MAGNETIC LATCHING ACTUATOR
20230011724 ยท 2023-01-12
Assignee
Inventors
- Nicholas Seng (Chicago, IL, US)
- Alejandro Montenegro (Chicago, IL, US)
- John French (Chicago, IL, US)
- Thomas S. Kelley (Highland Park, IL, US)
- Keith W. Benson (Chicago, IL, US)
- Robert E. Sroka (Arlington Heights, IL, US)
- Michael Quinlan (Chicago, IL, US)
- Gabrielle Madden (Chicago, IL, US)
Cpc classification
H01F2007/1669
ELECTRICITY
H01F7/1615
ELECTRICITY
H01H33/6662
ELECTRICITY
H01F7/1646
ELECTRICITY
International classification
Abstract
An actuator assembly including a first actuator having a first magnetically actuated plunger and a first latching plate, where the first plunger is operable to be magnetically latched to the first latching plate. The actuator assembly further includes a second actuator coupled to and axially aligned with the first actuator. The second actuator includes a second magnetically actuated plunger, a second latching plate, a sleeve positioned within and extending from the second plunger and being rigidly secured to the first plunger, and a tolerance spring wrapped around the sleeve. The second plunger is operable to be magnetically latched to the second latching plate, where latching of the second plunger causes the tolerance spring to compress and provide additional latching force of the first plunger to the first latching plate.
Claims
1. An actuator assembly comprising: a first actuator including a first annular latching plate, a first annular stator, a first winding wound on the first stator, a first plunger slidably positioned in a central opening within the first stator and an opening spring positioned between the first plunger and the stator, wherein current flow in one direction through the first winding causes the first plunger to seat against the first latching plate; and a second actuator coupled to and axially aligned with the first actuator, the second actuator including a second annular latching plate, a second annular stator, a second winding wound on the second stator, a second plunger slidably positioned in an opening within the second stator, a first sleeve positioned within a first channel in the second plunger and extending from a back portion of the second plunger through an opening in the first latching plate and being rigidly secured to the first plunger, and a tolerance spring wrapped around the first sleeve and being positioned in the first channel between the back portion of the second plunger and a first flange at an opposite end of the first sleeve from the back portion, wherein current flow in one direction through the second winding causes the second plunger to seat against the second latching plate and cause the tolerance spring to compress between the back portion of the second plunger and the first flange to provide additional latching force of the first plunger against the first latching plate.
2. The actuator assembly according to claim 1 wherein the first actuator includes a second sleeve positioned within a second channel in the first plunger and a compliance spring wrapped around the second sleeve and being positioned in the second channel between a back portion of the first plunger and a second flange at an opposite end of the second sleeve from the back portion of the first plunger, wherein when the first plunger seats against the first latching plate the compliance spring compresses between the back portion of the first plunger and the second flange.
3. The actuator assembly according to claim 2 further comprising a drive rod rigidly secured to the second sleeve and extending through the first sleeve, an opening in the second plunger and an opening in the second latch plate.
4. The actuator assembly according to claim 3 wherein the drive rod is coupled to a switch.
5. The actuator assembly according to claim 4 wherein the switch is a vacuum interrupter.
6. The actuator assembly according to claim 1 wherein the first actuator includes a plurality of semi-annular permanent magnets positioned between the first latching plate and the first stator and the second actuator includes a plurality of semi-annular permanent magnets positioned between the second latching plate and the second stator.
7. An actuator assembly comprising: a first actuator including a first magnetically actuated plunger and a first latching plate, the first plunger operable to be magnetically latched to the first latching plate; and a second actuator coupled to and axially aligned with the first actuator, the second actuator including a second magnetically actuated plunger, a second latching plate, a sleeve positioned within and extending from the second plunger and being rigidly secured to the first plunger, and a tolerance spring wrapped around the sleeve, the second plunger operable to be magnetically latched to the second latching plate, wherein latching of the second plunger causes the tolerance spring to compress and provide additional latching force of the first plunger to the first latching plate.
8. The actuator assembly according to claim 7 wherein the sleeve extends through a central opening in the first latching plate.
9. The actuator assembly according to claim 7 wherein the tolerance spring compresses between a back portion of the second plunger and a front flange on the sleeve.
10. The actuator assembly according to claim 7 further comprising a drive rod rigidly secured to the first plunger and extending through the sleeve, an opening in the second plunger and an opening in the second latch plate.
11. The actuator assembly according to claim 10 wherein the drive rod is coupled to a switch.
12. The actuator assembly according to claim 11 wherein the switch is a vacuum interrupter.
13. A switch assembly comprising: an actuator assembly including a first actuator having a first magnetically actuated plunger and a first latching plate, the first plunger operable to be magnetically latched to the first latching plate, and a second actuator coupled to and axially aligned with the first actuator, the second actuator including a second magnetically actuated plunger, a second latching plate, a sleeve positioned within and extending from the second plunger and being rigidly secured to the first plunger, and a tolerance spring wrapped around the sleeve, the second plunger operable to be magnetically latched to the second latching plate, wherein latching of the second plunger causes the tolerance spring to compress and provide additional latching force of the first plunger to the first latching plate; a switch; and a drive rod coupled to the actuator assembly and the switch, the actuator assembly moving the rod to open and close the switch.
14. The switch assembly according to claim 13 wherein the switch is a vacuum interrupter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
[0010]
[0011]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0012] The following discussion of the embodiments of the disclosure directed to a magnetic actuator assembly that includes at least two coupled and axially aligned magnetic actuators is merely exemplary in nature, and is in no way intended to limit the disclosure or its applications or uses. For example, the discussion herein refers to the actuator assembly being applicable for switching a vacuum interrupter, for example, in a single-phase self-powered magnetically actuated fault recloser for use in medium voltage power distribution networks. However, as will be appreciated by those skilled in the art, the actuator assembly will have other applications.
[0013]
[0014] The actuator 18 includes an annular top plate 24, an annular stator 26 and an annular spacer member 28, where a coil 32 is wound on the stator 26 and where the plate 24 and the stator 26 define a central opening 30. The actuator 18 also includes a slidable plunger 38 slidably positioned within the opening 30. The plunger 38 includes a central channel 40 in which is positioned a tolerance spring 42 wrapped around a sleeve 44, where the sleeve 44 is slidable in the channel 40. The sleeve 44 includes a front flange 46 positioned adjacent to a front portion 48 of the plunger 38 that extends out of a back portion 50 of the plunger 38, where the spring 42 is positioned between the back portion 50 and the flange 46. The rod 16 extends through a central hole 52 in the top plate 24 into the opening 30 and through the sleeve 44. The actuator 18 further includes four semi-annular permanent magnets 54 spaced apart and positioned between the plate 24 and the stator 26.
[0015] The actuator 20 includes an annular top plate 60, an annular stator 62 and an annular bottom plate 64, where a coil 66 is wound on the stator 62, an open area 70 is provided between the stator 62 and the bottom plate 64, and the plate 60 and the stator 62 define a central opening 68. The back portion 50 of the plunger 38 extends through a central hole 72 in the top plate 60 and into the opening 68 when the assembly 14 is in the open position. The actuator 20 also includes a slidable plunger 76 slidably positioned within the opening 68 and the open area 70. The plunger 76 includes a central channel 74 in which is positioned a compliance spring 78 wrapped around a sleeve 80. The sleeve 80 includes a front flange 82 positioned adjacent to a front portion 84 of the plunger 76, where the spring 78 is positioned between a back portion 86 of the plunger 76 and the flange 82. The sleeve 80 is slidable in the channel 74, the plunger 76 is rigidly secured to the sleeve 44, and the rod 16 is threaded into the sleeve 80. The actuator 20 further includes four semi-annular permanent magnets 92 spaced apart and positioned between the plate 60 and the stator 62 and an opening spring 94 positioned between the stator 62 and a bottom flange 96 of the plunger 76, where the flange 96 surrounds a central hole 98 in the bottom plate 64.
[0016] Four bolts 100 extend the length of the actuator assembly 14 and extend through holes in the top plate 24, the stator 26, the spacer member 28, the top plate 60, the stator 62, sleeves 102 that cross the open area 70 and the bottom plate 64. Several nuts 104 are threaded onto the bolts 100 at strategic locations to hold the assembly 14 together.
[0017] As will be discussed below, when the actuator assembly 14 is in the closed position as shown in
[0018] When the actuator assembly 14 is in the open position as shown in
[0019] Once the interrupter 12 is closed the current to the coils 32 and 66 is turned off and the magnets 54 and 92 hold the plungers 38 and 76 in the latched position with the open spring 94, the compliance spring 78 and the tolerance spring 42 under compression. When the vacuum interrupter 12 is opened, current is provided to the coils 32 and 66 in the opposite direction, which breaks the magnetic hold on the plungers 38 and 66 and the opening spring 94 pushes the plunger 76 away from the plate 60 and the sleeve 44 pushes the plunger 38 away from the plate 24. The compliance spring 78 provides an additional initial opening force against the back portion 86 of the plunger 76 to help break the weld of the contacts in the vacuum interrupter 12.
[0020] The foregoing discussion discloses and describes merely exemplary embodiments of the present disclosure. One skilled in the art will readily recognize from such discussion and from the accompanying drawings and claims that various changes, modifications and variations can be made therein without departing from the spirit and scope of the disclosure as defined in the following claims.