Claims
- 1. An electromagnetic actuator, comprising:
a coil; a movable core; and a stator core that forms a magnetic flux circuit with the movable core and attracts the movable core in an attracting direction when the coil is energized, wherein the stator core comprises:
a housing portion that houses the movable core; and an attracting portion located on an attracting side relative to the housing portion, the attracting portion having an inner surface that has a uniform diameter over a movable range of the movable core, and an outer surface, the diameter of the outer surface being increased in the attracting direction, and an increasing rate of the diameter being decreased in the attracting direction.
- 2. The electromagnetic actuator according to claim 1, wherein the inner surface of the attracting portion faces an outer surface of the movable core radially, an axial length of a facing area of the inner surface and the outer surface is increased as the movable core is attracted in the attracting direction.
- 3. The electromagnetic actuator according to claim 2, further comprising a valve that is operated by the plunger.
- 4. The electromagnetic actuator according to claim 1, wherein the outer surface is defined by a plurality of tapered surfaces inclined outwardly in the attracting direction, an inclination angle of the tapered surface is greater than that of the other tapered surface located on the attracting direction relative to the tapered surface.
- 5. The electromagnetic actuator according to claim 4, wherein the outer surface of the attracting portion is defined by a convex curve.
- 6. The electromagnetic actuator according to claim 1, further comprising an axial facing portion located on the attracting side relative to the movable core to face the movable core in an axial direction, wherein the axial facing portion defines a parallel gap with the movable core.
- 7. The electromagnetic actuator according to claim 1, wherein the increasing rate of the outer surface of the attracting portion is decreased so as to guide a magnetic flux in an oblique direction when the movable core radially faces the attracting portion via a relatively large facing area.
- 8. The electromagnetic actuator according to claim 1, wherein the inner surface of the attracting portion includes a facing area that faces an outer surface of the movable core when the movable core is attracted in the attracting direction, and the outer surface of the attracting portion having the increasing diameter is located radial outside of the facing area.
- 9. The electromagnetic actuator according to claim 1, wherein the housing portion and the attracting portion are formed integrally.
- 10. The electromagnetic actuator according to claim 9, wherein the stator core further comprising a thin wall portion that connects the housing portion and the attracting portion.
- 11. An electromagnetic actuator, comprising:
a coil; a movable core; and a stator core that forms a magnetic flux circuit with the movable core and attracts the movable core in an attracting direction when the coil is energized, wherein the stator core comprises:
a housing portion that houses the movable core; an attracting portion located on an attracting side relative to the housing portion, the attracting portion having an inner surface that has a uniform diameter over a movable range of the movable core, and an outer surface, the diameter of the outer surface being uniformly increased in the attracting direction; and an axial facing portion located on the attracting side relative to the movable core to face the movable core in an axial direction.
- 12. The electromagnetic actuator according to claim 11, wherein the axial facing portion defines a parallel gap with the movable core.
- 13. The electromagnetic actuator according to claim 11, wherein the axial facing portion and a surface of the movable core facing the axial facing portion are inclined inwardly in the attracting direction.
- 14. The electromagnetic actuator according to claim 11, wherein the housing portion and the attracting portion are formed integrally.
- 15. The electromagnetic actuator according to claim 14, wherein the stator core further comprising a thin wall portion that connects the housing portion and attracting portion.
- 16. An electromagnetic actuator, comprising:
a coil; a movable core; and a stator core that forms a magnetic flux circuit with the movable core and attracts the movable core in an attracting direction when the coil is energized, wherein the stator core comprises:
a housing portion that houses the movable core; an attracting portion located on an attracting side relative to the housing portion, the attracting portion having an inner surface that has a uniform diameter over a movable range of the movable core and faces an outer surface of the movable core, an outer surface having diameter that is increased in the attracting direction, for providing a magnetic flux passing through the attracting portion and the movable portion in an oblique direction; and means for providing an auxiliary magnetic flux passing through the attracting portion and the movable core in the oblique direction or an axial direction when the movable core is attracted a predetermined distance from an initial position.
- 17. The electromagnetic actuator according to claim 16, wherein the means is provided by decreasing an increasing rate of the diameter of the outer surface in the attracting direction.
- 18. The electromagnetic actuator according to claim 17, wherein the means is provided by a tapered surface that provides a smaller inclination angle at a position located on the attracting side relative to the other position.
- 19. The electromagnetic actuator according to claim 16, wherein the means is an axial facing portion located on the attracting side relative to the movable core to face the movable core in an axial direction.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2001-152384 |
May 2001 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application is based on Japanese Patent Application No. 2001-152384 filed on May 22, 2001 the contents of which are incorporated herein by reference.