SOLENOID WITH NON-MAGNETIC FRONT BEARING
20170243683 ยท 2017-08-24
Inventors
Cpc classification
H01F2007/085
ELECTRICITY
F16C33/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2202/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A solenoid actuator is provided having an armature assembly with a separate joined shunt side bearing consisting of a non-magnetic or slightly magnetic material. The material of the shunt side bearing prevents significant amounts of magnetic flux transferring through the lower bearing area of the armature assembly in the radial direction.
Claims
1. A solenoid actuator comprising: a casing: a coil positioned within said casing; a core including a flux return and shunt, said flux return and shunt being axially separated by a flux choke, said core being magnetically connected with said casing and encircled by said coil; and an armature assembly slidably mounted within said core, said armature assembly having a base of magnetic material and a separate shunt side bearing joined to said base magnetic material, said bearing being fabricated from a material having a having at least 50% less magnetic permeability than said base magnetic material.
2. A solenoid actuator as described in claim 1 wherein said shunt side bearing has a radial width of at least 300 microns and an axial length of at least 200 microns.
3. A solenoid actuator as described in claim 1 wherein said armature shunt side bearing material is fabricated from a group of materials taken from polymeric materials, copper, aluminum, stainless steel, zinc, ceramic materials and alloys or composites thereof.
4. A solenoid actuator as described in claim 1 wherein said shunt side bearing is joined to said armature base material by one or more of the following methods including interference fit, sintering, adhesive, molded, braising, and bonding.
5. A solenoid actuator as described in claim 1 wherein said armature is coated.
6. A solenoid actuator as described in claim 1 wherein a transported member is moved by said armature.
7. A solenoid actuator as described in claim 6 wherein said transported member is affixed to said armature and wherein said shunt side bearing is affixed to said transported member.
8. A solenoid actuator as described in claim 1 wherein said armature shunt side bearing is coated.
9. A solenoid actuator as described in claim 1 wherein said armature base material adjacent said shunt side bearing has a reduced diameter axial wedge shaped section.
10. A solenoid actuator comprising: a casing; a coil positioned within said casing; a core including a flux tube and shunt, said flux tube and shunt being axially separated by a flux choke, said core being magnetically connected with said casing and encircled by said coil; and an armature assembly slidably mounted within said core, said armature assembly having a base of magnetic material and a separate shunt side bearing joined to said base magnetic material, said shunt side bearing having a radial width of at least 350 microns and an axial length of at least 200 microns, said shunt side bearing being press fit upon said base of magnetic material, said shunt side bearing being fabricated from a material having at least 50% less magnetic permeability than said base magnetic material.
11. A solenoid actuator comprising: a casing including a lower housing press fit into an upper housing; a coil positioned within said casing; a core including a flux tube and shunt, said flux tube and shunt being axially separated by an integral flux choke, said core being magnetically connected with said casing and encircled by said coil; and an armature assembly slidably mounted within said core, said armature assembly having a base of magnetic material and a separate shunt side bearing joined to said base magnetic material, said shunt side bearing having a radial width of at least 350 microns and an axial length of at least 200 microns of axial length, said shunt side bearing being fabricated from a nonmagnetic material and wherein said base magnetic material directly adjacent to said shunt side bearing has a reduced diameter axial wedge shaped section.
12. A solenoid actuator as described in claim 1 wherein said shunt side bearing covers a major portion of an axial face of said base material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] The present invention will become more fully understood from the detailed description and the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014] The following description of the preferred embodiments is merely exemplary in nature and is in no way intended to limit the invention, its application, or uses.
[0015] Referring to
[0016] Slidably mounted in the core 30 is an armature assembly 40. The armature is fabricated from at least two separate components fabricated from different types of material. The first component is a base fabricated from a base magnetic material. In the example shown, the base material is low carbon steel. The base material 42 has an axial bore 44 axially extending there through to allow hydraulic oil to be on both sides of the armature 40. The armature assembly 40 in its extreme retracted position abuts a magnetic stop 46 provided in the housing 20. The armature assembly 40 also has a joined bearing adjacent to the flux choke 36 or hereinafter referred to as the shunt side bearing 50. The shunt side bearing 50 is fabricated from a material having significantly less magnetic permeability of at least fifty percent less of that of the magnetic carbon steel material. The shunt side bearing 50 can be fabricated from a polymeric material, copper, aluminum, stainless steel, zinc, ceramic materials and/or alloys or composites thereof. The shunt side bearing 50 can be attached to the armature base material 42 by one or more of the following methods including an interference fit, sintering, adhesive connection, molded connection, brazing and/or bonding. In many applications, the shunt side bearing will be attached to an axial face of the base magnetic material 42. The shunt side bearing 50 need not cover the entire face of the armature assembly 40, but it is preferred that it have a radial width or thickness of at least 350 microns and an axial length of 200 microns adjacent the shunt side bearing. Connected with the armature 40 is a transported member 60. The shunt side bearing 50 can be first joined to the transported member 60 and then connected (to the armature base material) by the transported member 60 being fixably connected with a base material 42 of the armature. The solenoid actuator 7 also has a stop 62 to limit travel of the armature. Directly adjacent to the shunt side bearing 50 the base material 42 has a reduced diameter axial wedge shaped section 64 to further ensure contact of the shunt side bearing 50. The reduced diameter axial wedge shaped section 64 minimizes radial flux transfer and maximizes axial flux transfer for this portion of the armature. (Note: In
[0017] In operation the solenoid 7 in its typical rest position has the armature assembly 40 abutted with the stop 46 by virtue of a biasing spring not shown or by virtue of a spring bias provided against the transported member 60 by an apparatus not shown. When the coil 26 is actuated, magnetic flux travels through the casing to the flux tube core into the armature assembly 40 out through the face 66 of the base material and then into the shunt 34. This causes a downward force on the armature causing the armature to slide downward as shown in
[0018] Optionally if desired both the shunt side bearing 50 and the armature base material 42 can have their outer perimeter coated with a light coating of a nickel or other non-magnetic alloy to facilitate the sliding movement of the armature within the core 30.
[0019] Referring to
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[0023] While the invention is shown in
[0024] The description of the invention is merely exemplary in nature and, thus, variations that do not depart from the gist of the invention are intended to be within the scope of the invention. Such variations are not to be regarded as a departure from the spirit and scope of the invention.