Claims
- 1. In a method for forming a variable reluctance rotation sensor having a magnetic toothed wheel with teeth evenly spaced by slots around the periphery thereof and being rotatably supported with respect to a fixed magnetic pickup assembly, said fixed magnetic pickup assembly comprising, in combination:
- a pair of permanent magnets each having a pair of poles, said permanent magnets being separated from each other circumferentially around the periphery of the toothed wheel by an arc equal to the arc between one of the teeth and a non-adjacent slot, whereby the fields of said first and second permanent magnets are alternately and opposingly aligned with teeth and slots as the toothed wheel rotates;
- a magnetic flux member made from a magnetic steel having a carbon content of about 0.04 to about 0.1 weight percent and having a multi-turn electrical coil wound thereon, said magnetic flux member extending between and engaging said first and second permanent magnets in series magnetically opposed relationship and extending between said permanent magnets in proximity to the toothed wheel to hold said electrical coil tangentially in close proximity thereto; and
- each of said magnets having the same poles oriented similarly towards the toothed wheel and said wound multi-turn electrical coil, said method comprising machining to shape a said flux member from a said steel so as to position the permanent magnets in proximity to the toothed wheel, the improvement in said method comprising:
- heating said machined magnetic flux member, prior to the winding of said electrical coil thereon, in a protective atmosphere to a temperature and for a duration sufficient to austenitize said magnetic steel so that essentially a full carbide solution is obtained; and
- then cooling said magnetic flux member in said protective atmosphere at a rate sufficient to minimize martensite formation within said magnetic steel such that said magnetic flux member is characterized by a coarse pearlite microstructure and improved magnetic permeance, and correspondingly said variable reluctance sensor exhibits an increased magnetic flux density when said permanent magnets operate at a given magnetomotive operating force.
- 2. A method for forming a variable reluctance rotation sensor as recited in claim 1 wherein said magnetic flux member is heated to a temperature of about 1300.degree. F. to about 1550.degree. l F. during said heating step.
- 3. A method for forming a variable reluctance rotation sensor as recited in claim 1 wherein said magnetic flux member is cooled at a rate of about 50.degree. F. per hour to about 150.degree. F. per hour during said cooling step.
- 4. A method for forming a variable reluctance rotation sensor as recited in claim 1 wherein said magnetic steel comprises about 0.04 to about 0.1 percent carbon, about 0.5 to about 1.5 percent manganese, up to about 0.1 percent phosphorus, up to about 0.5 percent sulfur and up to about 0.1 percent silicon, with the balance being essentially iron.
- 5. A method for forming a variable reluctance rotation sensor as recited in claim 1 wherein each of said permanent magnets has a common pole adjacent the toothed wheel and said magnetic flux member is heated to a temperature of about 1300.degree. F. to about 1350.degree. F. during said heating step.
- 6. A method for forming a variable reluctance rotation sensor as recited in claim 1 wherein said magnetic flux member joins a common pole of said first and second permanent magnets and said magnetic flux member is heated to a temperature of about 1500.degree. F. to about 1550.degree. F. during said heating step.
- 7. A method for forming a magnetic flux member suitable for use in a variable reluctance rotation sensor comprising the following steps:
- machining a magnetic flux member from a magnetic steel having about 0.04 to about 0.1 percent carbon;
- heating said magnetic flux member in a vacuum to a temperature of about 1300.degree. F. to about 1550.degree. F. and for a duration sufficient to austenitize said magnetic steel so that essentially a full carbide solution is obtained; and
- then cooling said magnetic flux member in said vacuum at a rate of about 50.degree. F. per hour to about 150.degree. F. per hour sufficient to minimize martensite formation within said magnetic steel;
- such that said magnetic flux member is characterized by primarily a coarse pearlite microstructure and enhanced magnetic permeance so as to be suitable for use in a closed magnetic circuit within a variable reluctance sensor, said magnetic circuit being capable of operating at an increased flux density for a given magnetomotive operating force within said magnetic circuit.
Parent Case Info
This patent application is a continuation-in-part patent application of U.S. Ser. No. 07/756,707 filed Sep. 9, 1991, now abandoned.
US Referenced Citations (4)
Foreign Referenced Citations (4)
Number |
Date |
Country |
0431749 |
Jun 1991 |
EPX |
2924700 |
Jan 1981 |
DEX |
2112298 |
Jun 1972 |
FRX |
2406876 |
May 1979 |
FRX |
Non-Patent Literature Citations (1)
Entry |
Harold E. McGannon, "The Making, Shaping and Treating of Steel", United States Steel, pp. 1123-1124, Ninth Edition, 1971. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
756707 |
Sep 1991 |
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