired direction has been reduced to the preselected value.
  • the invention also resides in the novel apparatus for stabilizing the magnet.
  • FIG. 1 is a perspective view of a reed switch which is usable with a permanent magnet stabilized in accordance with the present invention.
  • FIG. 2 is a perspective view of the permanent magnet assembly.
  • FIG. 3 is a side view of the magnet assembly.
  • FIG. 4 is an enlarged perspective view of the permanent magnet.
  • FIG. 5 is a side view of the permanent magnet assembly coacting with a reed switch.
  • FIG. 6 is a view similar to FIG. 5 but shows the parts in a moved position.
  • FIG. 7 is a graph showing the hysteresis loops of the magnet shown in FIG. 4.
  • FIG. 8 is a perspective view of the magnet assembly for stabilizing the permanent magnet.
  • FIG. 9 is an enlarged fragmentary sectional view taken along the line 9-9 in FIG. 8.
  • FIG. 10 is a schematic side view of the magnet assembly shown in FIG. 8.
  • FIG. III is a perspective view of the magnet assembly with the addition of means for carrying the magnet to be stabilized.
  • FIG. 12 is an enlarged fragmentary sectional view taken along the line 12-12 in FIG. 11.
  • FIG. 13 is an enlarged perspective view of the carriage for supporting the magnet to be stabilized.
  • FIG. 14 is an enlarged fragmentary end view of the carriage.
  • the invention is shown in the drawings in connection with a permanent magnet 10 especially suitable for actuating a reed switch 11.
  • the reed switch is normally open and comprises two contacts l2 disposed within a sealed glass tube 13 and supported on the ends of individual reeds 14. The latter project through the sealed ends of the tube and, outside the tube, the reeds form terminals 15.
  • the magnet 10 is an elongated ceramic bar magnet which is magnetized along the N-S axis (the arrow 16 in FIG. 3) so that one-half of the magnet is a north pole and the other half is a south pole as illustrated in FIG. 3.
  • a steel plate 17 is secured to the back of the magnet to provide a return path for the flux of the magnet.
  • the magnet 10 initially is spaced from the reed switch 11 a distance from the axis a of the switch greater than a preselected distance such as the distance d. as shown in FIG. 5 and, when the magnet is in this position, it is ineffective to close the contacts 14.
  • a preselected distance such as the distance d. as shown in FIG. 5 and, when the magnet is in this position, it is ineffective to close the contacts 14.
  • the magnet is moved laterally toward the switch until it is spaced from the axis a by the distance d (FIG. 6) the contacts close because they are sufficiently within the flux path (shown in broken linesin FIGS. 5 and 6) of the magnet so as to be drawn together.
  • the magnet 10 when used with the reed switch 11, for example, the magnet 10 should close the contacts 14 when it is spaced exactly the distance d from the axis a of the switch. Closing of the contacts should not occur when the spacing is greater nor should closing be deferred until the spacing is less than the distance d.
  • the present invention contemplates a new and improved method of precisely magnetizing a permanent magnet to a preselected strength of flux density and is based upon a novel manner of stabilizing the magnet.
  • Stabilizing is taking a magnet which has been magnetized along the north-south axis to a strength above the preselected value, preferably to saturation, and then reducing the strength along this, axis until it has reached the preselected value.
  • the invention utilizes the concept that the volume of material which makes up the magnet 10 is capable of producing a fixed maximum amount of magnetic energy irrespective of the direction in which the magnet is magnetized. Thus, if a magnet is magnetized in a first direction and then is gradually magnetized in a perpendicular direction, the magnetic force in the first direction will be progressively reduced.
  • the magnet 10 is magnetized along the desired axis to a flux density, and preferably to saturation, which is above the desired or preselected value and then the magnet is gradually magnetized in a perpendicular direction until the flux density along the desired axis has been reduced to the preselected value.
  • the magnet 10 in FIG. 4 is magnetized to saturation along the N-S axis.
  • the flux density of the magnet in this direction is illustrated by the curve 18 in FIG. 7 which is the second or operating quadrant of the hysteresis loop of the magnet 10 in the N-S direction.
  • the magnet then is gradually magnetized in a perpendicular direction, that is, along either the axis CD or the axis GH. This gradually reduces the flux density in the N-S direction as indicated by the diminishing size of the hysteresis loops illustrated by the broken line curves numbered 1 through 7 in FIG. 7.
  • the magnet is magnetized in the CD or G-H direction until this curve is reached.
  • a conventional Hall probe may be used to measure the flux density in the N-S direction and to indicate when the proper value has been obtained.
  • the magnet 10 is magnetized in a perpendicular direction, that is, the CD or G-H direction, through the use of a permanent magnet assembly 19 (FIG. 8) with pole faces 20 which define a tapered airgap 21. While the magnetic potential between the pole faces is constant throughout the length of airgap, the
  • magnetizing force (Oersteds) of the assembly 19 progressively increases from the wide end of the gap to the narrow end.
  • stabilizing is accomplished by magnetizing the magnet 10 in the CD direction.
  • the magnet first is magnetized to saturation along the NS axis and then, as shown in solid lines in FIG. 8, it is placed at the wide end of the airgap 21 with the N-S axis perpendicular to the force lines 22 of the assembly 19 and the CD axis parallel to these force lines (see also FIG. 10). Without changing this orientation, the magnet is moved into the airgap (see broken line position in FIG. 8). Due to the increasing magnetizing force, the magnet is progressively magnetized in the CD direction.
  • the flux density in the N-S direction correspondingly decreases and is measured by a Hall probe 23 connected to a meter 24 by leads 25.
  • the magnet is removed from the assembly 19 either sidewise or back through the wide end of the airgap.
  • the magnet assembly 19 includes a ceramic permanent magnet 26 with flat plates 27 abutting the magnetic ends of the magnet.
  • the plates are made of magnetic material such as cold rolled steel and project beyond one side of the permanent magnet.
  • Attached to the inner sides of the overhanging portions of the plates 27 are wedge-shaped pole pieces 28 which also are made of a magnetic material such as cold rolled steel The pole faces are formed on the pole pieces 28 which thus define the tapered airgap 21.
  • the magnet assembly 19 may include a carriage 29 to hold the magnet 10 being stabilized and to move the magnet into the airgap 21.
  • brackets 30 and 31 are secured to the ends of the magnet by bolts 32 which project through horizontal slots 33 in the brackets and are threaded into the magnet, the slots 33 permitting the brackets to be adjusted for purposes of alignment.
  • the carriage 29 is slidably supported on guides or rods 34 spanning the brackets 30 and 31 and projecting through downwardly facing arcuate grooves 35 formed on the sides of the carriage (FIG. 13 and 14). The latter is held on the rods by plates 36 which project under the rods and are fastened to the underside of the carriage by screws 37.
  • the ends of the rods 34 project into vertical slots 38 (FIG. 11) in the brackets 30 and 31 and are held in place by setscrews 39 which are used to align the rods 34 and center the carriage 29 relative to the airgap 21.
  • the carriage 29 is slid along the rods 34 into and out of the airgap 21 by a wire 40 which is secured at one end 41 (FIG. 12) to the carriage and extends parallel to the rods through a hole 42 in the bracket 30 and around a pulley 43 journaled in a housing 44 on the bracket. From the pulley, the wire extends back through a second hole 45 in the bracket 30, through a hole 46 in the carriage, through a hole 47 in the bracket 31, around a second pulley 48 and through a second hole 49 in the bracket 31, the end 50 of the wire also being secured to the carriage.
  • the pulley 48 is fast on a shaft 51 which is journaled in a housing 52 on the bracket 31.
  • a worm wheel 53 which meshes with a worm 54 on the inner end of a perpendicular shaft 55 which is journaled in the housing 52.
  • the outer end of the shaft 55 carries a knob 56 which may be turned manually to move the carriage into and out of the airgap 21.
  • a flat boss 57 (FIG. 13) formed with an elongated slot 58 of square cross section.
  • the slot is perpendicular to the direction in which the carriage travels and is sized to receive the magnet 10 to be stabilized.
  • the Hall probe 23 Inside the boss 57 is the Hall probe 23 and the leads between the probe and the meter 24 are disposed in a flexible conduit 59.
  • the magnet 10 first is magnetized, preferably to saturation, in the N-S direction. Then, with the carriage 29 outside the airgap 21 and next to the large end thereof, the magnet is placed in the slot 58. Next, the knob 56 is turned to advance the carriage into the wide end of the airgap and toward the narrow end thereby progressively magnetizing the magnet 10 in the C-D direction and reducing the flux density in the N-S direction.
  • the meter 24 indicates that the flux density in the N-S direction has been reduced to the preselected value, the carriage 29 is backed out of the airgap 21 and the stabilized magnet 10 is removed.
  • a method of magnetizing a piece of magnetic material to a preselected flux density along a predetermined direction relative to said piece comprising the steps of magnetizing said piece in said predetermined direction to a flux density value above said preselected value, thereafter moving said piece into a progressively increasing magnetic field with the piece oriented relative to the field to progressively magnetize said piece in a direction pe endicular to said predetermined direction to progressively re uce the flux density in said predetermined direction, and removing said piece from said field when the flux density in said predetermined direction has been reduced to said preselected value.
  • Apparatus for reducing the flux density of a permanent magnet along its north-south axis to a preselected value said apparatus having, in combination, a magnet having opposed pole faces defining an airgap which tapers gradually from a I wide end to a narrow end, a support having a loading position alongside the wide end of said airgap and adapted to carry the permanent magnet with its north-south axis perpendicular to the flux path across said airgap, and means for moving said support progressively into said airgap until the flux density of the permanent magnet along said axis has been reduced to said preselected value.

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  • Power Engineering (AREA)
  • Measuring Magnetic Variables (AREA)

Abstract

Method and apparatus for stabilizing permanent magnets, that is, reducing the flux density of a magnet in a predetermined direction to a preselected value. The magnet first is magnetized in the desired direction to a flux density greater than the preselected value and preferably to saturation. Thereafter, the magnet is progressively magnetized in a perpendicular direction and this correspondingly reduces the flux density in the desired direction. This magnetization in the perpendicular direction continues until the flux density in the desired direction has been reduced to the preselected value.

Description

United States Patent Robert A. Parnell 648 Washington St., Marengo, 1]]. 60152 [2!] Appl. No. 861,402
[22] Filed Sept. 26, 1969 [45] Patented Sept. 28, 1971 [72] lnventor [54] METHOD AND APPARATUS FOR STABILIZING PERMANENT MAGNETS 5 Claims, 14 Drawing Figs. [52] U.S. Cl 335/284, 335/302, 317/l57.5 [5|] Int. Cl 1101f 13/00 [50] Field of Search 335/284,
[56] References Cited UNITED STATES PATENTS 2,305,659 12/1942 Arnold 3,139,567 6/1964 Atkins0n....- 335/284 3,235,776 2/1966 Ireland t. 317/1575 3,249,824 5/1966 Pearse 335/284 Primary Examiner-G. Harris Attorney- Wolfe, Hubbard, Leydig, Voit & Osann ABSTRACT: Method and apparatus for stabilizing permanent magnets, that is, reducing the flux density ofa magnet in a predetermined direction to a preselected value. The magnet first is magnetized in the desired direction to a flux density greater than the preselected value and preferably to saturation. Thereafter, the magnet is progressively magnetized in a perpendicular direction and this correspondingly reduces the flux density in the desired direction; This magnetization in the perpendicular direction continues until the flux density in the desired direction has been reduced to the preselected value,
PATENTED SEP28 l97| SHEET 1 UF 3 PATENTED SEP28 ISYI SHEET 2 OF 3 PATENTED SEP28 1971 SHEET 3 BF 3 METHOD AND APPARATUS FOR STABILIZING PERMANENT MAGNETS BACKGROUND OF THE INVENTION In many commercial uses, it is important that the magnetization of a permanent magnet in the desired direction be controlled accurately at a preselected value of flux density. One way of accomplishing this is to magnetize the magnet to a flux density which is greater than the preselected value and then stabilize the magnet, that is, reduce the flux density to the preselected value.
SUMMARY OF THE INVENTION The present invention contemplates the provision of a simple and inexpensive method for stabilizing a permanent magnet accurately to a preselected value of flux density. More particularly, according to the invention, the magnet is magnetized in the desired direction to a flux density greater than the preselected value and then the magnet is progressively magnetized in a perpendicular direction. Such magnetization in the perpendicular direction progressively reduces the flux density of the magnet in the desired direction and is continued until the flux density in the desired direction has been reduced to the preselected value. The invention also resides in the novel apparatus for stabilizing the magnet.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a perspective view of a reed switch which is usable with a permanent magnet stabilized in accordance with the present invention.
FIG. 2 is a perspective view of the permanent magnet assembly.
FIG. 3 is a side view of the magnet assembly.
FIG. 4 is an enlarged perspective view of the permanent magnet.
FIG. 5 is a side view of the permanent magnet assembly coacting with a reed switch.
FIG. 6 is a view similar to FIG. 5 but shows the parts in a moved position.
FIG. 7 is a graph showing the hysteresis loops of the magnet shown in FIG. 4.
FIG. 8 is a perspective view of the magnet assembly for stabilizing the permanent magnet.
FIG. 9 is an enlarged fragmentary sectional view taken along the line 9-9 in FIG. 8.
FIG. 10 is a schematic side view of the magnet assembly shown in FIG. 8.
FIG. III is a perspective view of the magnet assembly with the addition of means for carrying the magnet to be stabilized.
FIG. 12 is an enlarged fragmentary sectional view taken along the line 12-12 in FIG. 11.
FIG. 13 is an enlarged perspective view of the carriage for supporting the magnet to be stabilized.
FIG. 14 is an enlarged fragmentary end view of the carriage.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT For purposes of illustration, the invention is shown in the drawings in connection with a permanent magnet 10 especially suitable for actuating a reed switch 11. As is conventional, the reed switch is normally open and comprises two contacts l2 disposed within a sealed glass tube 13 and supported on the ends of individual reeds 14. The latter project through the sealed ends of the tube and, outside the tube, the reeds form terminals 15. Herein, the magnet 10 is an elongated ceramic bar magnet which is magnetized along the N-S axis (the arrow 16 in FIG. 3) so that one-half of the magnet is a north pole and the other half is a south pole as illustrated in FIG. 3. A steel plate 17 is secured to the back of the magnet to provide a return path for the flux of the magnet.
In use, as an example, the magnet 10 initially is spaced from the reed switch 11 a distance from the axis a of the switch greater than a preselected distance such as the distance d. as shown in FIG. 5 and, when the magnet is in this position, it is ineffective to close the contacts 14. When the magnet is moved laterally toward the switch until it is spaced from the axis a by the distance d (FIG. 6) the contacts close because they are sufficiently within the flux path (shown in broken linesin FIGS. 5 and 6) of the magnet so as to be drawn together.
In many commercial applications of permanent magnets, it is important that the strength, or flux density, of the magnet be at a precise, preselected value. Thus, when used with the reed switch 11, for example, the magnet 10 should close the contacts 14 when it is spaced exactly the distance d from the axis a of the switch. Closing of the contacts should not occur when the spacing is greater nor should closing be deferred until the spacing is less than the distance d.
The present invention contemplates a new and improved method of precisely magnetizing a permanent magnet to a preselected strength of flux density and is based upon a novel manner of stabilizing the magnet. Stabilizing is taking a magnet which has been magnetized along the north-south axis to a strength above the preselected value, preferably to saturation, and then reducing the strength along this, axis until it has reached the preselected value. The invention utilizes the concept that the volume of material which makes up the magnet 10 is capable of producing a fixed maximum amount of magnetic energy irrespective of the direction in which the magnet is magnetized. Thus, if a magnet is magnetized in a first direction and then is gradually magnetized in a perpendicular direction, the magnetic force in the first direction will be progressively reduced. In accordance with the present invention, therefore, the magnet 10 is magnetized along the desired axis to a flux density, and preferably to saturation, which is above the desired or preselected value and then the magnet is gradually magnetized in a perpendicular direction until the flux density along the desired axis has been reduced to the preselected value.
For example, the magnet 10 in FIG. 4 is magnetized to saturation along the N-S axis. The flux density of the magnet in this direction is illustrated by the curve 18 in FIG. 7 which is the second or operating quadrant of the hysteresis loop of the magnet 10 in the N-S direction. The magnet then is gradually magnetized in a perpendicular direction, that is, along either the axis CD or the axis GH. This gradually reduces the flux density in the N-S direction as indicated by the diminishing size of the hysteresis loops illustrated by the broken line curves numbered 1 through 7 in FIG. 7. Thus, if the desired flux density of the magnet 10 in the N-S direction is represented by the curve 3, the magnet is magnetized in the CD or G-H direction until this curve is reached. As will be explained later in detail, a conventional Hall probe may be used to measure the flux density in the N-S direction and to indicate when the proper value has been obtained.
In accordance with another aspect of the invention, the magnet 10 is magnetized in a perpendicular direction, that is, the CD or G-H direction, through the use of a permanent magnet assembly 19 (FIG. 8) with pole faces 20 which define a tapered airgap 21. While the magnetic potential between the pole faces is constant throughout the length of airgap, the
magnetizing force (Oersteds) of the assembly 19 progressively increases from the wide end of the gap to the narrow end. As illustrated herein, stabilizing is accomplished by magnetizing the magnet 10 in the CD direction. Thus, the magnet first is magnetized to saturation along the NS axis and then, as shown in solid lines in FIG. 8, it is placed at the wide end of the airgap 21 with the N-S axis perpendicular to the force lines 22 of the assembly 19 and the CD axis parallel to these force lines (see also FIG. 10). Without changing this orientation, the magnet is moved into the airgap (see broken line position in FIG. 8). Due to the increasing magnetizing force, the magnet is progressively magnetized in the CD direction. At the same time, the flux density in the N-S direction correspondingly decreases and is measured by a Hall probe 23 connected to a meter 24 by leads 25. When the meter indicates that the flux density has been reduced to the preselected value, the magnet is removed from the assembly 19 either sidewise or back through the wide end of the airgap.
1n the present instance, the magnet assembly 19 includes a ceramic permanent magnet 26 with flat plates 27 abutting the magnetic ends of the magnet. The plates are made of magnetic material such as cold rolled steel and project beyond one side of the permanent magnet. Attached to the inner sides of the overhanging portions of the plates 27 are wedge-shaped pole pieces 28 which also are made of a magnetic material such as cold rolled steel The pole faces are formed on the pole pieces 28 which thus define the tapered airgap 21.
As illustrated in FIGS. 11 through 14, the magnet assembly 19 may include a carriage 29 to hold the magnet 10 being stabilized and to move the magnet into the airgap 21. To support the carriage 29, brackets 30 and 31 are secured to the ends of the magnet by bolts 32 which project through horizontal slots 33 in the brackets and are threaded into the magnet, the slots 33 permitting the brackets to be adjusted for purposes of alignment. The carriage 29 is slidably supported on guides or rods 34 spanning the brackets 30 and 31 and projecting through downwardly facing arcuate grooves 35 formed on the sides of the carriage (FIG. 13 and 14). The latter is held on the rods by plates 36 which project under the rods and are fastened to the underside of the carriage by screws 37. The ends of the rods 34 project into vertical slots 38 (FIG. 11) in the brackets 30 and 31 and are held in place by setscrews 39 which are used to align the rods 34 and center the carriage 29 relative to the airgap 21.
The carriage 29 is slid along the rods 34 into and out of the airgap 21 by a wire 40 which is secured at one end 41 (FIG. 12) to the carriage and extends parallel to the rods through a hole 42 in the bracket 30 and around a pulley 43 journaled in a housing 44 on the bracket. From the pulley, the wire extends back through a second hole 45 in the bracket 30, through a hole 46 in the carriage, through a hole 47 in the bracket 31, around a second pulley 48 and through a second hole 49 in the bracket 31, the end 50 of the wire also being secured to the carriage. The pulley 48 is fast on a shaft 51 which is journaled in a housing 52 on the bracket 31. Also fast on the shaft 51 is a worm wheel 53 which meshes with a worm 54 on the inner end of a perpendicular shaft 55 which is journaled in the housing 52. The outer end of the shaft 55 carries a knob 56 which may be turned manually to move the carriage into and out of the airgap 21.
On the upper side of the carriage 29 is a flat boss 57 (FIG. 13) formed with an elongated slot 58 of square cross section. The slot is perpendicular to the direction in which the carriage travels and is sized to receive the magnet 10 to be stabilized. Inside the boss 57 is the Hall probe 23 and the leads between the probe and the meter 24 are disposed in a flexible conduit 59.
With the foregoing arrangement, the magnet 10 first is magnetized, preferably to saturation, in the N-S direction. Then, with the carriage 29 outside the airgap 21 and next to the large end thereof, the magnet is placed in the slot 58. Next, the knob 56 is turned to advance the carriage into the wide end of the airgap and toward the narrow end thereby progressively magnetizing the magnet 10 in the C-D direction and reducing the flux density in the N-S direction. When the meter 24 indicates that the flux density in the N-S direction has been reduced to the preselected value, the carriage 29 is backed out of the airgap 21 and the stabilized magnet 10 is removed.
1 claim as my invention:
1. A method of magnetizing a piece of magnetic material to a preselected flux density along a predetermined direction relative to said piece, said method comprising the steps of magnetizing said piece in said predetermined direction to a flux density value above said preselected value, thereafter moving said piece into a progressively increasing magnetic field with the piece oriented relative to the field to progressively magnetize said piece in a direction pe endicular to said predetermined direction to progressively re uce the flux density in said predetermined direction, and removing said piece from said field when the flux density in said predetermined direction has been reduced to said preselected value.
2. A method of magnetizing a piece of magnet material to a preselected flux density value along a predetermined direction and using a permanent magnet having an airgap which tapers progressively from a wide end to a narrow end, said method comprising the steps of magnetizingsaid piece along said predetermined direction to a flux density value above said preselected value, said predetermined direction thereby becoming the axis between the north and south poles of the magnetized piece, placing said piece at the wide end of said airgap with said axis perpendicular to the flux path of said permanent magnet across the gap, progressively moving said piece into said gap without changing the orientation of the piece relative to said permanent magnet thereby to progressively magnetize said piece in a direction perpendicular to said axis and correspondingly reduce the flux density of the piece along said axis, and stopping, the movement of said piece through said gap when the flux density of said piece along said axis has been reduced to said preselected value.
3. Apparatus for reducing the flux density of a permanent magnet along its north-south axis to a preselected value, said apparatus having, in combination, a magnet having opposed pole faces defining an airgap which tapers gradually from a I wide end to a narrow end, a support having a loading position alongside the wide end of said airgap and adapted to carry the permanent magnet with its north-south axis perpendicular to the flux path across said airgap, and means for moving said support progressively into said airgap until the flux density of the permanent magnet along said axis has been reduced to said preselected value.
4. Apparatus as defined by claim 3 in which the magnet forming said tapered airgap is a permanent magnet.
5. Apparatus as defined by claim 3 including a measuring device, said measuring device including a sensor mounted on said support and operable to measure the magnetization of said permanent magnet along said north-south axis.

Claims (5)

1. A method of magnetizing a piece of magnetic material to a preselected flux density along a predetermined direction relative to said piece, said method comprising the steps of magnetizing said piece in said predetermined direction to a flux density value above said preselected value, thereafter moving said piece into a progressively increasing magnetic field with the piece oriented relative to the field to progressively magnetize said piece in a direction perpendicular to said predetermined direction to progressively reduce the flux density in said predetermined direction, and removing said piece from said field when the flux density in said predetermined direction has been reduced to said preselected value.
2. A method of magnetizing a piece of magnet material to a preselected flux density value along a predetermined direction and using a permanent magnet having an airgap which tapers progressively from a wide end to a narrow end, said method comprising the steps of magnetizing said piece along said predetermined direction to a flux density value above said preselected value, said predetermined direction thereby becoming the axis between the north and south poles of the magnetized piece, placing said piece at the wide end of said airgap with said axis perpendicular to the flux path of said permanent magnet across the gap, progressively moving said piece into said gap without changing the orientation of the piece relative to said permanent magnet thereby to progressively magnetize said piece in a direction perpendicular to said axis and correspondingly reduce the flux density of the piece along said axis, and stopping, the movement of said piece through said gap when the flux density of said piece along said axis has been reduced to said preselected value.
3. Apparatus for reducing the flux density of a permanent magnet along its north-south axis to a preselected value, said apparatus having, in combination, a magnet having opposed pole faces defining an airgap which tapers gradually from a wide end to a narrow end, a support having a loading position alongside the wide end of said airgap and adapted to carry the permanent magnet with its north-south axis perpendicular to the flux path across said airgap, and means for moving said support progressively into said airgap until the flux density of the permanent magnet along said axis has been reduced to said preselected value.
4. Apparatus as defined by claim 3 in which the magnet forming said tapered airgap is a permanent magnet.
5. Apparatus as defined by claim 3 including a measuring device, said measuring device including a sensor mounted on said support and operable to measure the magnetization of said permanent magnet along said north-south axis.
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US3708727A (en) * 1971-07-22 1973-01-02 Allen Bradley Co Method for adjusting the strength of high energy magnets
US3931618A (en) * 1973-11-14 1976-01-06 Hewlett-Packard Company Housing structure and magnetic biasing for bubble memories
US4354218A (en) * 1979-03-01 1982-10-12 Steingroever Erich A Process and apparatus for multi-polar magnetization of annular permanent magnets
US4689444A (en) * 1986-07-25 1987-08-25 Rockwell International Corporation Electrical cable apparatus
US4692732A (en) * 1986-05-30 1987-09-08 The United States Of America As Represented By The Secretary Of The Army Remanence varying in a leakage free permanent magnet field source
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US4928081A (en) * 1989-03-13 1990-05-22 The United States Of America As Represented By The Secretary Of The Army Method of mass producing superconducting persistent current rings
US5187462A (en) * 1990-02-15 1993-02-16 Minnesota Mining And Manufacturing Company Multiple magnet assembly for use with electromagnetic article surveillance markers
US5380430A (en) * 1992-07-24 1995-01-10 Overton; James M. Magnetizing apparatus for treatment of fluids
US5557493A (en) * 1994-04-05 1996-09-17 Cts Corporation Method of adjusting linearity
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US6937007B1 (en) * 2003-04-07 2005-08-30 Sauer-Danfoss Inc. Magnet field symmetry for hall sensor
US20060044269A1 (en) * 2004-08-30 2006-03-02 Sauer-Danfoss Inc. Joystick device with redundant processing
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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3708727A (en) * 1971-07-22 1973-01-02 Allen Bradley Co Method for adjusting the strength of high energy magnets
US3931618A (en) * 1973-11-14 1976-01-06 Hewlett-Packard Company Housing structure and magnetic biasing for bubble memories
US4354218A (en) * 1979-03-01 1982-10-12 Steingroever Erich A Process and apparatus for multi-polar magnetization of annular permanent magnets
US4692732A (en) * 1986-05-30 1987-09-08 The United States Of America As Represented By The Secretary Of The Army Remanence varying in a leakage free permanent magnet field source
EP0257767A1 (en) * 1986-07-21 1988-03-02 Minnesota Mining And Manufacturing Company Improved demagnetization apparatus for magnetic markers used with article surveillance systems
US4689444A (en) * 1986-07-25 1987-08-25 Rockwell International Corporation Electrical cable apparatus
US4928081A (en) * 1989-03-13 1990-05-22 The United States Of America As Represented By The Secretary Of The Army Method of mass producing superconducting persistent current rings
US5187462A (en) * 1990-02-15 1993-02-16 Minnesota Mining And Manufacturing Company Multiple magnet assembly for use with electromagnetic article surveillance markers
US5380430A (en) * 1992-07-24 1995-01-10 Overton; James M. Magnetizing apparatus for treatment of fluids
US5557493A (en) * 1994-04-05 1996-09-17 Cts Corporation Method of adjusting linearity
DE10227340A1 (en) * 2002-06-19 2004-01-15 Siemens Ag Magnetizing device for magnetizing workpieces, has at least four permanent magnets having longitudinal- and frontal-faces in given sectional plane
DE10227340B4 (en) * 2002-06-19 2005-05-12 Siemens Ag Magnetizing device with permanent magnets
US6937007B1 (en) * 2003-04-07 2005-08-30 Sauer-Danfoss Inc. Magnet field symmetry for hall sensor
US20060044269A1 (en) * 2004-08-30 2006-03-02 Sauer-Danfoss Inc. Joystick device with redundant processing
US7757579B2 (en) 2004-08-30 2010-07-20 Sauer-Danfoss Inc. Joystick device with redundant sensor processing
CN101404200B (en) * 2008-07-17 2010-12-08 上海交通大学 Micro-processor controlled magnet-stabilizing device
DE102012005057A1 (en) * 2012-03-15 2013-09-19 Michael Volmer Magnetization device for e.g. electronic component, has flux concentration device to increase magnetic field strength in magnetization space, such that entrance slit and exit slit are connected over continuous intervention channel

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