IP Library › Granted Patent US 10,330,090
Granted Patent B2
US 10,330,090 · App. 14/769,847 · Granted Jun 25, 2019

Generating electrospray from a ferrofluid

Inventor: Lyon Bradley King (Allouez, MI)
Assignee: MICHIGAN TECHNOLOGICAL UNIVERSITY
F03H1/005B05B5/0255B64G1/405F03H1/0056
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Quick Facts
Patent No.
US 10,330,090
App. No.
14/769,847
Granted
Jun 25, 2019
Kind
B2
Abstract

An electrospray device for generating electrospray from a ferrofluid. The electrospray device includes an emitter, an extraction electrode, and a magnet. The emitter is configured to receive a ferrofluidic liquid. The extraction electrode includes an aperture and is positioned a first distance from the emitter. The magnet generates a magnetic field in a first direction toward the emitter. The magnetic field causes Rosensweig instability in the ferrofluidic liquid, and generates a ferrofluidic peak in the ferrofluidic liquid. The magnet is positioned a second distance from the emitter, and the emitter is positioned between the extraction electrode and the magnet. The ferrofluidic liquid is biased at a first electrical potential and the extraction electrode is biased at a second electrical potential. A difference between the first electrical potential and the second electrical potential is sufficient to generate an electric field at the ferrofluidic peak that generates electrospray from the ferrofluidic peak.

Claims (30)

1. An electrospray device comprising:

an emitter configured to receive a ferrofluidic liquid including ferromagnetic nanoparticles;

an extraction electrode positioned a first distance from the emitter; and

a magnet operable to generate a magnetic field in a first direction toward the emitter, the magnetic field sufficient to cause Rosensweig instability in the ferrofluidic liquid, the Rosensweig instability generating a ferrofluidic peak in the ferrofluidic liquid, the ferrofluidic peak being toward the extraction electrode and away from the emitter and the magnet, the magnet positioned a second distance from the emitter, the emitter positioned between the extraction electrode and the magnet,

wherein the ferrofluidic liquid is biased at a first electrical potential and the extraction electrode is biased at a second electrical potential, and

wherein a difference between the first electrical potential and the second electrical potential is sufficient to generate an electric field at the ferrofluidic peak that generates electrospray from the ferrofluidic peak.

2. The electrospray device of claim 1 , wherein the ferrofluidic liquid is an ionic liquid ferrofluid.

3. The electrospray device of claim 1 , wherein the ferrofluidic peak is generated without an underlying structural scaffolding to support the peak.

4. The electrospray device of claim 1 , wherein the Rosensweig instability generates a plurality of ferrofluidic peaks in the ferrofluidic liquid.

5. The electrospray device of claim 4 , wherein the electrospray device is an electrospray thruster.

6. The electrospray device of claim 5 , wherein the extraction electrode includes a plurality of apertures.

7. The electrospray device of claim 6 , wherein the electrospray is ejected through the plurality of apertures in the extraction electrode.

8. The electrospray device of claim 7 , further comprising an acceleration electrode.

9. The electrospray device of claim 8 , wherein the acceleration electrode includes a second plurality of apertures, the second plurality of apertures substantially aligned with the plurality of apertures, and wherein the electrospray is ejected through the second plurality of apertures in the acceleration electrode.

10. The electrospray device of claim 1 , further comprising a ferrofluidic liquid reservoir, the ferrofluidic liquid reservoir positioned a third distance from the magnet, the magnet positioned between the ferrofluidic liquid reservoir and the emitter.

11. The electrospray device of claim 1 , wherein the magnet is a permanent magnet.

12. The electrospray device of claim 1 , wherein the ferrofluidic peak is between the extraction electrode and the emitter.

13. The electrospray device of claim 1 , wherein the emitter is a trench.

14. A method of generating electrospray, the method comprising:

receiving a ferrofluidic liquid at an emitter, the ferrofluidic liquid including ferromagnetic nanoparticles;

applying a magnetic field in a first direction toward the emitter, the magnetic field sufficient to cause Rosensweig instability in the ferrofluidic liquid, the Rosensweig instability generating a ferrofluidic peak in the ferrofluidic liquid; and

biasing the ferrofluidic liquid at a first electrical potential and biasing an extraction electrode at a second electrical potential, the extraction electrode positioned a first distance from the emitter,

wherein a difference between the first electrical potential and the second electrical potential is sufficient to generate an electric field at the ferrofluidic peak that generates electrospray from the ferrofluidic peak, and

wherein the ferrofluidic peak is toward the extraction electrode and away from the emitter.

15. The method of claim 14 , wherein the ferrofluidic liquid is an ionic liquid ferrofluid.

16. The method of claim 14 , wherein the ferrofluidic peak is generated without an underlying structural scaffolding to support the peak.

17. The method of claim 14 , further comprising ejecting the electrospray through an aperture in the extraction electrode.

18. The method of claim 14 , further comprising biasing an acceleration electrode at a third electrical potential, the extraction electrode positioned between the acceleration electrode and the emitter.

19. The method of claim 18 , further comprising ejecting the electrospray through an aperture in the acceleration electrode.

20. The method of claim 14 , wherein the magnet is a permanent magnet.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2015
From: KING, LYON BRADLEY
To: MICHIGAN TECHNOLOGICAL UNIVERSITY
Reel/Frame 036398/0691 →
Continuity (2)
Provisional Application 61771593 · Mar 1, 2013
Related Publication 20160010631A1 · Jan 14, 2016
Cited By (1)
US 12,195,206