IP Library Granted Patent US 12,604,390
Granted Patent B2
US 12,604,390 · App. 18/993,803 · Granted Apr 14, 2026

Method, apparatus and use of an apparatus for producing a plasma-activated liquid

Inventors: Christian Buske (Bielefeld, DE); Katharina Richter (Hallet Cove, AU)
Assignee: Christian Buske
H05H1/42H05H1/2406H05H1/48
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Quick Facts
Patent No.
US 12,604,390
App. No.
18/993,803
Granted
Apr 14, 2026
Kind
B2
Abstract

The present invention provides a process for producing a plasma-activated liquid. A first plasma source is supplied with a first working gas and the first plasma source is used to generate a plasma in the first working gas so that the first plasma source provides a first reactive gas stream. A further plasma source is supplied with a further working gas and the further plasma source is used to generate a plasma in the further working gas so that the further plasma source provides a further reactive gas stream. A plasma-activated liquid is produced using the first and the further reactive gas stream. The composition of the first working gas differs from the composition of the further working gas. An appropriately configured apparatus and a use of such an apparatus for producing a plasma-activated liquid are likewise described.

Claims (42)

1 . A method for producing a plasma-activated liquid,

wherein a first working gas is supplied to a first plasma source and a plasma is generated in the first working gas by the first plasma source so that the first plasma source provides a first reactive gas stream,

wherein a further working gas is supplied to a further plasma source and a plasma is generated in the further working gas with the further plasma source, so that the further plasma source provides a further reactive gas stream, and

wherein a plasma-activated liquid is produced using the first and further reactive gas streams,

wherein the composition of the first working gas differs from the composition of the further working gas,

wherein

the plasma-activated liquid is produced by impinging a first starting liquid with the first reactive gas stream to provide a first impinged liquid, impinging a second starting liquid with the second reactive gas stream to provide a further impinged liquid, and obtaining the plasma-activated liquid by mixing the first impinged liquid with the further impinged liquid.

2 . The method according to claim 1 ,

wherein the first working gas and/or the further working gas is a predetermined technical gas.

3 . The method according to claim 1 ,

wherein the first reactive gas stream is produced by means of electrical discharge in the first working gas,

and/or

wherein the further reactive gas stream is produced by means of electrical discharge in the further working gas,

wherein the electrical discharge is a dielectrically impeded discharge, a high-frequency arc-like discharge, a DC arc discharge or a discharge generated by a microwave jet nozzle.

4 . The method according to claim 1 ,

wherein the first reactive gas stream and the further reactive gas stream are brought into contact with a starting liquid separately, wherein the impinging apparatus comprises a disc aerator, an aeration element made of porous material.

5 . An apparatus for producing a plasma-activated liquid

with a first plasma source and with a second plasma source,

wherein a first activation chamber with a first liquid and a second activation chamber with a second liquid are provided,

wherein each activation chamber comprises an impinging device,

wherein the first plasma source is fluidically connected to the first activation chamber or to the impinging device of the first activation chamber,

wherein the second plasma source is fluidically connected to the second activation chamber or to the impinging device of the second activation chamber,

wherein the first plasma source and the second plasma source are configured to generate a reactive gas stream by means of an arc-like discharge in a working gas,

wherein

the device is designed in such a way that

the first plasma source is supplied with a first working gas and the second plasma source is supplied with a second working gas in parallel,

the first plasma source generates a plasma in the first working gas and the resulting first reactive gas stream flows from the first plasma source to the impinging device and is thus mixed with the liquid in the first activation chamber, and

in parallel and simultaneously, the second plasma source generates a second reactive gas stream by discharge in the second working gas, the second reactive gas stream being fed to the second activation chamber of the impinging device and supplied to the liquid present in the second activation chamber,

a first liquid impinged with the first reactive gas stream is provided in the first activation chamber and, in parallel, a second liquid impinged with the second reactive gas stream is provided in the second activation chamber, and

the device has a mixing container which is fluidically connected to the first activation chamber and to the second activation chamber, so that the first impinged liquid and the second impinged liquid are fed to the mixing container and mixed therein to form a plasma-activated liquid.

6 . The apparatus according to claim 5 ,

wherein

a first working gas source is provided and configured to supply a first working gas to the first plasma source, and

a further working gas source is provided and is configured to supply a further working gas to the further plasma source,

wherein the composition of the first working gas differs from the composition of the further working gas.

7 . The apparatus according to claim 5 ,

wherein

the first plasma source and/or the further plasma source is configured to generate a plasma by means of electrical discharge in a working gas,

wherein the electrical discharge is a dielectrically impeded discharge, a high-frequency arc-like discharge, a DC arc discharge or a discharge generated by a microwave jet nozzle.

8 . The apparatus according to claim 5 ,

wherein

the aeration apparatus has a disc aerator or an aeration element made of porous material.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 16, 2025
From: RICHTER, KATHARINA
To: BUSKE, CHRISTIAN
Reel/Frame 070852/0683 →
Priority Claims (1)
DE 10 2022 117 651.7 · Jul 14, 2022 · national
Continuity (1)
Related Publication 20260006711A1 · Jan 1, 2026
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