Claims
- 1. An improvement in the method of making a galvanometer comprising a rotor and a stator, the galvanometer having a reduced axial force on the rotor, the rotor comprising a permanent-magnet armature supported at a first end and a second end for rotation relative to the stator, the stator comprising a stator back iron and stator drive coils, the improvement comprising the use of a split mold to form the armature, thereby obtaining a high degree of magnetic uniformity along the axis of rotation.
- 2. A method of making a galvanometer comprising a rotor and a stator, the galvanometer having a reduced axial force on the rotor, the rotor comprising a permanent-magnet armature supported at a first end and a second end for rotation relative to the stator, the stator comprising a stator back iron and stator drive coils, the method comprising the steps of:
aligning the stator back iron axially symmetrically relative to the magnetic center of the armature; and aligning the ends of the stator drive coils axially symmetrically relative to the magnetic center of the the armature.
- 3. The method of claim 1 including the step of pressing magnetic material into a permanent magnet shaped as a cylinder by exerting a radially inward force along the mold's length in addition to exerting an axially inward force upon each of the cylinder's ends.
- 4. The method of claim 2 wherein the step of aligning the stator further comprises the step of:
aligning a pair of rotor-supporting bearing assemblies symmetrically relative to the magnetic center of the armature.
- 5. The method of claim 3 in which the steps of using a split mold to form the armature and aligning the stator back iron and drive coil are performed so as to provide a net axial force on the rotor of one pound or less.
- 6. A method of making a galvanometer comprising a rotor and a stator, the galvanometer having a reduced axial force on the rotor, the rotor comprising a permanent magnet armature supported at a first end and a second for rotation with respect to the stator and the stator comprising a stator back iron and stator drive coils, the method comprising the steps of:
preloading a first bearing assembly, that rotationally supports the first end of the rotor, with a relatively high axial spring constant; and, preloading a second bearing assembly, that rotationally supports the second end of the rotor assembly, with a relatively low axial spring constant, whereby substantially all axial thermal expansion of the rotor is accommodated by axial movement of the second end of the rotor.
- 7. The method of claim 6 wherein the step of preloading the first bearing assembly further comprises the step of:
using a duplex bearing set, comprising:
a first ball bearing having a first set of balls between an inner race and an outer race; and, a second ball bearing having a second set of balls between an inner race an outer race; aligning the inner races of the first and the second ball bearings with an axial offset to the outer races of the first and second ball bearing to engage the first and the second set of balls with the respective races, whereby axial movement of the rotor in one direction requires elastic deformation of the balls and races of the first ball bearing and axial movement of the rotor in the other direction requires elastic deformation of the balls and races of the second ball bearing.
- 8. The method of claim 7 further comprising the step of:
matching the coefficient of thermal expansion of the first inner and outer races, the second inner and outer races, the first set of balls, and the second set of balls.
- 9. The method of claim 5 wherein the step of aligning further comprises the steps of:
removing material from opposing surfaces of the inner races of the first and the second ball bearings so their width is less than the width of the outer races of the first and second ball bearings, bringing the outer races of the first and second ball bearings into contact with each other and urging the inner races of the first and second ball bearings toward each other, whereby axial offsets are provided between the inner races of the first and second ball bearings and the outer races of the first and second ball bearings.
- 10. The method of claim 7 wherein the step of aligning further comprises the steps of:
inserting a spacing device between the opposing surfaces of the outer races of the first and the second ball bearings; bringing the outer races of the first and second ball bearings toward each other and into contact with the spacing device and urging the inner races of the first and second ball bearing toward each other, whereby axial offsets are provided between the inner races of the first and second ball bearings and the outer races of the first and second ball bearings.
- 11. The method of claim 6 wherein the step of preloading the first bearing assembly further comprises the steps of:
using a ball bearing comprising:
an inner race; and, an outer race; securing the outer race to the stator in a fixed position; aligning the inner races of the ball bearing, by applying an axial force with a stiff spring, with an al offset to the outer races of the ball bearing, to engage the first and the second set of balls with the races, whereby axial movement of the rotor in one direction requires elastic deformation of the balls and races of the ball bearing and axial movement of the rotor in the other direction requires deflection of the stiff spring.
- 12. The method of claim 11 further comprising the step of:
matching the coefficient of thermal expansion of each of the inner race, the outer race, and the set of balls.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation of commonly assigned copending U.S. patent application Ser. No. 09/475,539 which was filed on Dec. 30th, 1999, by David C. Brown for a Galvanometer with Axial Symmetry and Improved Bearing Design and is hereby incorporated by reference.
Continuations (1)
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Number |
Date |
Country |
Parent |
09475539 |
Dec 1999 |
US |
Child |
10029470 |
Oct 2001 |
US |