IP Library Granted Patent US 11,186,781
Granted Patent B2
US 11,186,781 · App. 16/090,111 · Granted Nov 30, 2021

Pulsed power supply

Inventor: Yury Novoselov (Houston, TX)
Assignee: LTEOIL LLC
C10G15/08F02C7/266F02P23/04F23Q13/00C10G2300/302
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Quick Facts
Patent No.
US 11,186,781
App. No.
16/090,111
Granted
Nov 30, 2021
Kind
B2
Abstract

The electrical circuit of power supply includes a series of discharge gaps, storage capacitors, and charging resistors. The work of multispark reactor based on the parallel breakdown of discharge gaps in the mode of self-breakdown. Simultaneous triggering of all gaps is achieved using self-breakdown on the rising edge of voltage, particularly when using the power frequency AC voltage.

Claims (48)

1. An electrical circuit for providing a pulsed power supply comprising:

a plurality of discharge gaps, each discharge gap including a first electrode and a second electrode separated from the first electrode;

a common high voltage bus configured to be electrically connected to a high-voltage output of a power source;

a common grounded bus;

a plurality of charging resistors, each resistor having a first end electrically connected to the common high voltage bus and a second end electrically connected to the first electrode of the associated discharge gap; and

a plurality of storage capacitors, each capacitor electrically connected in parallel to one associated discharge gap, each capacitor comprising:

a first end electrically connected to the common grounded bus and the second electrode of the associated discharge gap; and

a second end electrically connected to the second end of the associated resistor and the first electrode of the associated discharge gap;

wherein a resistance value of each of the plurality of charging resistors is equal to one-third of the value of a time constant of an associated storage capacitor divided by a capacitance value of the associated storage capacitor.

2. The electrical circuit of claim 1 , wherein the pulsed power supply provides power to a multispark reactor for treating a liquid hydrocarbon material, and wherein the first electrode and the second electrode are separated to form a working channel for receiving the liquid hydrocarbon material therein for treatment.

3. The electrical circuit of claim 1 , wherein the common high-voltage bus is configured to receive a high voltage direct current from the power source.

4. The electrical circuit of claim 1 , wherein the common high-voltage bus is configured to receive a high voltage alternating current power frequency through a rectifier diode.

5. The electrical circuit of claim 1 , wherein the electrical circuit is configured to be used in a multispark reactor to treat crude oil.

6. The electrical circuit of claim 1 , wherein the plurality of discharge gaps are arranged in series.

7. The electrical circuit of claim 1 , wherein the electrical circuit is configured to pass an electrical discharge between each discharge gap simultaneously.

8. The electrical circuit of claim 1 , wherein the plurality of discharge gaps are arranged in parallel.

9. The electrical circuit of claim 1 , wherein the electrical circuit does not include any switches.

10. The electrical circuit of claim 1 , wherein the electrical circuit does not include any commutators.

11. The electrical circuit of claim 1 , wherein the electrical circuit is configured to generate electrical pulses without use of any switches.

12. The electrical circuit of claim 1 , wherein the power source is an AC voltage source, and wherein a maximum voltage is achieved in a time that is equal to one quarter of one period of the AC voltage source.

13. The electrical circuit of claim 12 , wherein the electrical circuit is configured to generate electrical pulses causing sparks across the discharge gaps at a frequency determined by the AC voltage source.

14. The electrical circuit of claim 13 , wherein the electrical pulses are generated on a rising edge of a voltage provided by the AC voltage source between a first time period and a second time period, the second time period not exceeding a rise time associated with the plurality of storage capacitors.

15. The electrical circuit of claim 1 , wherein the power source is a three-phase, high voltage transformer.

16. A method of treating a liquid hydrocarbon material using a multispark reactor comprising an electrical circuit, wherein the electrical circuit comprises:

a plurality of discharge gaps, each discharge gap being defined by a first electrode and a second electrode separated from the first electrode by a spacing;

a common high voltage bus configured to be electrically connected to a high-voltage output of a power source;

a common grounded bus;

a plurality of charging resistors, each resistor having a first end electrically connected to the high voltage bus and a second end electrically connected to the first electrode of the associated discharge gap; and

a plurality of storage capacitors, each capacitor electrically connected in parallel to one associated discharge gap, each capacitor comprising:

a first end electrically connected to the grounded bus and the second electrode of the associated discharge gap; and

a second end electrically connected to the second end of the associated resistor and the first electrode of the associated discharge gap, wherein a resistance value of each of the plurality of charging resistors is equal to one-third of the value of a time constant of an associated storage capacitor divided by a capacitance value of the associated storage capacitor; and

wherein the method comprises:

passing the liquid hydrocarbon material through the plurality of discharge gaps of the multispark reactor; and

passing, via the electrical circuit, a current through each discharge gap of the multispark reactor to heat the liquid hydrocarbon material to a breakdown temperature of the liquid hydrocarbon passing through the plurality of discharge gaps.

17. The method of claim 16 , wherein the power source is an AC source, and the electric circuit further includes a diode rectifier that is configured to transform alternative current (AC) to direct current (DC).

18. The method of claim 17 , wherein the AC is transformed into a unidirectional, pulsating DC.

19. The method of claim 16 , wherein the power source is an AC voltage source, and wherein a maximum voltage is achieved in a time that is equal to one quarter of one period of the AC voltage source.

20. A multispark reactor for treating a liquid hydrocarbon material, the multispark reactor comprising:

a power supply configured to provide a high-voltage output; and

an electrical circuit comprising:

a plurality of electrode pairs, each electrode pair including a first electrode and a second electrode separated from the first electrode to form a discharge gap between the electrodes for treating the liquid hydrocarbon material therein;

a common high voltage bus configured to be electrically connected to the high-voltage output;

a common grounded bus;

a plurality of charging resistors, each resistor having a first end electrically connected to the high voltage bus and a second end electrically connected to the first electrode of the associated electrode pair; and

a plurality of storage capacitors, each capacitor electrically connected in parallel to one associated electrode pair, each capacitor comprising:

a first end electrically connected to the second electrode of the associated electrode pair through the grounded bus; and

a second end electrically connected to the second end of the associated resistor and the first electrode of the associated electrode pair,

wherein a resistance value of each of the plurality of charging resistors is equal to one-third of the value of a time constant of an associated storage capacitor divided by a capacitance value of the associated storage capacitor.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 30, 2021
From: NOVOSELOV, YURY
To: EVOENERGY LLC
Reel/Frame 057030/0807 →
CHANGE OF NAME Recorded Jul 30, 2021
From: EVOENERGY, LLC
To: LTEOIL LLC
Reel/Frame 057043/0664 →
Continuity (2)
Provisional Application 62315819 · Mar 31, 2016
Related Publication 20190112534A1 · Apr 18, 2019