IP Library Granted Patent US 9,252,688
Granted Patent B2
US 9,252,688 · App. 14/024,043 · Granted Feb 2, 2016

Electrokinetic nanothrusters and applications thereof

Inventor: Francisco Javier Diez Garias (Piscataway, NJ)
Assignee: RUTGERS, THE STATE UNIVERSITY OF NEW JERSEY
H02N11/006B63G8/08B63H1/00F03H1/0012
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Quick Facts
Patent No.
US 9,252,688
App. No.
14/024,043
Granted
Feb 2, 2016
Kind
B2
Abstract

An electrokinetic actuator for a propulsion system is described. The actuator includes an array of channels, with each channel having an inlet and an outlet. A reservoir is included that contains an ionic solution of particles. A first electrode proximate to (or deposited at) the inlet and a second electrode proximate to (or deposited at) the outlet are connected to a voltage source. The voltage source and electrodes apply a voltage across the length of the channels to generate an electric field parallel to each channel. The electric field causes an electro-osmotic flow of ions from the reservoir to the outlet producing electrokinetic thrust at the outlet. By varying the concentration of the ionic solution and the magnitude of the electric field, the electro-osmotic flow of ions is controlled.

Claims (19)

1. A vehicle propulsion system having an electrokinetic actuator: an array of channels of the vehicle propulsion system, each channel having an inlet and an outlet; a reservoir containing an ionic liquid solution; a first electrode proximate to the inlet and a second electrode proximate to the outlet; a voltage source, connected to the first and second electrodes, configured to apply a voltage across a length of the array of channels to generate an electric field parallel to each channel, wherein the electric field causes an electro-osmotic flow of ions from the reservoir to the outlet producing electrokinetic thrust at the outlet.

2. The vehicle propulsion system-according to claim 1 , wherein each channel has a length of 100 nm to one micron.

3. The vehicle propulsion system-according to claim 2 , wherein the electric field is 5×10 5 to 7×10 8 volts per meter.

4. The vehicle propulsion system-according to claim 3 , wherein the ionic liquid solution is an aqueous solution.

5. The vehicle propulsion system-according to claim 3 , wherein the array of channels comprises a porous metal oxide membrane.

6. The vehicle propulsion system-according to claim 5 , wherein the porous metal oxide membrane comprises anodic aluminum oxide.

7. The vehicle propulsion system-according to claim 3 , wherein each channel in the array of channels has a length of substantially 800 nm.

8. The vehicle propulsion system-according to claim 3 , wherein the array of channels comprises more than one million nanochannels.

9. The vehicle propulsion system-according to claim 3 , wherein the vehicle propulsion system-forms a primary propulsion system for an underwater vehicle.

10. The vehicle propulsion system-according to claim 3 , wherein the vehicle propulsion system forms a maneuvering propulsion system for an underwater vehicle.

11. The vehicle propulsion system-according to claim 3 , wherein the electric field is 1×10 8 to 7×10 8 volts per meter.

12. The vehicle propulsion system-according to claim 11 , wherein the array of channels comprises an emitter array.

13. The vehicle propulsion system-according to claim 11 , wherein the array of channels comprises more than one hundred emitters.

14. The vehicle propulsion system-according to claim 11 , wherein the vehicle propulsion system forms a primary propulsion system for a space vehicle.

15. The vehicle propulsion system-according to claim 11 , wherein the vehicle propulsion system forms a maneuvering propulsion system for a space vehicle.

16. The vehicle propulsion system-according to claim 11 , wherein a velocity of the ions at a channel wall is not zero.

17. A method of producing thrust using an vehicle propulsion system having an electrokinetic actuator, the method comprising: applying a voltage between a first electrode proximate to an inlet of a channel and a second electrode proximate to an outlet of the channel to generate an electric field that is parallel to the channel and is 5×10 5 to 7×10 8 volts per meter; introducing an ionic solution into the channel from a reservoir connected to the inlet of the channel, wherein ions in the ionic solution form an electric double layer along walls of the channel; and varying a concentration of the ionic solution and the voltage to cause an electro-osmotic flow of ions from the inlet to the outlet to produce thrust at the outlet.

18. The method according to claim 17 , wherein a length of the channel is 100 nm to one micron.

19. The method of claim 18 , wherein the channel comprises an array of channels.

Assignments (2)
CONFIRMATORY LICENSE Recorded Sep 28, 2017
From: RUTGERS UNIVERSITY
To: NAVY, SECRETARY OF THE UNITED STATES OF AMERICA
Reel/Frame 044114/0486 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 27, 2014
From: DIEZ-GARIAS, FRANCISCO J.
To: RUTGERS, THE STATE UNIVERSITY OF NEW JERSEY
Reel/Frame 032967/0828 →
Continuity (3)
Provisional Application 61699673 · Sep 11, 2012
Provisional Application 61748177 · Jan 2, 2013
Related Publication 20140070663A1 · Mar 13, 2014