IP Library › Granted Patent US 11,664,144
Granted Patent B2
US 11,664,144 · App. 17/053,205 · Granted May 30, 2023

Single coil apparatus and method

Inventor: Jeffery Tyler (Newark, NY)
Assignee: G.W. Lisk Company, Inc.
H01F7/1615H01F7/081H02K1/34H02K33/16
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Quick Facts
Patent No.
US 11,664,144
App. No.
17/053,205
Granted
May 30, 2023
Kind
B2
Abstract

Presented are a single coil apparatus and a method of forming. An exemplary apparatus includes solenoid assembly. The solenoid assembly includes a core tube extending along a longitudinal axis. The solenoid assembly further includes a first magnet and a second magnet located outside the core tube, the first magnet spaced along the longitudinal axis from the second magnet, and an excitation coil disposed radially outward of the first magnet and the second magnet.

Claims (30)

1. A solenoid assembly comprising:

(a) a core tube extending along a longitudinal axis, the core tube having a first ferromagnetic end section with a first confronting end longitudinally spaced from a second ferromagnetic end section with a second confronting end, a first non-ferromagnetic section adjacent the first confronting end and a second non-ferromagnetic section adjacent the second confronting end, a first ferromagnetic spacer longitudinally intermediate the first non-ferromagnetic section and the second non-ferromagnetic section;

(b) a first magnet and a second magnet located outside the core tube, the first magnet spaced along the longitudinal axis from the second magnet wherein a second ferromagnetic spacer is longitudinally intermediate the first magnet and the second magnet, and wherein the first non-ferromagnetic section is radially inward of the first magnet and the second non-ferromagnetic section is radially inward of the second magnet, and the first ferromagnetic spacer is radially inward of the second ferromagnetic spacer; and

(c) an excitation coil disposed radially outward of the first magnet and the second magnet, wherein the first non-ferromagnetic section contacts the first confronting end of the ferromagnetic end section of the core tube such that a first portion of the first ferromagnetic end section of the core tube is in contact with the first non-ferromagnetic section that is longitudinally in a same location as an end of the first magnet and a second portion of the first ferromagnetic end section of the core tube radially underlies a portion of the first non-ferromagnetic section.

2. The solenoid assembly of claim 1 , wherein the first ferromagnetic spacer is located at the same longitudinal position as the second ferromagnetic spacer.

3. The solenoid assembly of claim 1 , wherein proximal poles of the first magnet and the second magnet are like.

4. The solenoid assembly of claim 1 , wherein the first non-ferromagnetic section contacts the first confronting end of the first ferromagnetic end section of the core tube.

5. The solenoid assembly of claim 1 , wherein the second non-ferromagnetic section contacts the second confronting end of the second ferromagnetic end section of the core tube.

6. The solenoid assembly of claim 1 , wherein the second non-ferromagnetic section contacts the second confronting end of the second ferromagnetic end section of the core tube such that a portion of the second ferromagnetic end section of the core tube radially underlies a portion of the second non-ferromagnetic section.

7. The solenoid assembly of claim 1 , wherein the core tube defines a sealed inner surface.

8. The solenoid assembly of claim 1 , wherein the core tube defines a fluid tight sealed inner surface.

9. The solenoid assembly of claim 1 , wherein the first magnet and the second magnet slideably receive the core tube.

10. The solenoid assembly of claim 1 , wherein the excitation coil slideably receives the first and the second magnets.

11. The solenoid assembly of claim 1 , further comprising a ferromagnetic armature slideably disposed within the core tube.

12. The solenoid assembly of claim 1 , further comprising a ferromagnetic armature slideably disposed within the core tube, the armature carried by a push-pull rod, wherein a first bearing is located between the push-pull rod and the first ferromagnetic end section and a second bearing is located between the push-pull rod and the second ferromagnetic end section to define an operating cavity and the operating cavity retains a volume of fluid.

13. The solenoid assembly of claim 12 , wherein the volume of fluid is one of a liquid and a gas.

14. The solenoid assembly of claim 1 , wherein the excitation coil consists of a single excitation coil, the single excitation coil operable to create a first magnetic field having a first polarity and a second magnetic field having a second polarity.

15. The solenoid assembly of claim 1 , wherein the first non-ferromagnetic section and a portion of the first magnet occupy a common position along the longitudinal axis.

16. The solenoid assembly of claim 1 , wherein the second non-ferromagnetic section and a portion of the second magnet occupy a common position along the longitudinal axis.

17. The solenoid assembly of claim 1 , further comprising a ferromagnetic armature slideably disposed within the core tube, the armature carried by a push/pull rod, wherein a first bearing is located between the push/pull rod and the first ferromagnetic end section and a second bearing is located between the push/pull rod and the second ferromagnetic end section to define an operating cavity and the operating cavity retains a volume of gaseous media.

18. The solenoid assembly of claim 1 , wherein the excitation coil is operable by a pulse-width modulation signal.

19. The solenoid assembly of claim 1 , wherein a force produced by the solenoid is proportional to an input current signal to the excitation coil.

20. The solenoid assembly of claim 1 , wherein the first ferromagnetic spacer comprises a gap, the gap defined by a radial outer surface of the core tube to a radial inner surface of the second ferromagnetic spacer, wherein the gap is spaced apart longitudinally from the first magnet and the second magnet.

21. The solenoid assembly of claim 1 , wherein the first non-ferromagnetic section is defined by a channel forming a gap between a radial outer surface of the core tube and a radial inner surface of the first magnet, and wherein the second non-ferromagnetic section is defined by a channel forming a gap between the radial outer surface of the core tube and a radial inner surface of the second magnet.

22. The solenoid assembly of claim 1 , wherein the core tube having the first ferromagnetic end section, the second ferromagnetic end section, the first non-ferromagnetic section and the second non-ferromagnetic section comprise a single integral piece.

23. The solenoid assembly of claim 1 , wherein the first non-ferromagnetic section is a first gap defined by a first space between the core tube, the first magnet, and the first ferromagnetic spacer, and wherein the second non-ferromagnetic section is a second gap defined by a second space between the core tube, the second magnet, and the first ferromagnetic spacer.

24. A solenoid assembly comprising:

(a) a core tube comprising a non-ferromagnetic section extending along a longitudinal axis;

(b) a first magnet and a second magnet located outside the core tube, the first magnet spaced along the longitudinal axis from the second magnet wherein a second ferromagnetic spacer is longitudinally intermediate the first magnet and the second magnet, and wherein the non-ferromagnetic section is radially inward of the first magnet and the second magnet, and the non-ferromagnetic section is radially inward of the second ferromagnetic spacer; and

(c) an excitation coil disposed radially outward of the first magnet and the second magnet, wherein the core tube comprises a first ferromagnetic spacer comprising an air gap, the air gap defined by a radial outer surface of the core tube to a radial inner surface of the second ferromagnetic spacer, wherein the air gap is spaced apart longitudinally from the first magnet and the second magnet.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2020
From: TYLER, JEFFERY
To: G. W. LISK COMPANY, INC.
Reel/Frame 054293/0246 →
Continuity (2)
Provisional Application 62667945 · May 7, 2018
Related Publication 20210142936A1 · May 13, 2021
Cited By (1)
US 12,412,691