IP Library › Granted Patent US 11,304,288
Granted Patent B2
US 11,304,288 · App. 14/610,299 · Granted Apr 12, 2022

Plasma torch design

Inventors: Alexander F. Hoermann (Menlo Park, CA); Peter L. Johnson (Mountain View, CA); Nils Severin Myklebust (Trondheim, NO); Magne Mathisen Nordvik (Kristiansand S., NO)
Assignee: Monolith Materials, Inc.
H05H1/34C09C1/485H05H2001/3431H05H2001/3484
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Quick Facts
Patent No.
US 11,304,288
App. No.
14/610,299
Granted
Apr 12, 2022
Kind
B2
Abstract

Design advances for improving the performance of a plasma torch. The use of one or more of various advances described herein can improve the efficiency and effectiveness of the torch, the reactor and the manufacturing process. The use of the torch with hydrogen plasma gas, natural gas feedstock, and carbon black production are also described.

Claims (18)

1. A plasma torch, comprising at least two cylindrical, graphite electrodes comprising an inner electrode nested within an outer electrode, wherein the inner electrode is coaxially aligned with the outer electrode, and wherein at least one of the electrodes comprises a barrel stave design comprising staves or sections that form a ring or barrel such that the at least one of the electrodes is configured to (i) provide relief of thermal stress or (ii) provide controlled thermal cracking.

2. The plasma torch of claim 1 , wherein the inner electrode is hollow.

3. The plasma torch of claim 1 , wherein the inner electrode is a solid cylinder.

4. The plasma torch of claim 1 , wherein a gap between the electrodes is not less than about 4 millimeters (mm) and not more than about 20 mm.

5. The plasma torch of claim 1 , wherein the electrodes are configured such that a gap distance between the electrodes, an electrode thickness of at least one of the electrodes, and/or a surface area of a tip of at least one of the electrodes remains constant during wear.

6. The plasma torch of claim 1 , further comprising at least one annulus between the electrodes adapted for a flow of plasma gas.

7. The plasma torch of claim 1 , further comprising an upper annulus and a lower annulus between the electrodes, wherein the upper annulus is wider than the lower annulus.

8. The plasma torch of claim 1 , further comprising a power supply configured to supply about 300 volts (V) to about 1500V operating voltage and an open circuit voltage up to about 4500V.

9. The plasma torch of claim 1 , wherein at least one of the electrodes has a tip, and wherein the plasma torch additionally comprises a magnetic field generating component configured to provide a magnetic field at the tip of the at least one electrode with an axial component of between about 10 millitesla (mT) and about 100 mT.

10. The plasma torch of claim 1 , wherein at least portions of the electrodes are replaceable.

11. The plasma torch of claim 10 , wherein each electrode of the electrodes comprises an upper electrode and a lower electrode section, wherein the lower electrode section is replaceable, and wherein multiple replaceable lower electrode sections are attached to the upper electrode section.

12. The plasma torch of claim 1 , wherein a surface area of a tip of the outer electrode is greater than 2:3 but less than 4:1 compared to a surface area of a tip of the inner electrode.

13. The plasma torch of claim 1 , further comprising an annulus disposed around the outer electrode of the electrodes for a flow of shield gas.

14. The plasma torch of claim 1 , further comprising at least one channel for flow of plasma gas through one or more of the following: an annulus disposed between the electrodes, a shield gas channel disposed around the outer electrode, a shower head in the inner electrode, a body of at least one hollow electrode of the electrodes, and a center of at least one hollow electrode of the electrodes.

15. The plasma torch of claim 1 , further comprising at least one magnet disposed outside of the electrodes configured to generate and tailor a magnetic field.

16. A plasma reactor including the plasma torch of claim 1 , wherein the plasma reactor comprises walls, and wherein the walls of the plasma reactor narrow after the plasma torch to form a throat and diverge after the throat.

17. The plasma torch of claim 1 , wherein the barrel stave design comprises at least 5 staves.

18. The plasma torch of claim 17 , wherein the at least 5 staves form the ring.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 28, 2015
From: HOERMANN, ALEXANDER F.; JOHNSON, PETER L.; MYKLEBUST, NILS SEVERIN; NORDVIK, MAGNE MATHISEN
To: MONOLITH MATERIALS, INC.
Reel/Frame 036665/0487 →
Continuity (2)
Provisional Application 61934184 · Jan 31, 2014
Related Publication 20150223314A1 · Aug 6, 2015
Cited By (4)
US 12,250,764 US 12,286,540 US 12,497,517 US 12,668,702