IP Library Granted Patent US 12710021
Granted Patent B2
US 12710021 · App. 18/886,662 · Granted Aug 18, 2026

Pulsed-plasma-discharge engine and its method of operation

Inventor: Igor Simon Alexandroff (New York, NY)
Assignee: Sharp Pulse Corp.
F02K7/20B64G1/413F03H1/0087F02K7/10H05H1/48
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Quick Facts
Patent No.
US 12710021
App. No.
18/886,662
Granted
Aug 18, 2026
Kind
B2
Abstract

An engine in which thrust is achieved by converting electrical energy into high temperature plasma discharges that, in turn, apply thermal, pressure, and/or kinetic energy to a stream of passing air. The engine comprises a plasma region that includes a pair of gapped electrodes, such that the plasma discharges occur in the electrode gap. An energy storage device generates voltage pulses between the electrodes that electrically break down the air as the operating medium within the electrode gap and create plasma discharges.

Claims (87)

1 . A pulsed-plasma-discharge engine comprising:

a first structural body having a varying cross-section, and having a first end and a second end;

a second structural body having another varying cross-section, and having another first end and another second end, the second structural body securely coupled to the first structural body,

wherein the first structural body and the second structural body cooperate to form an air-intake region, an air-outlet region, and a plasma region between the air-intake region and the air-outlet region, and

wherein the air-intake region is configured to dynamically compress an air entering the air-intake region at a first speed, thereby generating a compressed air, and to direct the compressed air to flow into the plasma region;

a plurality of pairs of elongated electrodes positioned in the plasma region, the plurality of pair of elongated electrodes comprising (i) a first pair of elongated electrodes comprising a respective first electrode located on a surface of the first structural body and a respective second electrode located on a surface of the second structural body, and (ii) a second pair of elongated electrodes comprising a respective first electrode located on the surface of the first structural body and a respective second electrode located on the surface of the second structural body;

a first energy storage device comprising a first terminal electrically coupled to the first electrode of the first pair of elongated electrodes and a second terminal electrically coupled to the second electrode of the first pair of elongated electrodes,

a second energy storage device comprising a first terminal electrically coupled to the first electrode of the second pair of elongated electrodes and a second terminal electrically coupled to the second electrode of the second pair of elongated electrodes,

wherein the first energy storage device is configured to generate a first voltage pulse causing an electrical breakdown of a first portion of the compressed air, flowing between the first electrode and the second electrode of the first pair of elongated electrodes, thereby creating a plasma discharge between the first electrode and the second electrode of the first pair of elongated electrodes that travels along the first pair of elongated electrodes toward the air-outlet region, and

wherein the second energy storage device is configured to generate a second voltage pulse causing an electrical breakdown of another portion of the compressed air, flowing between the first electrode and the second electrode of the second pair of elongated electrodes, thereby creating a plasma discharge between the first electrode and the second electrode of the second pair of elongated electrodes that travels along the second pair of elongated electrodes toward the air-outlet region; and

a thrust controller configured to separately control generation of the first voltage pulse and the second voltage pulse.

2 . The pulsed-plasma-discharge engine of claim 1 ,

wherein, in each of the first pair of elongated electrodes and the second pair of elongated electrodes, each of the first electrode and the second electrode comprises a respective first end and a respective second end,

wherein the first electrode includes a first longitudinal direction,

wherein the second electrode includes a second longitudinal direction, and

wherein each of the first longitudinal direction of the first electrode and the second longitudinal direction of the second electrode is oriented substantially in a direction of flow of the compressed air in the plasma region.

3 . The pulsed-plasma-discharge engine of claim 2 ,

wherein the first structural body is shaped as a tube of varying cross-section and having a first longitudinal axis;

wherein the second structural body is mounted within the first structural body, the second structural body having a second longitudinal axis;

wherein the first longitudinal axis is identical to the second longitudinal axis; and

wherein, in each of the first pair of elongated electrodes and the second pair of elongated electrodes, the first electrode is located on an interior surface of the first structural body and the second electrode is located on an exterior surface of the second structural body.

4 . The pulsed-plasma-discharge engine of claim 3 , wherein the plurality of pairs of elongated electrodes comprises a plurality of equidistantly distributed pairs of electrodes.

5 . The pulsed-plasma-discharge ramjet engine of claim 2 ,

wherein the first terminal of the first energy source is electrically coupled to the first electrode of the first pair of elongated electrodes at a respective first end of the first electrode of the first pair of elongated electrodes; and

wherein the second terminal of the first energy source is electrically coupled to the second electrode of the first pair of elongated electrodes at a respective first end of the second electrode of the first pair of elongated electrodes.

6 . The pulsed-plasma-discharge engine of claim 2 , wherein, in the first pair of elongated electrodes, a gap between the first end of the first electrode and the first end of the second electrode is less than another gap between the second end of the first electrode and the second end of the second electrode.

7 . The pulsed-plasma-discharge engine of claim 1 , further comprising:

a first switch electrically coupling the first energy storage device to the first pair of elongated electrodes;

and

a second switch electrically coupling the second energy storage device to the second pair of elongated electrodes;

wherein the thrust controller controls delivery of the first voltage pulse by controlling the first switch and controls delivery of the second voltage pulse by controlling the second switch; and

a power supply electrically coupled to the first energy storage device and the second energy storage device, and configured to charge the first energy storage device and the second energy storage device.

8 . A method of operating a pulsed-plasma-discharge engine comprising (a) a first structural body having a varying cross-section, and having a first end and a second end, (b) a second structural body having another varying cross-section, and having another first end and another second end, the second structural body securely coupled to the first structural body, wherein the first structural body and the second structural body cooperate to form an air-intake region, an air-outlet region, and a plasma region between the air-intake region and the air-outlet region, (c) a plurality of pairs of elongated electrodes positioned in the plasma region, the plurality of pair of elongated electrodes comprising (i) a first a pair of elongated electrodes comprising a respective first electrode located on a surface of the first structural body and a respective second electrode located on a surface of the second structural body, and (ii) a second pair of elongated electrodes comprising a respective first electrode located on the surface of the first structural body and a respective second electrode located on the surface of the second structural body, (d) a first energy storage device comprising a first terminal electrically coupled to the first electrode of the first pair of elongated electrodes and a second terminal electrically coupled to the second electrode of the first pair of elongated electrodes, and a second energy storage device comprising a first terminal electrically coupled to the first electrode of the second pair of elongated electrodes and a second terminal electrically coupled to the second electrode of the second pair of elongated electrodes, and (e) a thrust controller,

the method comprising the steps of:

delivering an air having a first speed into the air-intake region;

dynamically compressing the air in the air-intake region, thereby generating a compressed air;

delivering the compressed air into the plasma region;

controlling engine thrust by:

a) generating a first voltage pulse causing an electrical breakdown of a first portion of the compressed air, flowing between the first electrode of the first pair of elongated electrodes and the second electrode of the first pair of elongated electrodes, thereby creating a first plasma discharge between the first electrode of the first pair of elongated electrodes and the second electrode of the first pair of elongated electrodes that travels along the first pair of elongated electrodes toward the air-outlet region and provides an energy to the first portion of the compressed air, such that the first portion of the compressed air flows out of the plasma discharge region and into the air-outlet region at a speed higher than the first speed; and

(b) separately generating a second voltage pulse causing an electrical breakdown of another portion of the compressed air, flowing between the first electrode of the second pair of elongated electrodes and the second electrode of the second pair of elongated electrodes, thereby creating a second plasma discharge, between the first electrode of the second pair of elongated electrodes and the second electrode of the second pair of elongated electrodes, that travels along the second pair of elongated electrodes toward the air-outlet region and provides an energy to the second portion of the compressed air, such that the second portion of the compressed air flows out of the plasma discharge region and into the air-outlet region at a speed higher than the first speed.

9 . The method of claim 8 , wherein the step of the first plasma discharge providing energy to the first portion of the compressed air includes providing a thermal energy.

10 . The method of claim 8 , where the step of the first plasma discharge providing energy to the first portion of the compressed air further includes applying an additional pressure to the compressed air.

11 . The method of claim 8 , wherein the step of controlling engine thrust comprises controlling at least one of a first amount of energy stored in the first energy storage device and a second amount of energy stored in the second energy storage device.

12 . The method of claim 8 , wherein the step of controlling engine thrust comprises controlling at least one of a magnitude of the first plasma discharge and a magnitude of the second plasma discharge.

13 . The method of claim 8 , wherein the step of controlling engine thrust comprises controlling at least one of a first frequency of the first voltage pulse and a second frequency of the second voltage pulse.

14 . A pulsed-plasma-discharge engine comprising:

a structural body having a varying cross-section and a first surface,

wherein the structural body is configured to form, for an airstream flowing along the first surface, an air-compression zone, an air-exhaust zone, and a plasma zone between the air-compression zone and the air-exhaust zone, and

wherein the structural body is configured to dynamically compress an air flowing at a first speed through the air-compression zone toward the plasma zone, thereby generating a compressed air;

a pair of elongated electrodes positioned in the plasma zone and comprising a first electrode located on the first surface of the structural body and a second electrode located on the first surface of the structural body;

an energy storage device comprising a first terminal electrically coupled to the first electrode and a second terminal electrically coupled to the second electrode,

wherein the energy storage device is configured to generate a voltage pulse causing an electrical breakdown of the compressed air flowing proximate the first electrode and the second electrode, thereby creating a plasma discharge between the first electrode and the second electrode that travels along the pair of elongated electrodes toward the air-exhaust zone and provides an energy to the compressed air,

wherein the first electrode includes a first end, a second end, and a first longitudinal direction,

wherein the second electrode includes a respective first end, a respective second end, and a second longitudinal direction,

wherein each of the first longitudinal direction of the first electrode and the second longitudinal direction of the second electrode is oriented substantially in a direction of flow of the compressed air in the plasma zone, and

wherein a gap between the first end of the first electrode and the first end of the second electrode is less than another gap between the second end of the first electrode and the second end of the second electrode;

and

a thrust controller configured to control generation of the voltage pulse.

15 . A pulsed-plasma-discharge engine comprising:

a structural body having a varying cross-section and a first surface,

wherein the structural body is configured to form, for an airstream flowing along the first surface, an air-compression zone, an air-exhaust zone, and a plasma zone between the air-compression zone and the air-exhaust zone, and

wherein the structural body is configured to dynamically compress an air flowing at a first speed through the air-compression zone toward the plasma zone, thereby generating a compressed air;

a first pair of elongated electrodes positioned in the plasma zone on the first surface of the structural body and a second pair of elongated electrodes positioned in the plasma zone on the first surface of the structural body,

wherein each of the first pair of elongated electrodes and the second pair of elongated includes a respective first electrode and a respective second electrode;

a first energy storage device and a second energy storage device,

wherein each of the first energy storage device and the second energy storage device includes a respective first terminal and a respective second terminal;

wherein the first terminal of the first energy storage device is electrically coupled to the first electrode of the first pair of elongated electrodes and the second terminal of the first energy storage device is electrically coupled to the second electrode of the first pair of elongated electrodes;

wherein the first terminal of the second energy storage device is electrically coupled to the first electrode of the second elongated pair of electrodes and the second terminal of the second energy storage device is electrically coupled to the second electrode of the second elongated pair of electrodes;

wherein the first energy storage device is configured to generate a first voltage pulse causing an electrical breakdown of the compressed air flowing proximate the first electrode of the first pair of elongated electrodes and the second electrode of the first pair of elongated electrodes, thereby creating a first plasma discharge between the first electrode of the first pair of elongated electrodes and the second electrode of the first pair of elongated electrodes that travels along the first pair of elongated electrodes toward the air-exhaust zone and provides a first amount of energy to the compressed air;

wherein the second energy storage device is configured to generate a second voltage pulse causing an electrical breakdown of the compressed air flowing proximate the first electrode of the second pair of elongated electrodes and the second electrode of the second pair of elongated electrodes, thereby creating a second plasma discharge between the first electrode of the second pair of elongated electrodes and the second electrode of the second pair of elongated electrodes that travels along the second pair of elongated electrodes toward the air-exhaust zone and provides a second amount energy to the compressed air; and

wherein the thrust controller is configured to separately control generation of the first voltage pulse and the second voltage pulse.

16 . The pulsed-plasma-discharge engine of claim 15 , wherein the thrust controller is configured to separately control at least one of (i) a first amount of energy stored in the first energy storage device and (ii) a second amount of energy stored in the second energy storage device.

17 . The pulsed-plasma-discharge engine of claim 15 , wherein the thrust controller is configured to separately control at least one of (i) a magnitude of the first plasma discharge and (ii) a magnitude of the second plasma discharge.

18 . The pulsed-plasma-discharge engine of claim 15 , wherein the thrust controller is configured to separately control at least one of (i) a first frequency of the first voltage pulse and (ii) a second frequency of the second voltage pulse.

19 . A pulsed-plasma-discharge engine comprising:

a structural body having a varying cross-section and a first surface,

wherein the structural body is configured to form, for an airstream flowing along the first surface, an air-compression zone, an air-exhaust zone, and a plasma zone between the air-compression zone and the air-exhaust zone, and

wherein the structural body is configured to dynamically compress an air flowing at a first speed through the air-compression zone toward the plasma zone, thereby generating a compressed air;

a pair of elongated electrodes positioned in the plasma zone and comprising a first electrode located on the first surface of the structural body and a second electrode located on the first surface of the structural body,

wherein the first electrode includes a first end, a second end, and a first longitudinal direction, and

wherein the second electrode includes a respective first end, a respective second end, and a second longitudinal direction;

an energy storage device electrically coupled to the pair of elongated electrodes,

wherein the energy storage device is configured to generate a voltage pulse causing an electrical breakdown of the compressed air flowing proximate the first electrode and the second electrode, thereby creating a plasma discharge between the first electrode and the second electrode that travels along the pair of elongated electrodes toward the air-exhaust zone and provides an energy to the compressed air, and

wherein each of the first longitudinal direction of the first electrode and the second longitudinal direction of the second electrode is oriented substantially in a direction of flow of the compressed air in the plasma zone; and

a thrust controller configured to control generation of the voltage pulse,

wherein the energy storage device is electrically coupled to the first electrode and the second electrode in a way that allows the plasma discharge to move along the pair of elongated electrodes under the influence of Lorentz force, thereby contributing to an overall thrust of the pulsed-plasma-discharge engine.

20 . The pulsed-plasma-discharge engine of claim 19 , wherein a first terminal of the energy source is electrically coupled to the first electrode at the first end of the first electrode and a second terminal of the energy source is electrically coupled to the second electrode at the first end of the second electrode.