IP Library › Granted Patent US 12,558,754
Granted Patent B2
US 12,558,754 · App. 17/590,446 · Granted Feb 24, 2026

Method and device for dry treatment of metal surfaces by means of electrically active solid particles

Inventors: Marc Soto Hernandez (Sant Fost de Campsentelles, ES); Marc Sarsanedas Gimpera (Olot, ES); Pau Romagosa Calatayud (Les Borges del Camp, ES); Miguel Francisco Perez Planas (Cardedeu, ES); Edurne Galindo Sesé (Gavà, ES); Laia Fontelles Batalla (La Pobla de Segur, ES)
Assignees: DRYLYTE, S.L.; STEROS GPA INNOVATIVE, S.L.
B24B1/002C09G1/02C23F1/10C25F3/02C25F3/06C25F3/16C25F3/22C25F3/24
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Quick Facts
Patent No.
US 12,558,754
App. No.
17/590,446
Granted
Feb 24, 2026
Kind
B2
Abstract

Methods and devices for treatment of metal surfaces by means of electrically active solid particles that include a step of contact of the solid particles with the electrode of an electric source, a step of shooting the particles towards the metal surface to be treated and a step of transmission of electric charge of the particles on the metal surface to be treated. The transmission of the electricity between the electric source and the metal surface during the step of shooting preferably is by net charge of the particles or by electric conductivity by contact or by electric conductivity by means of voltaic arches. The current applied to the electrode is preferably a DC or a current that contains positive sections and negative sections.

Claims (14)

1 . A method for treatment of a metal surface, the method comprising:

placing a plurality of electrically active solid particles in contact with an electrode that is connected to a first pole of an electric source and thereafter shooting the plurality of electrically active solid particles towards the metal surface that is connected to a second pole of the electric source so that the plurality of electrically active solid particles contact and transmit to the metal surface electricity, the plurality of electrically active solid particles comprising microporous gel particles of sulfonated polystyrene-divinylbenzene structure:

wherein the shooting of the plurality of electrically active solid particles includes creating a chain of electrically active solid particles that extends between the electrode and the metal surface,

neighboring solid particles in the chain of electrically active solid particles being electrically connected and separated by a medium that provides electrical conductivity between the neighboring solid particles, the medium comprising solid or liquid elements suspended in a gas; and

treating the metal surface with the plurality of electrically active solid particles.

2 . The method for treatment of a metal surface according to claim 1 , wherein the transmission of electricity between the electric source and the metal surface during the shooting of the plurality of electrically active solid particles is by net charge of the plurality of electrically active solid particles.

3 . The method for treatment of a metal surface according to claim 1 , wherein a direct current (DC) is applied to the electrode.

4 . The method for treatment of a metal surface according to claim 1 , wherein a current is applied to the electrode, the current containing positive sections and negative sections.

5 . The method for treatment of a metal surface according to claim 1 , wherein the medium is selected from the group consisting of a carbon, iodine, and talc.

6 . The method for treatment of a metal surface according to claim 1 , further comprising treating the metal surface with abrasive particles, simultaneously or consecutively to shooting the plurality of electrically active solid particles towards the metal surface.

7 . The method for treatment of a metal surface according to claim 1 , wherein the microporous gel particles of sulfonated polystyrene-divinylbenzene contain sulfuric acid.

8 . The method for treatment of a metal surface according to claim 1 , wherein the liquid elements are liquid micro-drops.

9 . The method for treatment of a metal surface according to claim 1 , wherein the solid elements are microparticles or nanoparticles.

10 . The method for treatment of a metal surface according to claim 9 , wherein the microparticles or nanoparticles comprise carbon.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2022
From: SOTO HERNANDEZ, MARC; SARSANDEDAS GIMPERA, MARC; ROMAGOSA CALATAYUD, PAU; PEREZ PLANAS, MIGUEL FRANCISCO; GALINDO SESÉ, EDURNE; FONTELLES BATALLA, LAIA
To: DRYLYTE, S.L.; STEROS GPA INNOVATIVE, S.L.
Reel/Frame 059321/0470 →
Priority Claims (2)
ES P201930716 · Aug 1, 2019 · national
ES P201930717 · Aug 1, 2019 · national
Continuity (2)
Continuation PCTES2020070499 · Jul 31, 2020
Related Publication 20220161382A1 · May 26, 2022
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